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<front>
<journal-meta>
<journal-id journal-id-type="publisher-id">Front. Chem.</journal-id>
<journal-title>Frontiers in Chemistry</journal-title>
<abbrev-journal-title abbrev-type="pubmed">Front. Chem.</abbrev-journal-title>
<issn pub-type="epub">2296-2646</issn>
<publisher>
<publisher-name>Frontiers Media S.A.</publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="publisher-id">859822</article-id>
<article-id pub-id-type="doi">10.3389/fchem.2022.859822</article-id>
<article-categories>
<subj-group subj-group-type="heading">
<subject>Chemistry</subject>
<subj-group>
<subject>Original Research</subject>
</subj-group>
</subj-group>
</article-categories>
<title-group>
<article-title>Mucin-Type <italic>O</italic>-Glycosylation Proximal to &#x3b2;-Secretase Cleavage Site Affects APP Processing and Aggregation Fate</article-title>
<alt-title alt-title-type="left-running-head">Singh et al.</alt-title>
<alt-title alt-title-type="right-running-head">
<italic>O</italic>-Glycosylated APP Peptides</alt-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname>Singh</surname>
<given-names>YashoNandini</given-names>
</name>
<xref ref-type="aff" rid="aff1">
<sup>1</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/1646438/overview"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Regmi</surname>
<given-names>Deepika</given-names>
</name>
<xref ref-type="aff" rid="aff1">
<sup>1</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/1700385/overview"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Ormaza</surname>
<given-names>David</given-names>
</name>
<xref ref-type="aff" rid="aff1">
<sup>1</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/1709708/overview"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Ayyalasomayajula</surname>
<given-names>Ramya</given-names>
</name>
<xref ref-type="aff" rid="aff1">
<sup>1</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/1726067/overview"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Vela</surname>
<given-names>Nancy</given-names>
</name>
<xref ref-type="aff" rid="aff1">
<sup>1</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/1649862/overview"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Mundim</surname>
<given-names>Gustavo</given-names>
</name>
<xref ref-type="aff" rid="aff1">
<sup>1</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/1646451/overview"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Du</surname>
<given-names>Deguo</given-names>
</name>
<xref ref-type="aff" rid="aff1">
<sup>1</sup>
</xref>
</contrib>
<contrib contrib-type="author">
<name>
<surname>Minond</surname>
<given-names>Dmitriy</given-names>
</name>
<xref ref-type="aff" rid="aff2">
<sup>2</sup>
</xref>
<uri xlink:href="https://loop.frontiersin.org/people/898369/overview"/>
</contrib>
<contrib contrib-type="author" corresp="yes">
<name>
<surname>Cudic</surname>
<given-names>Mar&#x00E9;</given-names>
</name>
<xref ref-type="aff" rid="aff1">
<sup>1</sup>
</xref>
<xref ref-type="corresp" rid="c001">&#x2a;</xref>
<uri xlink:href="https://loop.frontiersin.org/people/236594/overview"/>
</contrib>
</contrib-group>
<aff id="aff1">
<sup>1</sup>
<institution>Department of Chemistry and Biochemistry</institution>, <institution>Charles E. Schmidt College of Science</institution>, <institution>Florida Atlantic University</institution>, <addr-line>Boca Raton</addr-line>, <addr-line>FL</addr-line>, <country>United States</country>
</aff>
<aff id="aff2">
<sup>2</sup>
<institution>College of Pharmacy and Rumbaugh-Goodwin Institute for Cancer Research</institution>, <institution>Nova Southeastern University</institution>, <addr-line>Fort Lauderdale</addr-line>, <addr-line>FL</addr-line>, <country>United States</country>
</aff>
<author-notes>
<fn fn-type="edited-by">
<p>
<bold>Edited by:</bold> <ext-link ext-link-type="uri" xlink:href="https://loop.frontiersin.org/people/22879/overview">John D. Wade</ext-link>, University of Melbourne, Australia</p>
</fn>
<fn fn-type="edited-by">
<p>
<bold>Reviewed by:</bold> <ext-link ext-link-type="uri" xlink:href="https://loop.frontiersin.org/people/76029/overview">Matthew Robert Pratt</ext-link>, University of Southern California, United States</p>
<p>
<ext-link ext-link-type="uri" xlink:href="https://loop.frontiersin.org/people/1686961/overview">Yangmei Li</ext-link>, University of South Carolina, United States</p>
</fn>
<corresp id="c001">&#x2a;Correspondence: Mar&#x00E9; Cudic, <email>mcudic@fau.edu</email>
</corresp>
<fn fn-type="other">
<p>This article was submitted to Chemical Biology, a section of the journal Frontiers in Chemistry</p>
</fn>
</author-notes>
<pub-date pub-type="epub">
<day>08</day>
<month>04</month>
<year>2022</year>
</pub-date>
<pub-date pub-type="collection">
<year>2022</year>
</pub-date>
<volume>10</volume>
<elocation-id>859822</elocation-id>
<history>
<date date-type="received">
<day>21</day>
<month>01</month>
<year>2022</year>
</date>
<date date-type="accepted">
<day>07</day>
<month>03</month>
<year>2022</year>
</date>
</history>
<permissions>
<copyright-statement>Copyright &#xa9; 2022 Singh, Regmi, Ormaza, Ayyalasomayajula, Vela, Mundim, Du, Minond and Cudic.</copyright-statement>
<copyright-year>2022</copyright-year>
<copyright-holder>Singh, Regmi, Ormaza, Ayyalasomayajula, Vela, Mundim, Du, Minond and Cudic</copyright-holder>
<license xlink:href="http://creativecommons.org/licenses/by/4.0/">
<p>This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.</p>
</license>
</permissions>
<abstract>
<p>The amyloid-&#x3b2; precursor protein (APP) undergoes proteolysis by &#x3b2;- and &#x3b3;-secretases to form amyloid-&#x3b2; peptides (A&#x3b2;), which is a hallmark of Alzheimer&#x2019;s disease (AD). Recent findings suggest a possible role of <italic>O</italic>-glycosylation on APP&#x2019;s proteolytic processing and subsequent fate for AD-related pathology. We have previously reported that Tyr<sup>681</sup>-<italic>O</italic>-glycosylation and the Swedish mutation accelerate cleavage of APP model glycopeptides by &#x3b2;-secretase (amyloidogenic pathway) more than &#x3b1;-secretase (non-amyloidogenic pathway). Therefore, to further our studies, we have synthesized additional native and Swedish-mutated (glyco)peptides with <italic>O</italic>-GalNAc moiety on Thr<sup>663</sup> and/or Ser<sup>667</sup> to explore the role of glycosylation on conformation, secretase activity, and aggregation kinetics of A&#x3b2;40. Our results show that conformation is strongly dependent on external conditions such as buffer ions and solvent polarity as well as internal modifications of (glyco)peptides such as length, <italic>O</italic>-glycosylation, and Swedish mutation. Furthermore, the level of &#x3b2;-secretase activity significantly increases for the glycopeptides containing the Swedish mutation compared to their nonglycosylated and native counterparts. Lastly, the glycopeptides impact the kinetics of A&#x3b2;40 aggregation by significantly increasing the lag phase and delaying aggregation onset, however, this effect is less pronounced for its Swedish-mutated counterparts. In conclusion, our results confirm that the Swedish mutation and/or <italic>O</italic>-glycosylation can render APP model glycopeptides more susceptible to cleavage by &#x3b2;-secretase. In addition, this study sheds new light on the possible role of glycosylation and/or glycan density on the rate of A&#x3b2;40 aggregation.</p>
</abstract>
<kwd-group>
<kwd>Alzheimer&#x2019;s disease</kwd>
<kwd>circular dichroism</kwd>
<kwd>proteolysis</kwd>
<kwd>aggregation kinetics</kwd>
<kwd>APP <italic>O</italic>-glycopeptides</kwd>
</kwd-group>
<contract-num rid="cn001">R15CA242351 R15CA249788 R15GM116006</contract-num>
<contract-num rid="cn002">AARG-17-531423</contract-num>
<contract-sponsor id="cn001">National Institutes of Health<named-content content-type="fundref-id">10.13039/100000002</named-content>
</contract-sponsor>
<contract-sponsor id="cn002">Alzheimer&#x27;s Association<named-content content-type="fundref-id">10.13039/100000957</named-content>
</contract-sponsor>
</article-meta>
</front>
<body>
<sec id="s1">
<title>Introduction</title>
<p>Alzheimer disease (AD) is one of the most common neurodegenerative disorders linked to aging (<xref ref-type="bibr" rid="B54">van Cauwenberghe et al., 2016</xref>; <xref ref-type="bibr" rid="B3">Alzheimer&#x2019;s Association, 2020</xref>). It has a profound effect on the economy, health-care system, and the society, and is projected to increase even further as the population ages (<xref ref-type="bibr" rid="B23">Hurd et al., 2013</xref>). Genetic, biochemical, and behavioral research suggest that physiologic generation of the A&#x3b2;-forming fibrils stems from the proteolytic processing of the amyloid precursor protein (APP), a type 1 transmembrane glycoprotein, by &#x3b2;-secretase (BACE-1) (<xref ref-type="bibr" rid="B20">Hardy and Higgins, 1992</xref>; <xref ref-type="bibr" rid="B41">O&#x2019;Brien and Wong, 2011</xref>; <xref ref-type="bibr" rid="B46">Selkoe and Hardy, 2016</xref>). This pathway co-exists with the nonamyloidogenic pathway, that is, initiated by &#x3b1;-secretase within the A&#x3b2; domain and precludes A&#x3b2; formation.</p>
<p>Despite the ongoing debates about the validity of amyloid cascade hypothesis, targeting amyloidogenic processing of APP is still considered a valid strategy to develop disease-modifying AD therapies (<xref ref-type="bibr" rid="B59">Zhao et al., 2020</xref>). New evidence continues to emerge to support the idea that deficiencies in APP trafficking and clearance of A&#x3b2; peptides is the initiating event of AD pathogenic processes (<xref ref-type="bibr" rid="B51">Tan and Gleeson, 2019</xref>; <xref ref-type="bibr" rid="B59">Zhao et al., 2020</xref>). Knowing the importance of protein glycosylation in mediating a plethora of biological functions (<xref ref-type="bibr" rid="B28">Kri&#x161;ti&#x107; and Lauc, 2017</xref>; <xref ref-type="bibr" rid="B2">Akasaka-Manya and Manya, 2020</xref>) and considering the fact that most known AD-related molecules are either modified with glycans or play a role in glycan regulation, glycobiology may represent an interesting new insight into the understanding of AD, and a potential for new therapeutic approaches (<xref ref-type="bibr" rid="B21">Haukedal and Freude, 2021</xref>). The altered glycan profile of APP in the brain and cerebrospinal fluid (CSF) of AD patients versus healthy controls (<xref ref-type="bibr" rid="B43">P&#xe5;hlsson et al., 1992</xref>; <xref ref-type="bibr" rid="B10">Chun et al., 2017</xref>; <xref ref-type="bibr" rid="B7">Boix et al., 2020</xref>; <xref ref-type="bibr" rid="B39">Moran et al., 2021</xref>) has been reported. Particularly, changes in <italic>O</italic>-glycosylation have been related to differences in APP processing and A&#x3b2; generation (<xref ref-type="bibr" rid="B26">Kitazume et al., 2010</xref>; <xref ref-type="bibr" rid="B1">Akasaka-Manya et al., 2017</xref>; <xref ref-type="bibr" rid="B31">Liu et al., 2017</xref>). APP695 is modified by a number of <italic>O</italic>-glycosylation moieties in several sites, both for mucin-linked <italic>O</italic>-glycans (<italic>O</italic>-GalNAc or <italic>N</italic>-acetylgalactosamine) and <italic>O</italic>-GlcNAc (<italic>N</italic>-acetylglucosamine) as observed in Chinese hamster ovary cells (CHO) and human CSF (<xref ref-type="bibr" rid="B44">Perdivara et al., 2009</xref>; <xref ref-type="bibr" rid="B18">Halim et al., 2011</xref>). <italic>O</italic>-GlcNAcylation has been shown to influence APP cleavage by increasing the nonamyloidogenic processing by &#x3b1;-secretase and reducing the secretion of A&#x3b2; <italic>in vitro</italic> and <italic>in vivo</italic> (<xref ref-type="bibr" rid="B24">Jacobsen and Iverfeldt, 2011</xref>; <xref ref-type="bibr" rid="B58">Yuzwa and Vocadlo, 2014</xref>; <xref ref-type="bibr" rid="B11">Chun et al., 2015</xref>, <xref ref-type="bibr" rid="B10">2017</xref>). <italic>O</italic>-GalNAcylation is more abundant on APP, with extended and/or sialylated <italic>O</italic>-glycans occupying the region close to the &#x3b2;-secretase cleavage site (M<sup>671</sup>&#x223c;D<sup>672</sup>) of APP (<xref ref-type="bibr" rid="B47">Shi et al., 2021</xref>), suggesting its possible role in APP ectodomain shedding and A&#x3b2; production (<xref ref-type="bibr" rid="B1">Akasaka-Manya et al., 2017</xref>; <xref ref-type="bibr" rid="B40">Nakamura and Kurosaka, 2019</xref>). Two <italic>O</italic>-glycosylation sites, Thr<sup>663</sup> and Ser<sup>667</sup>, located at the <italic>N</italic>-terminal side of &#x3b2;-secretase cleavage site have been reported to contain &#x3b1;-linked terminal GalNAc structure (<xref ref-type="bibr" rid="B47">Shi et al., 2021</xref>). Glycosylation on this region has been found to suppress the APP processing (<xref ref-type="bibr" rid="B11">Chun et al., 2015</xref>; <xref ref-type="bibr" rid="B1">Akasaka-Manya et al., 2017</xref>). In addition, a recent study has shown that the unique Tyr-<italic>O</italic>-glycosylation induces A&#x3b2;42 to form less stable fibrils, that are more susceptible towards degradation by extracellular degradation enzymes (<xref ref-type="bibr" rid="B30">Liu et al., 2021</xref>). The sialic acid-capped glycans, as found in the CSF samples, would likely further promote inhibition of formation of the typical &#x3b2; sheet-derived fibrils (<xref ref-type="bibr" rid="B30">Liu et al., 2021</xref>). We have previously demonstrated that a simple <italic>O</italic>-GalNAc modification on the Tyr<sup>681</sup> residue of A&#x3b2; can induce a conformational change, provide protection from &#x3b2;-secretase, and slightly improve the nonamyloidogenic processing by &#x3b1;-secretase (<xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>). However, in the presence of the Swedish mutation, the amyloidogenic processing by &#x3b2;-secretase was drastically increased (<xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>). To date, a stimulating and inhibiting effects of glycosylation on enzyme activity have been reported (<xref ref-type="bibr" rid="B15">Goettig, 2016</xref>; <xref ref-type="bibr" rid="B16">Goth et al., 2018</xref>). Thus, a better understanding of the role of <italic>O</italic>-glycosylation on the balance between production and clearance of A&#x3b2; peptides is necessary to decipher the role of <italic>O</italic>-glycosylation in the initiating events of AD pathogenic processes.</p>
<p>In this study, we synthesized APP model (glyco)peptides containing the A&#x3b2;-(1&#x2013;9) fragment, with extended <italic>N</italic>-terminal domain to incorporate the &#x3b2;-secretase cleavage site with or without the Swedish mutation (Lys<sup>670</sup>Asn/Met<sup>671</sup>Leu) and Thr<sup>663</sup>and/or Ser<sup>667</sup> <italic>O</italic>-glycosites, respectively. These analogues were characterized for their secondary structure content using CD spectroscopy. The roles of <italic>O</italic>-glycosylation and/or Swedish mutation on proteolytic processing by &#x3b2;-secretase and the aggregation kinetics of A&#x3b2;40 in the absence and presence of APP (glyco)peptides were explored, respectively. Our results demonstrate a unique role of mucin-type <italic>O</italic>-glycosylation on APP&#x2019;s secondary structure, proteolytic cleavage, and aggregation properties and offer an important insight into glycosylation driven changes of the intrinsic properties of APP derived peptides.</p>
</sec>
<sec sec-type="methods" id="s2">
<title>Methods</title>
<sec id="s2-1">
<title>Materials</title>
<p>Tentagel S RAM resin was obtained from Advanced ChemTech (Louisville, KY). Fmoc-protected amino acids, and coupling reagents, 1-hydroxybenzotriazole (HOBt) and 2-(6-chloro-1H-benzotriazol-1-yl)-1,1,3,3-tetramethylaminium hexafluorophosphate (HCTU), for peptide synthesis, were purchased from Chem-Impex (Wood Dale, IL). <italic>N, N&#x2032;</italic>-Diisopropylethylamine (DIPEA) was purchased from Acros Organics (Thermo Fisher Scientific, Waltham, MA). Trifluoroacetic acid (TFA), thioanisole, and all solvents (DCM, DMF, acetonitrile, and water) were of HPLC grade and purchased from Fisher Scientific (Atlanta, GA) or Sigma-Aldrich (St. Louis, MO). PBS buffer was prepared using sodium phosphate (mono- and dibasic) from Fisher Scientific (Pittsburg, PA). The <italic>O</italic>-glycosylated GalNAc building blocks of Ser <bold>1</bold> and Thr <bold>2</bold> for glycopeptide synthesis were prepared as published previously by our group (<xref ref-type="bibr" rid="B49">Singh et al., 2020</xref>; <xref ref-type="bibr" rid="B6">Beckwith et al., 2021</xref>). Recombinant human BACE-1 (rhBACE-1) and BACE-1 fluorogenic peptide substrate IV (MCA-Ser-Glu-Val-Asn-Leu-Asp-Ala-Glu-Phe-Arg-Lys(DPN)-Arg-Arg-NH2) were from R&#x26;D Systems (catalog &#x23;ES004 and &#x23;931-AS, respectively).</p>
</sec>
<sec id="s2-2">
<title>Synthesis of APP (Glyco)peptides</title>
<p>All peptide analogs of APP were synthesized using standard Fmoc chemistry and solid-phase peptide synthesis (SPPS) on a PS3 automated peptide synthesizer (Protein Technologies Inc., Tucson, AZ). The amino acid couplings on the synthesizer were done using a 4-fold excess of amino acids, HOBt, and HCTU, in the presence of 0.4&#xa0;M<italic>N</italic>-methylmorpholine (NMM) in DMF. The Fmoc protecting group was removed using 20% piperidine in DMF. For glycopeptides, at the desired site of glycosylation, the Fmoc-protected pentafluorophenyl ester of Ser-<italic>O</italic>-GalNAc <bold>1</bold>) and/or Thr-<italic>O</italic>-GalNAc <bold>2</bold>) was coupled manually using a 1.5-fold excess, in the presence of DIPEA (pH 8) for 16&#xa0;h. After coupling was confirmed using the ninhydrin test, the remainder of the peptide&#x2019;s amino acid sequence was completed on the PS3. All the (glyco)peptides were cleaved from the resin using a TFA/thioanisole/water mixture in 95:2.5:2.5 ratio for 3&#xa0;h, followed by precipitation in cold methyl-<italic>tert-</italic>butyl-ether (MTBE) to precipitate the crude (glyco)peptide. For glycopeptides, the acetylated crude was deprotected using 0.01&#xa0;M NaOH solution for 15&#xa0;min to remove all the <italic>O</italic>-acetyl groups on the glycan moiety attached to the peptide sequence. Lastly, the crude was lyophilized to yield the final crude deacetylated glycopeptide or its nonglycosylated counterpart.</p>
</sec>
<sec id="s2-3">
<title>Purification and Characterization of APP (Glyco)peptides</title>
<p>Purification of all (glyco)peptides and their corresponding analyses were performed on a 1,260 Agilent Infinity system. The analytical RP-HPLC method uses a Phenomenex Aeris Peptide C18 column (150&#xa0;mm &#xd7; 4.6&#xa0;mm, 3.6&#xa0;<italic>&#x3bc;</italic>m, 100&#xa0;&#xc5;) at 0.8&#xa0;ml/min flow rate or a Vydac Denali C18 column (250&#xa0;mm &#xd7; 4.6&#xa0;mm, 5&#xa0;<italic>&#x3bc;</italic>m, 120&#xc5;) at 1&#xa0;ml/min flow rate, with 0.1% TFA in water (A) and 0.1% TFA in acetonitrile (B) as the eluents. The elution gradient for analytical RP-HPLC purification was 0&#x2013;60% B over 30&#xa0;min. The preparative RP-HPLC method uses the Grace Vydac monomeric C18 column (250&#xa0;mm &#xd7; 22&#xa0;mm, 15&#x2013;20&#xa0;&#x3bc;m, 300&#xc5;) at 10&#xa0;ml/min flow rate, with 0.1% TFA in water (A) and 0.1% TFA in acetonitrile (B) as the eluents. The elution gradient for preparative RP-HPLC purification was 0&#x2013;50% over 110&#xa0;min. The (glyco)peptides were detected at 214&#xa0;nm by using a UV-Vis detector (Agilent 1,260 Infinity DAD). Purified (glyco)peptides were characterized by matrix-assisted laser desorption ionization time-of-flight mass spectrometry (MALDI-TOF MS) with a Voyager-DE STR system or a Bruker Microflex system, using &#x3b1;-cyano-4-hydroxycinnamic acid as matrix.</p>
</sec>
<sec id="s2-4">
<title>Conformational Analysis of APP (Glyco)peptides</title>
<p>All (glyco)peptides were analyzed for their secondary structure using circular dichroism (CD) spectroscopy on a Jasco-810 spectropolarimeter (Jasco, Easton, MD) in three solvent systems: water, 10&#xa0;mM sodium phosphate buffer (pH 7.4), and 50% trifluoroethanol (TFE) in water (v/v) mixture. The CD spectra were recorded using a quartz cell of 1&#xa0;mm optical path length over a wavelength range of 180&#x2013;25&#xa0;nm with a scanning speed of 100&#xa0;nm/min and a response time of 4&#xa0;s at 25&#xb0;C. A concentration of 0.065&#xa0;mg/ml, determined using the analytical RP-HPLC method, gave the lowest signal-to-noise ratio for all (glyco)peptides. All spectra were baseline-corrected to account for the signal contribution from solvent and then converted into molar ellipticity (deg cm<sup>2</sup>&#xa0;dmol<sup>&#x2212;1</sup>) (<xref ref-type="bibr" rid="B50">Sreerama and Woody, 2000</xref>). Lastly, the percentages of all secondary structures were determined using the BeStSel method (<xref ref-type="bibr" rid="B36">Micsonai et al., 2018</xref>; <xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>).</p>
</sec>
<sec id="s2-5">
<title>Proteolytic Activity and Analysis of APP (Glyco)peptides With BACE-1</title>
<p>All APP-based substrates were prepared as 10&#xa0;mM stocks in DMSO. Before proteolysis, the activity of BACE-1 was verified by the reaction with the fluorogenic BACE-1substrate Mca-SEVNLDAEFRK(Dnp)RR-NH<sub>2</sub> (<xref ref-type="bibr" rid="B27">Koike et al., 1999</xref>) as per the manufacturer&#x2019;s instructions. For the proteolysis assay, APP-based substrates were diluted in BACE-1 activity buffer (0.1&#xa0;M sodium acetate, pH 4.0) to the final assay concentration of 100&#xa0;&#x3bc;M. BACE-1 was diluted to 50&#xa0;nM final concentration. Reactions were incubated for 24&#xa0;h at 37&#xb0;C in the dark. After the incubation period, the enzyme cleavage solutions containing APP-based substrates and BACE-1 were analyzed using the analytical RP-HPLC method on the Aeris C18 column with 0.1% TFA in water (A) and 0.1% TFA in acetonitrile (B) as eluents and 0&#x2013;60% B as the elution gradient over 30&#xa0;min with a flow rate of 0.8&#xa0;ml/min, and detection at 214&#xa0;nm or the Vydac Denali C18 column with 0.1% TFA in water (A) and 0.1% TFA in acetonitrile (B) as eluents and 0&#x2013;60% B as the elution gradient over 30&#xa0;min with a flow rate of 1&#xa0;ml/min, and detection at 214&#xa0;nm. The identity of intact and cleaved (<italic>N</italic>- and <italic>C</italic>-terminal) fragments of (glyco)peptides in the absence and presence of BACE-1 (&#x3b2;-secretase) was confirmed by MALDI-TOF and their percentages were evaluated by the integration of the RP-HPLC peaks (averaged from two injections).</p>
</sec>
<sec id="s2-6">
<title>Preparation of A&#x3b2;40 Peptide for Aggregation Kinetics Assay With APP (Glyco)peptides</title>
<p>A&#x3b2;40 peptide was synthesized on a PS3 solid phase peptide synthesizer (Protein Technologies Inc., Woburn, MA) using the standard Fmoc strategy. The resulting crude peptide was purified by reversed-phase high-performance liquid chromatography (RP-HPLC) using a C18 column and characterized by matrix-assisted laser desorption ionization (MALDI) mass spectrometry. The peptide was monomerized as described previously before use (<xref ref-type="bibr" rid="B32">Liu et al., 2018</xref>). Lyophilized peptide powder was dissolved in aqueous NaOH solution (2&#xa0;mM), and the pH was adjusted to &#x223c;11 by using 100&#xa0;mM NaOH solution. The solution was sonicated for 1&#xa0;h in an ice&#x2212;water bath and then filtered through a 0.22&#xa0;&#x3bc;m filter (Millipore) and kept on ice before use. The concentration of the peptide solution was determined by using the tyrosine UV absorbance at 280&#xa0;nm (&#x3b5; &#x3d; 1280&#xa0;M<sup>&#x2212;1</sup>&#xa0;cm<sup>&#x2212;1</sup>).</p>
</sec>
<sec id="s2-7">
<title>Aggregation Kinetics Assay of A&#x3b2;40 With APP (Glyco)peptides</title>
<p>The aggregation kinetics of A&#x3b2;40 in the absence and presence of APP (glyco)peptides was performed using ThT binding assay. The monomerized A&#x3b2;40 peptide solution was diluted to a final concentration of 10&#xa0;&#xb5;M in 50&#xa0;mM phosphate buffer (pH 7.4) and 20&#xa0;&#xb5;M ThT dye. For the co-incubation assays with APP (glyco)peptides, APP stock solutions of 120&#xa0;&#xb5;M were added to the prepared A&#x3b2;40 for final (glyco) peptide concentrations of 10&#xa0;&#xb5;M or 50&#xa0;&#xb5;M and A&#x3b2;40 concentration of 10&#xa0;&#xb5;M in 50&#xa0;mM phosphate buffer (pH 7.4) with 20&#xa0;&#xb5;M ThT dye. 100&#xa0;&#xb5;L of each prepared solution was run in triplicate of a 96-well microplate (Costar black, clear bottom). The plate was sealed with a microplate cover and loaded into a Gemini SpectraMax EM fluorescence plate reader (Molecular Devices, Sunnyvale, CA) and incubated at 37&#xb0;C. The ThT fluorescence was measured from the bottom of the plate at 10&#xa0;min intervals, with 5&#xa0;s of shaking, and with an excitation and emission wavelengths of 440 and 480&#xa0;nm, respectively. Error bars of triplicate samples are shown for the particular data points.</p>
</sec>
<sec id="s2-8">
<title>AFM Analysis of A&#x3b2;40 With APP (Glyco)peptides</title>
<p>AFM was employed to monitor the morphological changes of A&#x3b2;40 incubated in the absence and presence of tyrosine glycosylated (<bold>14</bold> and <bold>16</bold>) and nonglycosylated APP analogues (<bold>13</bold> and <bold>15</bold>). Aliquots (15&#xa0;&#xb5;L) of A&#x3b2;40 solutions were collected directly from the aggregation kinetics assay and spotted onto the surface of the freshly cleaved mica surface (5&#xa0;mm &#xd7; 5&#xa0;mm) on solid support at room temperature. Before the measurement, the samples were covered and dried in a vacuum desiccator overnight. The AFM images were acquired in tapping mode with an area of 4&#xa0;&#x3bc;m<sup>2</sup>, using AFM workshop TT-2 (Hilton Head Island, SC) with MikroMash NSC 15/Al BS silicon cantilevers (MikroMash, Watsonville, CA). The AFM images were further visualized and analyzed using the Gwyddion software.</p>
</sec>
</sec>
<sec sec-type="results|discussion" id="s3">
<title>Results and Discussion</title>
<sec id="s3-1">
<title>APP-Based (Glyco)peptide Synthesis and Characterization</title>
<p>The short APP (glyco) peptide fragments, part of the APP 661&#x2013;680 region, were prepared. The amino acid sequence included A&#x3b2;-(1&#x2013;9) DAEFRHDSG at the <italic>C</italic>-terminal end and either EISEVKM or EISEVNL (NL &#x3d; Swedish mutation) at the <italic>N</italic>-terminus to incorporate the &#x3b2;-secretase (BACE-1) cleavage site (M &#x223c; D or L &#x223c; D). Further extension of the backbone with the additional four amino acids (IKTE), furnished a platform for site-specific <italic>O</italic>-glycosylation of Thr<sup>663</sup> and Ser<sup>667</sup> residues that may impact APP&#x2019;s proteolytic processing due to their proximity to the BACE-1 cleavage site (<xref ref-type="bibr" rid="B16">Goth et al., 2018</xref>; <xref ref-type="bibr" rid="B40">Nakamura and Kurosaka, 2019</xref>). Hence, APP glycopeptides bearing &#x201c;mucin-type&#x201d; <italic>O</italic>-glycosylation, &#x3b1;-<italic>N</italic>-acetylgalactosamine (GalNAc), on Thr<sup>663</sup> and/or Ser<sup>667</sup> and their nonglycosylated counterparts were prepared using standard Fmoc-based automated solid-phase peptide chemistry (<xref ref-type="fig" rid="F3">Scheme 1</xref>). For glycopeptides, the building block approach was used for the incorporation of <italic>O</italic>-glycosylated Ser <bold>1</bold> and/or Thr <bold>2</bold> in the sequence. The organic synthesis of the building blocks was achieved using our previously published protocols (<xref ref-type="bibr" rid="B49">Singh et al., 2020</xref>; <xref ref-type="bibr" rid="B6">Beckwith et al., 2021</xref>). The purity of the Ser/Thr building blocks <bold>1</bold> and <bold>2</bold>, respectively, were confirmed by RP-HPLC and MALDI-TOF mass spectrometry. NMR spectra ascertained the &#x3b1;-linkage (<xref ref-type="bibr" rid="B49">Singh et al., 2020</xref>; <xref ref-type="bibr" rid="B6">Beckwith et al., 2021</xref>).</p>
<fig id="F3" position="float">
<label>SCHEME 1</label>
<caption>
<p>Stepwise synthesis of APP glycopeptide, APP<sup>661-680</sup>-T&#x2a;, S&#x2a; (<bold>9</bold>).</p>
</caption>
<graphic xlink:href="fchem-10-859822-g003.tif"/>
</fig>
<p>Automated solid-phase peptide synthesis (SPPS) approach on Tentagel S RAM resin was used to assemble the APP (glyco)peptides. For glycopeptides, the <italic>O</italic>-glycosylated Ser/Thr building blocks one and two, respectively, were manually coupled at the desired site of glycosylation, Thr<sup>663</sup> and/or Ser<sup>667</sup>, of the growing peptide chain. After completion of the (glyco)peptide sequence, the resin was treated with trifluoroacetic acid (TFA), with water and thioanisole as scavengers. The crude acetylated glycopeptides were further deprotected under basic conditions to remove acetyl groups from the glycan moiety and obtain final deacetylated glycopeptides (<bold>4, 6, 8, 9, 11</bold>, and <bold>12</bold>). The corresponding nonglycosylated peptides (<bold>3, 5, 7</bold>, and <bold>10</bold>) were also prepared as above except for introducing usual Fmoc-Thr(tBu)/Ser(tBu)-OH amino acids, instead of their <italic>O</italic>-glycosylated analogs (<xref ref-type="fig" rid="F3">Scheme 1</xref>). (Glyco)peptides <bold>3&#x2013;12</bold> were obtained in high purity, as indicated by their RP-HPLC elution profiles and MALDI-TOF MS analysis (<xref ref-type="table" rid="T1">Table 1</xref> and <xref ref-type="sec" rid="s10">Supplementary Material S2&#x2013;S11</xref>). As expected, the RP-HPLC analysis revealed difference in retention time (<italic>t</italic>
<sub>R</sub>) between the Swedish-mutated peptide analogs and their native pairs. The Swedish-mutated (glyco)peptides <bold>5, 6, 10&#x2013;12</bold> exhibited a 1.5&#xa0;min (on average) longer <italic>t</italic>
<sub>R</sub> compared to their native counterparts <bold>3, 4, 7-9</bold>, respectively, due to increased hydrophobicity of the peptide sequence (<xref ref-type="table" rid="T1">Table 1</xref>) (<xref ref-type="bibr" rid="B34">Mant et al., 1989</xref>; <xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>). In contrast, the addition of the GalNAc moiety at either Ser<sup>667</sup> (<bold>4</bold> and <bold>6</bold>) or Thr<sup>663</sup> (<bold>8</bold> and <bold>11</bold>) residue resulted in a decrease in the <italic>t</italic>
<sub>R</sub> by 0.4&#xa0;min (on average) compared to their nonglycosylated counterparts <bold>3, 5, 7</bold>, and <bold>10</bold>, respectively, due to increased hydrophilicity of the glycopeptide sequences (<xref ref-type="table" rid="T1">Table 1</xref>) (<xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>). The attachment of GalNAc moiety at both glycosylation sites (<bold>12</bold>), further decreased the <italic>t</italic>
<sub>R</sub> by 0.5&#xa0;min compared to its monoglycosylated counterpart <bold>11</bold> (<italic>t</italic>
<sub>R</sub> &#x3d; 18.9&#xa0;min, <xref ref-type="table" rid="T1">Table 1</xref>).</p>
<table-wrap id="T1" position="float">
<label>TABLE 1</label>
<caption>
<p>Characterization of APP (glyco)peptides <bold>3&#x2013;16</bold> by analytical RP-HPLC and MALDI-MS<xref ref-type="table-fn" rid="Tfn1">
<sup>a</sup>
</xref>.</p>
</caption>
<table>
<thead valign="top">
<tr>
<th rowspan="2" align="left">APP (Glyco)peptides</th>
<th rowspan="2" align="center">Sequence</th>
<th align="center">RP-HPLC</th>
<th colspan="2" align="center">MALDI-TOF MS (M&#x2b;H)<sup>&#x2b;</sup>
</th>
</tr>
<tr>
<th align="center">t<sub>
<italic>R</italic>
</sub> (min)</th>
<th align="center">Calculated (Da)</th>
<th align="center">Observed (Da)</th>
</tr>
</thead>
<tbody valign="top">
<tr>
<td align="left">APP<sup>665-680</sup> (<bold>3</bold>)</td>
<td align="left">EISEVKM&#x223c;DAEFRHDSG</td>
<td align="center">14.0</td>
<td align="char" char=".">1848.98</td>
<td align="char" char=".">1849.10</td>
</tr>
<tr>
<td align="left">APP<sup>665-680</sup>-S&#x2a; (<bold>4</bold>)</td>
<td align="left">EIS&#x2a;EVKM&#x223c;DAEFRHDSG</td>
<td align="center">13.6</td>
<td align="char" char=".">2051.98</td>
<td align="char" char=".">2051.68</td>
</tr>
<tr>
<td align="left">APP<sup>665-680</sup>(NL) (<bold>5</bold>)</td>
<td align="left">EISEVNL&#x223c;DAEFRHDSG</td>
<td align="center">15.6</td>
<td align="char" char=".">1816.88</td>
<td align="char" char=".">1816.83</td>
</tr>
<tr>
<td align="left">APP<sup>665-680</sup>(NL)-S&#x2a; (<bold>6</bold>)</td>
<td align="left">EIS&#x2a;EVNL&#x223c;DAEFRHDSG</td>
<td align="center">15.0</td>
<td align="char" char=".">2019.88</td>
<td align="char" char=".">2018.54</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup> (<bold>7</bold>)</td>
<td align="left">IKTEEISEVKM&#x223c;DAEFRHDSG</td>
<td align="center">14.6</td>
<td align="char" char=".">2,320.54</td>
<td align="char" char=".">2,320.19</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup>-T&#x2a; (<bold>8</bold>)</td>
<td align="left">IKT&#x2a;EEISEVKM&#x223c;DAEFRHDSG</td>
<td align="center">14.4</td>
<td align="char" char=".">2,523.54</td>
<td align="char" char=".">2,527.26</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup>-T&#x2a;, S&#x2a; (<bold>9</bold>)</td>
<td align="left">IKT&#x2a;EEIS&#x2a;EVKM&#x223c;DAEFRHDSG</td>
<td align="center">16.9b</td>
<td align="char" char=".">2,726.54</td>
<td align="char" char=".">2,728.80</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup>(NL) (<bold>10</bold>)</td>
<td align="left">IKTEEISEVNL&#x223c;DAEFRHDSG</td>
<td align="center">16.0</td>
<td align="char" char=".">2,288.43</td>
<td align="char" char=".">2,290.09</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup>(NL)-T&#x2a; (<bold>11</bold>)</td>
<td align="left">IKT&#x2a;EEISEVNL&#x223c;DAEFRHDSG</td>
<td align="center">15.6/18.9<xref ref-type="table-fn" rid="Tfn2">
<sup>b</sup>
</xref>
</td>
<td align="char" char=".">2,491.43</td>
<td align="char" char=".">2,491.32</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup>(NL)-T&#x2a;, S&#x2a; (<bold>12</bold>)</td>
<td align="left">IKT&#x2a;EEIS&#x2a;EVNL&#x223c;DAEFRHDSG</td>
<td align="center">18.4<xref ref-type="table-fn" rid="Tfn2">
<sup>b</sup>
</xref>
</td>
<td align="char" char=".">2,694.43</td>
<td align="char" char=".">2,696.55</td>
</tr>
<tr>
<td align="left">APP<sup>661-694</sup> (<bold>13</bold>)<xref ref-type="table-fn" rid="Tfn3">
<sup>c</sup>
</xref>
</td>
<td align="left">IKTEEISEVKM&#x223c;DAEFRHDSGYEVHHQK&#x223c;LVFFAED</td>
<td align="center">17.6</td>
<td align="char" char=".">4,062.09</td>
<td align="char" char=".">4,062.27</td>
</tr>
<tr>
<td align="left">APP<sup>661-694</sup>-Y&#x2a; (<bold>14</bold>)<xref ref-type="table-fn" rid="Tfn3">
<sup>c</sup>
</xref>
</td>
<td align="left">IKTEEISEVKM&#x223c;DAEFRHDSGY&#x2a;EVHHQK&#x223c;VFFAED</td>
<td align="center">17.1</td>
<td align="char" char=".">4,265.14</td>
<td align="char" char=".">4,265.41</td>
</tr>
<tr>
<td align="left">APP<sup>661-694</sup>(NL) (<bold>15</bold>)<xref ref-type="table-fn" rid="Tfn3">
<sup>c</sup>
</xref>
</td>
<td align="left">IKTEEISEVNL&#x223c;DAEFRHDSGYEVHHQK&#x223c;LVFFAED</td>
<td align="center">18.2</td>
<td align="char" char=".">4,030.02</td>
<td align="char" char=".">4,029.37</td>
</tr>
<tr>
<td align="left">APP<sup>661-694</sup>(NL)-Y&#x2a; (<bold>16</bold>)<xref ref-type="table-fn" rid="Tfn3">
<sup>c</sup>
</xref>
</td>
<td align="left">IKTEEISEVNL&#x223c;DAEFRHDSGY&#x2a;EVHHQK&#x223c;LVFFAED</td>
<td align="center">17.8</td>
<td align="char" char=".">4,231.99</td>
<td align="char" char=".">4,232.71</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="Tfn1">
<label>a</label>
<p>
<bold>T&#x2a;</bold>/<bold>S&#x2a;/Y&#x2a;</bold> &#x3d; Thr<sup>663</sup>/Ser<sup>667</sup>/Tyr<sup>681</sup> O-linked GalNAc, NL, swedish mutation, M&#x223c;D and L&#x223c;D &#x3d; &#x3b2;-secretase cleavage site and K&#x223c;L &#x3d; &#x3b1;-secretase cleavage site. RP-HPLC, conditions and MALDI-TOF MS, analyses are described in the <xref ref-type="sec" rid="s10">Supplementary Material S2&#x2013;S9</xref>. Retention times (<italic>t</italic>
<sub>R</sub>) are given in minutes.</p>
</fn>
<fn id="Tfn2">
<label>b</label>
<p>RP-HPLC, conditions and MALDI-TOF MS, analyses are described in the <xref ref-type="sec" rid="s10">Supplementary Material S9&#x2013;S11</xref>.</p>
</fn>
<fn id="Tfn3">
<label>c</label>
<p>Reported in <xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>.</p>
</fn>
</table-wrap-foot>
</table-wrap>
</sec>
<sec id="s3-2">
<title>Conformational Properties of APP (Glyco)peptides</title>
<p>To study the role of <italic>O</italic>-glycosylation on the conformation of APP glycopeptides, circular dichroism (CD) spectroscopy was used to probe the secondary structure in three different solvents, water, sodium phosphate buffer (10&#xa0;mM, pH 7.4), and 50% trifluoroethanol (TFE) in water (v/v) (<xref ref-type="fig" rid="F1">Figure 1</xref>). The spectra were further analysed for secondary structure estimations by Beta Structure Selection (BeStSel) method, specifically designed for the analysis of beta sheet-rich proteins (<xref ref-type="table" rid="T2">Table 2</xref>) (<xref ref-type="bibr" rid="B37">Micsonai et al., 2015</xref>, <xref ref-type="bibr" rid="B36">2018</xref>).</p>
<fig id="F1" position="float">
<label>FIGURE 1</label>
<caption>
<p>Circular dichroism spectra of APP (glyco)peptides <bold>3&#x2013;12</bold> in <bold>(A)</bold> water <bold>(B)</bold> 10&#xa0;mM sodium phosphate buffer, pH 7.4, and <bold>(C)</bold> TFE/water &#x3d; 1:1 (v/v) at 25&#xb0;C.</p>
</caption>
<graphic xlink:href="fchem-10-859822-g001.tif"/>
</fig>
<table-wrap id="T2" position="float">
<label>TABLE 2</label>
<caption>
<p>Summary of the secondary content (%) present in APP (glyco)peptides <bold>3&#x2013;12</bold> determined by BeStSel for CD spectra obtained in (A) water (B) 10&#xa0;mM sodium phosphate buffer, pH 7.4, and (C) TFE/water &#x3d; 1:1 (v/v)<xref ref-type="table-fn" rid="Tfn4">
<sup>a</sup>
</xref>.</p>
</caption>
<table>
<thead valign="top">
<tr>
<th align="left">APP (glyco)peptides</th>
<th align="center">&#x3b1;-H (%)</th>
<th align="center">&#x3b2;-AP (%)</th>
<th align="center">&#x3b2;-P (%)</th>
<th align="center">&#x3b2;-T (%)</th>
<th align="center">RC (%)</th>
</tr>
</thead>
<tbody valign="top">
<tr>
<td colspan="6" align="left">(A)</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup> (<bold>3</bold>)</td>
<td align="char" char=".">14.8</td>
<td align="char" char=".">59.9</td>
<td align="char" char=".">18.1</td>
<td align="char" char=".">7.2</td>
<td align="char" char=".">0.0</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup>-S&#x2a; (<bold>4</bold>)</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">12.9</td>
<td align="char" char=".">87.1</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup>(NL) (<bold>5</bold>)</td>
<td align="char" char=".">34.5</td>
<td align="char" char=".">21.9</td>
<td align="char" char=".">35.9</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">7.7</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup>(NL)-S&#x2a; (<bold>6</bold>)</td>
<td align="char" char=".">19.2</td>
<td align="char" char=".">30.8</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">8.6</td>
<td align="char" char=".">41.4</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup> (<bold>7</bold>)</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">8.3</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">6.6</td>
<td align="char" char=".">85.1</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>-T&#x2a; (<bold>8</bold>)</td>
<td align="char" char=".">1.4</td>
<td align="char" char=".">5.4</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">5.7</td>
<td align="char" char=".">87.4</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>-T&#x2a;, S&#x2a; (<bold>9</bold>)</td>
<td align="char" char=".">12.8</td>
<td align="char" char=".">48.2</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">16.6</td>
<td align="char" char=".">22.4</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>(NL) (<bold>10</bold>)</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">9.3</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">90.7</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>(NL)-T&#x2a; (<bold>11</bold>)</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">12.5</td>
<td align="char" char=".">87.5</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>(NL)-T&#x2a;, S&#x2a; (<bold>12</bold>)</td>
<td align="char" char=".">18.0</td>
<td align="char" char=".">45.8</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">9.2</td>
<td align="char" char=".">27.0</td>
</tr>
<tr>
<td colspan="6" align="left">(B)</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup> (<bold>3</bold>)</td>
<td align="char" char=".">6.1</td>
<td align="char" char=".">39.8</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">19.8</td>
<td align="char" char=".">34.3</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup>-S&#x2a; (<bold>4</bold>)</td>
<td align="char" char=".">9.3</td>
<td align="char" char=".">33.6</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">14.9</td>
<td align="char" char=".">42.2</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup>(NL) (<bold>5</bold>)</td>
<td align="char" char=".">6.7</td>
<td align="char" char=".">34.6</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">23.2</td>
<td align="char" char=".">35.6</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup>(NL)-S&#x2a; (<bold>6</bold>)</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">41.3</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">33.5</td>
<td align="char" char=".">25.3</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup> (<bold>7</bold>)</td>
<td align="char" char=".">8.4</td>
<td align="char" char=".">36.1</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">15.7</td>
<td align="char" char=".">39.8</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>-T&#x2a; (<bold>8</bold>)</td>
<td align="char" char=".">8.8</td>
<td align="char" char=".">42.6</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">18.3</td>
<td align="char" char=".">30.4</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>-T&#x2a;, S&#x2a; (<bold>9</bold>)</td>
<td align="char" char=".">9.5</td>
<td align="char" char=".">24.6</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">17.1</td>
<td align="char" char=".">48.7</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>(NL) (<bold>10</bold>)</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">34.4</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">15.0</td>
<td align="char" char=".">50.6</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>(NL)-T&#x2a; (<bold>11</bold>)</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">16.6</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">6.6</td>
<td align="char" char=".">76.8</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>(NL)-T&#x2a;, S&#x2a; (<bold>12</bold>)</td>
<td align="char" char=".">3.6</td>
<td align="char" char=".">47.9</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">17.2</td>
<td align="char" char=".">31.2</td>
</tr>
<tr>
<td colspan="6" align="left">(C)</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup> <bold>(3)</bold>
</td>
<td align="char" char=".">66.2</td>
<td align="char" char=".">2.7</td>
<td align="char" char=".">12.6</td>
<td align="char" char=".">0.9</td>
<td align="char" char=".">17.6</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup>-S&#x2a; <bold>(4)</bold>
</td>
<td align="char" char=".">52.2</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">2.9</td>
<td align="char" char=".">44.9</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup>(NL) <bold>(5)</bold>
</td>
<td align="char" char=".">59.9</td>
<td align="char" char=".">3.5</td>
<td align="char" char=".">3.2</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">33.3</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>665-680</sup>(NL)-S&#x2a; <bold>(6)</bold>
</td>
<td align="char" char=".">66.7</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">0.7</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">32.6</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup> <bold>(7)</bold>
</td>
<td align="char" char=".">88.7</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">3.2</td>
<td align="char" char=".">8.1</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>-T&#x2a; <bold>(8)</bold>
</td>
<td align="char" char=".">85.7</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">6.0</td>
<td align="char" char=".">8.3</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>-T&#x2a;, S&#x2a; <bold>(9)</bold>
</td>
<td align="char" char=".">94.4</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">5.6</td>
<td align="char" char=".">0.0</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>(NL) <bold>(10)</bold>
</td>
<td align="char" char=".">36.8</td>
<td align="char" char=".">9.7</td>
<td align="char" char=".">7.5</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">46.0</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>(NL)-T&#x2a; <bold>(11)</bold>
</td>
<td align="char" char=".">40.3</td>
<td align="char" char=".">6.1</td>
<td align="char" char=".">4.7</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">48.9</td>
</tr>
<tr>
<td align="left">
<bold>&#x2003;</bold>APP<sup>661-680</sup>(NL)-T&#x2a;, S&#x2a; <bold>(12)</bold>
</td>
<td align="char" char=".">86.2</td>
<td align="char" char=".">0.0</td>
<td align="char" char=".">3.1</td>
<td align="char" char=".">6.5</td>
<td align="char" char=".">4.3</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="Tfn4">
<label>a</label>
<p>The content is divided into &#x3b1;-helix (&#x3b1;-H), anti-parallel &#x3b2;-sheet (&#x3b2;-AP), parallel &#x3b2;-sheet (&#x3b2;-P), &#x3b2;-turn (&#x3b2;-T), and random coil (RC).</p>
</fn>
</table-wrap-foot>
</table-wrap>
<p>In water, the addition of <italic>N</italic>-terminal fragment, EISEVKM (native) or EISEVNL (Swedish-mutated), to A&#x3b2;-(1&#x2013;9) in <bold>3</bold> and <bold>5</bold>, respectively, exhibited characteristics of &#x3b2;-sheet structure that closely resembled the CD spectra of other A&#x3b2; variants in water (J. and G., 1991; <xref ref-type="bibr" rid="B25">Juszczyk et al., 2005</xref>; <xref ref-type="bibr" rid="B29">Lambermon et al., 2005</xref>). However, further extension of the <italic>N</italic>-terminal fragment with the additional four amino acids (IKTE) in native <bold>7</bold> and Swedish-mutated <bold>10</bold>, respectively, increased the overall hydrophilicity of A&#x3b2;-(1&#x2013;9) and caused a conformation shift from &#x3b2;-sheet to random coil (<xref ref-type="fig" rid="F1">Figure 1A</xref>). This agrees with our previous work where addition of the <italic>N</italic>-terminal fragment, IKTEEISEVKM (native), to &#x3b2;-sheet-forming A&#x3b2;-(1&#x2013;23) peptide in <bold>13</bold>, was also largely disordered (<xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>). Deconvolution of the spectra revealed that native peptide <bold>3</bold> had the highest amount of &#x3b2;-structure (85.2%, anti-parallel &#x3b2;-sheet, parallel &#x3b2;-sheet, and &#x3b2;-turn), with the majority being anti-parallel &#x3b2;-sheet (59.9%), and the remaining being &#x3b1;-helix (14.8%) (<xref ref-type="table" rid="T2">Table 2</xref>). The presence of the Swedish double-mutation in <bold>5</bold>, resulted in an increase in &#x3b1;-helix and decrease in the &#x3b2;-structure amounts (34.5 and 57.8%, respectively). The distribution of &#x3b1;-helix and &#x3b2;-structure content in five is similar to the Swedish-mutated A&#x3b2;-(1&#x2013;23) peptide <bold>15</bold>, (<xref ref-type="bibr" rid="B25">Juszczyk et al., 2005</xref>; <xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>). CD spectra clearly indicates that regardless of the Swedish mutation, addition of the <italic>N</italic>-terminal fragment, IKTEEISEVKM or IKTEEISEVNL, to A&#x3b2;-(1&#x2013;9) significantly increased the percentage of random coil in <bold>7</bold> and <bold>10</bold> (85.1 and 90.7%, respectively). Site-specific <italic>O</italic>-glycosylation of Ser<sup>667</sup> in glycopeptides <bold>4</bold> and <bold>6</bold> caused their structure to be largely disordered (87.1% and 41.4%, respectively) with complete loss of parallel &#x3b2;-sheets compared to their nonglycosylated counterparts <bold>3</bold> and <bold>5</bold>, respectively (<xref ref-type="fig" rid="F1">Figure 1A</xref>). This effect was more pronounced for the native glycopeptide <bold>4</bold> where &#x3b2;-structure along with &#x3b1;-helix was significantly reduced (12.9% and 0%, respectively). On the other hand, the Swedish-mutated glycopeptide <bold>6</bold> was less prone to change in its &#x3b2;-structure and &#x3b1;-helix amounts (39.4% and 19.2%, respectively) (<xref ref-type="table" rid="T2">Table 2</xref>). Also, the site-specific <italic>O</italic>-glycosylation of Thr<sup>663</sup> in glycopeptides <bold>8</bold> and <bold>11</bold> did not significantly change the secondary conformation compared to their nonglycosylated counterparts <bold>7</bold> and <bold>10</bold>, respectively, that were already largely disordered in water (85&#x2013;90%). Hence, we were able to confirm that the addition of a single GalNAc moiety in APP 661&#x2013;694 derived glycopeptides is able to break ordered secondary structures and cause it to be disordered in water (<xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>). Interestingly, by increasing the glycan valency in glycopeptides <bold>9</bold> and <bold>12</bold>, the amount &#x3b2;-structure increased (64.8 and 55.0%, respectively) and random coil decreased (22.4 and 27.0%, respectively). Therefore, glycan valency is an important determinant of the secondary structure of APP glycopeptides in water.</p>
<p>To evaluate secondary structure in a more physiologically relevant buffer setting, the CD spectra of (glyco)peptides were recorded in sodium phosphate buffer of low ionic strength (10&#xa0;mM, pH 7.4). As expected, the (glyco)peptides indicated the presence of an unfolded state and were partially disordered with some &#x3b2;-structure properties. Deconvolution of the spectra revealed a prominent presence of random coil (25&#x2013;77%) and antiparallel &#x3b2;-sheet (17&#x2013;48%), followed by &#x3b2;-turn (7&#x2013;34%), and lastly, &#x3b1;-helix (0&#x2013;10%) (<xref ref-type="fig" rid="F1">Figure 1B</xref> and <xref ref-type="table" rid="T2">Table 2</xref>) (<xref ref-type="bibr" rid="B22">Hortschansky et al., 2005</xref>; <xref ref-type="bibr" rid="B52">Tew et al., 2008</xref>; <xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>). The Swedish-mutated diglycosyated peptide <bold>12</bold> showed the highest amount of antiparallel &#x3b2;-sheet (47.9%) whereas its monoglycosylated counterpart <bold>11</bold> had the highest amount of random coil (76.8%) in this solvent system. Notable, in the absence of parallel &#x3b2;-sheets, the ratio of the remaining structural elements varied depending on the modifications (Swedish mutation and/or glycosylation) incorporated into the peptide sequences (<xref ref-type="fig" rid="F1">Figure 1B</xref> and <xref ref-type="table" rid="T2">Table 2</xref>). These findings are in agreement with the previously reported CD data for A&#x3b2; peptides of different length; the A&#x3b2;-(1&#x2013;42) peptide exhibited slightly higher &#x3b1;-helix and random coil content compared to A&#x3b2;-(1&#x2013;16) peptide that has higher &#x3b2;-sheet and &#x3b2;-turn content (<xref ref-type="bibr" rid="B52">Tew et al., 2008</xref>). Likewise, our previously reported (glyco)peptides containing longer A&#x3b2;-(1&#x2013;23) fragment <bold>(13&#x2013;16)</bold> showed higher &#x3b1;-helix and random coil, and lower antiparallel &#x3b2;-sheet content, in sodium phosphate buffer (<xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>) compared to (glyco)peptides analysed in this study that contain shorter A&#x3b2;-(1&#x2013;9) fragment <bold>(3&#x2013;12)</bold>. Hence, A&#x3b2; occurs in various isoforms that differ by the number of residues at the <italic>C</italic>-terminal end of the peptides, which impacts the secondary structural preferences of the peptides in solution.</p>
<p>APP is an integral membrane protein whose behaviour can be modified by molecules such as trifluoroethanol (TFE) that partition the membrane-water interface and change the physiochemical properties of the lipid bilayer (<xref ref-type="bibr" rid="B5">Barry and Gawrisch, 1994</xref>; <xref ref-type="bibr" rid="B42">&#xd6;zdirekcan et al., 2008</xref>). We have previously investigated the effects of TFE on a molecular level using CD spectroscopy to obtain an account of the &#x3b1;-helix-forming potential of model (glyco)peptides <bold>13&#x2013;16</bold> containing the Tyr<sup>681</sup> <italic>O</italic>-linked glycosylation in A&#x3b2;-(1&#x2013;23) region of APP (<xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>). Upon addition of TFE into water (1:1, v/v), the (glyco)peptides showed a significant increase in &#x3b1;-helix and random coil content and decrease in &#x3b2;-structure content (<xref ref-type="fig" rid="F1">Figure 1C</xref>). Upon further analysis, shorter native peptide <bold>3</bold> had slightly higher &#x3b1;-helix content (66.2%) than its Swedish-mutated counterpart <bold>5</bold> (59.9%), however, this difference was larger between the longer native peptide <bold>7</bold> (88.7%) and its Swedish-mutated counterpart <bold>10</bold> (36.8%) (<xref ref-type="table" rid="T2">Table 2</xref>). Regardless of the length of A&#x3b2; fragment, the Swedish mutation significantly reduced the amount of &#x3b1;-helix and increased &#x3b2;-sheet and random coil secondary structure elements in this solvent system. Similarly, site-specific <italic>O</italic>-glycosylation of Thr<sup>663</sup> and Tyr<sup>681</sup> (<xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>) slightly decreased the &#x3b1;-helix and increased the random coil content in native glycopeptides, <bold>8</bold> and <bold>14</bold> respectively, whereas it increased &#x3b1;-helix and decreased random coil content in Swedish-mutated glycopeptides, <bold>11</bold> and <bold>16</bold> respectively, with this effect being more pronounced for <bold>16</bold>. Lastly, regardless of the Swedish mutation, the attachment of two GalNAc moieties on Thr<sup>663</sup> and Ser<sup>667</sup> within the peptide sequence drastically increased the &#x3b1;-helix content in <bold>9</bold> and <bold>12</bold> (94.4% and 86.2%, respectively), in this solvent system. These findings suggest that in membrane-mimicking conditions, excess <italic>O</italic>-glycosylation can hamper the effects of the Swedish mutation on secondary structure and prompt it to become largely &#x3b1;-helical.</p>
</sec>
<sec id="s3-3">
<title>BACE-1 Activity of APP (Glyco)peptides</title>
<p>Glycosylation can alter substrate recognition and impact enzyme activity in either a positive (enhancing) or negative (inhibiting) manner (<xref ref-type="bibr" rid="B15">Goettig, 2016</xref>; <xref ref-type="bibr" rid="B16">Goth et al., 2018</xref>). The mucin-type <italic>O</italic>-linked glycosylation of a protein may not only affect its conformation but also affect its transport and localization in the cell (<xref ref-type="bibr" rid="B35">Matsuura et al., 1989</xref>; <xref ref-type="bibr" rid="B9">Chen et al., 2002</xref>). Proteases are highly regulated by post-translational modifications and drive fate, localization, and activity of many proteins (<xref ref-type="bibr" rid="B8">Bond, 2019</xref>). Certain mutations can also affect the subcellular localization of the cleavage event by crucial proteases and mediate a different cellular mechanism for the protein (<xref ref-type="bibr" rid="B17">Haass et al., 1995</xref>). We have previously reported that the Swedish mutation is an important criterion for enhancing both ADAM10 (&#x3b1;-secretase) and BACE1 (&#x3b2;-secretase) cleavage rates of A&#x3b2;-(1&#x2013;23) model (glyco)peptides <bold>13&#x2013;16</bold>, where site-specific mucin-type <italic>O</italic>-linked glycosylation of Tyr<sup>681</sup> residue in <bold>16</bold> further increased BACE-1 driven amyloid pathway (<xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>). Therefore, similar enzyme cleavage assays with BACE-1 were set up to explore the effect of the Swedish mutation, length of the amino acid sequence, glycan position and valency on the proteolytic susceptibility of <bold>3&#x2013;12</bold>. BACE1 produced two fragments upon cleavage of (glyco)peptides, for which yields were determined after 24&#xa0;h treatment. The yields of intact peptide and fragments were evaluated by the RP-HPLC peaks integration (<xref ref-type="table" rid="T3">Table 3</xref>, and the <xref ref-type="sec" rid="s10">Supplementary Material S20&#x2013;S32</xref>).</p>
<table-wrap id="T3" position="float">
<label>TABLE 3</label>
<caption>
<p>Proteolytic cleavage of APP (glyco)peptides <bold>3&#x2013;12</bold> upon treatment with BACE-1 enzyme (KM&#x223c;D/NL&#x223c;D cleavage site)<xref ref-type="table-fn" rid="Tfn5">
<sup>a</sup>
</xref>.</p>
</caption>
<table>
<thead valign="top">
<tr>
<th rowspan="2" align="left">APP (glyco)peptides</th>
<th colspan="2" align="center">BACE-1 activity</th>
</tr>
<tr>
<th align="center">Recovered (%)</th>
<th align="center">Cleaved (%)</th>
</tr>
</thead>
<tbody valign="top">
<tr>
<td align="left">APP<sup>665-680</sup> <bold>(3)</bold>
</td>
<td align="char" char=".">95.5</td>
<td align="char" char=".">4.48</td>
</tr>
<tr>
<td align="left">APP<sup>665-680</sup>-S&#x2a; <bold>(4)</bold>
</td>
<td align="char" char=".">98.6</td>
<td align="char" char=".">1.40</td>
</tr>
<tr>
<td align="left">APP<sup>665-680</sup>(NL) <bold>(5)</bold>
</td>
<td align="char" char=".">3.82</td>
<td align="char" char=".">96.2</td>
</tr>
<tr>
<td align="left">APP<sup>665-680</sup>(NL)-S&#x2a; <bold>(6)</bold>
</td>
<td align="char" char=".">7.02</td>
<td align="char" char=".">93.0</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup> <bold>(7)</bold>
</td>
<td align="char" char=".">96.6</td>
<td align="char" char=".">3.40</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup>-T&#x2a; <bold>(8)</bold>
</td>
<td align="char" char=".">91.5</td>
<td align="char" char=".">8.46</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup>-T&#x2a;, S&#x2a; <bold>(9)</bold>
</td>
<td align="char" char=".">95.9</td>
<td align="char" char=".">4.12</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup>(NL) <bold>(10)</bold>
</td>
<td align="char" char=".">20.3</td>
<td align="char" char=".">79.7</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup>(NL)-T&#x2a; <bold>(11)</bold>
</td>
<td align="char" char=".">1.90</td>
<td align="char" char=".">98.1</td>
</tr>
<tr>
<td align="left">APP<sup>661-680</sup>(NL)-T&#x2a;, S&#x2a; <bold>(12)</bold>
</td>
<td align="char" char=".">3.90</td>
<td align="char" char=".">96.1</td>
</tr>
<tr>
<td align="left">APP<sup>661-694</sup> <bold>(13)</bold>
</td>
<td align="char" char=".">100<xref ref-type="table-fn" rid="Tfn6">
<sup>b</sup>
</xref>
</td>
<td align="char" char=".">0.0<xref ref-type="table-fn" rid="Tfn6">
<sup>b</sup>
</xref>
</td>
</tr>
<tr>
<td align="left">APP<sup>661-694</sup>-Y&#x2a; <bold>(14)</bold>
</td>
<td align="char" char=".">100<xref ref-type="table-fn" rid="Tfn6">
<sup>b</sup>
</xref>
</td>
<td align="char" char=".">0.0<xref ref-type="table-fn" rid="Tfn6">
<sup>b</sup>
</xref>
</td>
</tr>
<tr>
<td align="left">APP<sup>661-694</sup>(NL) <bold>(15)</bold>
</td>
<td align="char" char=".">86.8<xref ref-type="table-fn" rid="Tfn6">
<sup>b</sup>
</xref>
</td>
<td align="char" char=".">13.1<xref ref-type="table-fn" rid="Tfn6">
<sup>b</sup>
</xref>
</td>
</tr>
<tr>
<td align="left">APP<sup>661-694</sup>(NL)-Y&#x2a; <bold>(16)</bold>
</td>
<td align="char" char=".">57.4<xref ref-type="table-fn" rid="Tfn6">
<sup>b</sup>
</xref>
</td>
<td align="char" char=".">42.4<xref ref-type="table-fn" rid="Tfn6">
<sup>b</sup>
</xref>
</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="Tfn5">
<label>a</label>
<p>The values were calculated as described in the <italic>Methods</italic> with SD &#x3c;5% and identity of the fragments was determined by RP-HPLC, analysis and confirmed by MALDI-TOF (see the <xref ref-type="sec" rid="s10">Supplementary Material S20&#x2013;S32</xref>).</p>
</fn>
<fn id="Tfn6">
<label>b</label>
<p>Reported in <xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>.</p>
</fn>
</table-wrap-foot>
</table-wrap>
<p>Regardless of glycosylation, the native A&#x3b2;-(1&#x2013;9) model (glyco)peptides <bold>3</bold> and <bold>4</bold> showed almost full recovery after incubation with BACE-1 (95.5% and 98.6%, respectively). The extension of the native (glyco)peptide sequence at the <italic>N</italic>-terminus with IKTEEISEVKM in <bold>7</bold> and <bold>8</bold> also resulted in a very low BACE-1 proteolysis, 3.4% and 8.5%, respectively. Increasing the glycan valency to two, in native glycopeptide <bold>9</bold>, did not significantly alter cleavage rates (95.9% recovery). It became evident that the presence of the Swedish mutation in five was a driving force for the near complete cleavage of the peptide (96.2%). Interestingly, the extension of the peptide sequence at the <italic>N</italic>-terminus with IKTEEISEVNL in <bold>10</bold> showed a lower amount of the peptide cleaved (79.7%) in comparison to shorter peptide fragment <bold>5</bold>. Thus, a longer <italic>N</italic>-terminal fragment flanking the A&#x3b2; region can hamper its proteolytic susceptibility and result in slower cleavage rates by BACE-1. Glycosylation had a more significant effect on the sequence carrying the Swedish mutation, where regardless of the <italic>N</italic>-terminal fragment length, glycan position and valency, BACE-1 treatment resulted in 93&#x2013;98% cleaved products for glycopeptides <bold>6</bold> and <bold>11&#x2013;12</bold>. This agrees with our previous findings that apart from the Swedish mutation, the presence of <italic>O</italic>-glycosylation can drive BACE-1 cleavage rates and result in increased A&#x3b2; production (<xref ref-type="bibr" rid="B48">Singh et al., 2021</xref>).</p>
<p>Other key aspects affecting BACE-1 cleavage rates in the presence of the Swedish mutation were the length of the <italic>C</italic>-terminal A&#x3b2; fragment and the glycan position relative to the cleavage site. For example, <bold>16</bold> contains A&#x3b2;-(1&#x2013;23) <italic>C</italic>-terminal fragment and is cleaved to a much lesser extent (42.4%) by BACE-1 than <bold>11</bold> that contains A&#x3b2;-(1&#x2013;9) <italic>C</italic>-terminal fragment (98.1%). Moreover, the relative position of the GalNAc moiety on Thr<sup>663</sup> and Tyr<sup>681</sup> in <bold>11</bold> and <bold>16</bold>, respectively, can also influence enzymatic activity. Even though <bold>16</bold> is cleaved to a lesser extent than <bold>11</bold> by BACE-1, the &#x223c;3-fold increase in cleaved products compared to its non-glycosylated counterpart <bold>15</bold> is observed. This further points to a stronger effect of Tyr<sup>681</sup> <italic>O</italic>-glycosylation on the <italic>C</italic>-terminal A&#x3b2; fragment in accelerating BACE-1 activity. Therefore, we can postulate that in the presence of the Swedish mutation, excess <italic>O</italic>-glycosylation proximal to BACE-1 cleavage site can significantly increase the cleavage propensity of the peptides for the amyloid pathway, with this effect being more pronounced when the glycosylation is on the <italic>C</italic>-terminal A&#x3b2; side of the cleavage site.</p>
<p>The subcellular localization of BACE-1 cleavage of Swedish-mutated APP differs greatly from that for native APP, where the former is localized to a post Golgi compartment for A&#x3b2; generation and outcompetes anti-amyloidogenic processing by &#x3b1;-secretases (<xref ref-type="bibr" rid="B17">Haass et al., 1995</xref>; <xref ref-type="bibr" rid="B53">Thinakaran et al., 1996</xref>). However, little is known regarding the regulatory role of mucin-type <italic>O</italic>-linked glycosylation of APP on BACE-1 activity, and these results are particularly interesting, since A&#x3b2; peptides in CSF of AD patients are heavily glycosylated by mucin-type <italic>O</italic>-linked glycans (<xref ref-type="bibr" rid="B18">Halim et al., 2011</xref>). Thus, we can speculate that both Swedish mutation and mucin-type <italic>O</italic>-linked glycosylation increase APP processing because the former provides a better cleavage site for BACE-1, and the latter changes the conformation and increases the sensitivity of the protein to BACE-1.</p>
</sec>
<sec id="s3-4">
<title>Aggregation Kinetics of APP (Glyco)peptides on A&#x3b2;40 Fibrillogenesis</title>
<p>We adopted the widely used thioflavin T (ThT) assay (<xref ref-type="bibr" rid="B56">Xue et al., 2017</xref>) to investigate how <italic>O</italic>-glycosylation impacts the kinetics of fiber formation of A&#x3b2;40, a model peptide for studying the dynamics of protein aggregation. The aggregation kinetic profile of A&#x3b2;40 peptide (10&#xa0;&#x3bc;M) exhibited a typical sigmoidal curve with three different regions: a lag phase associated with nucleation, a rapid growth phase for elongation and polymerization by fibrils, and a final saturation phase dominated with mature fibrils (<xref ref-type="fig" rid="F2">Figure 2</xref>, <xref ref-type="sec" rid="s10">Supplementary Material S33&#x2013;S40</xref>). At the conditions used in this study, it has been shown that A&#x3b2; amyloidogenesis proceeds by a nucleation-dependent polymerization mechanism that involves key soluble oligomeric intermediates (<xref ref-type="bibr" rid="B12">Du et al., 2011</xref>; <xref ref-type="bibr" rid="B13">Elbassal et al., 2017</xref>). The half time (<italic>t</italic>
<sub>50</sub>) of the growth phase of the A&#x3b2;40 amyloidogenesis was approximately 8&#xa0;h (<xref ref-type="fig" rid="F2">Figure 2</xref>, <xref ref-type="sec" rid="s10">Supplementary Material S33&#x2013;S40</xref>), where <italic>t</italic>
<sub>50</sub> is defined as the time at which the fluorescence intensity reaches the midpoint between the pre- and post-aggregation baselines.</p>
<fig id="F2" position="float">
<label>FIGURE 2</label>
<caption>
<p>Effect of APP peptides <bold>3, 5, 7, 10, 13</bold>, and <bold>15 (A)</bold> and glycopeptides <bold>4, 6, 8, 9, 11, 12, 14, 16 (B)</bold> on the aggregation kinetics of A&#x3b2;40 (10&#xa0;&#xb5;M) using ThT fluorescence assay in phosphate buffer (50&#xa0;mM, pH 7.4) at 37&#xb0;C. The concentration of (glyco)peptides was 10 and 50&#xa0;&#xb5;M <sup>a</sup>Peptide 13 was run at 10 and 25&#xa0;&#xb5;M &#x2a;Aggregation half-time (&#x394;t<sub>50</sub>) &#x3d; APP (glyco)peptide t<sub>50</sub>&#x2014;A&#x3b2;40 t<sub>50</sub>. The t<sub>50</sub> values are means of triplicate kinetics results. Alongside are tapping mode atomic force microscopy images of A&#x3b2;40 fibril growth upon 24&#xa0;h incubation with nonglycosylated peptides, <bold>13</bold> and <bold>15 (A)</bold> and Tyr-<italic>O</italic>-glycopeptides, <bold>14</bold> and <bold>16 (B)</bold>.</p>
</caption>
<graphic xlink:href="fchem-10-859822-g002.tif"/>
</fig>
<p>Although recent studies have implicated small soluble oligomers, as the main culprits of A&#x3b2; toxicity and AD pathogenesis (<xref ref-type="bibr" rid="B57">Yang et al., 2017</xref>), very little is known about the exact mechanism of oligomeric assembly and the conformation of peptides in this early event of A&#x3b2; aggregation. In the presence of APP (glyco) peptides <bold>3&#x2013;16</bold> at two concentrations (10 and 50&#xa0;&#xb5;M), the kinetics of aggregation of A&#x3b2;40 was described by a sigmoidal curve, with a lag phase that varied depending on the internal modifications of the (glyco)peptides such as the Swedish mutation, site-specific <italic>O</italic>-glycosylation, glycan valency and/or sequence length. The curves reached a plateau after approximately 24&#xa0;h (<xref ref-type="sec" rid="s10">Supplementary Material S33&#x2013;S40</xref>). The nonglycosylated peptides <bold>3</bold>, <bold>5</bold>, and <bold>7</bold> displayed no marked effect either on the lag phase (&#x394;t<sub>50</sub> &#x3c;2&#xa0;h, <xref ref-type="fig" rid="F2">Figure 2A</xref>) or the final ThT fluorescence intensity in comparison to control A&#x3b2;40 peptide alone (<xref ref-type="sec" rid="s10">Supplementary Figures S1A&#x2013;S3A</xref>, <xref ref-type="sec" rid="s10">Supplementary Material S33&#x2013;S35</xref>). Interestingly, we observed a slight delay in the aggregation process by the Swedish-mutated peptide <bold>10</bold> (&#x394;t<sub>50</sub> &#x3d; 3.2&#xa0;h at 50&#xa0;&#x3bc;M, <xref ref-type="fig" rid="F2">Figure 2A</xref>, <xref ref-type="sec" rid="s10">Supplementary Figure S4A</xref>, <xref ref-type="sec" rid="s10">Supplementary Material S36</xref>) with extended <italic>N</italic>-terminal domain. Increasing the C-terminal domain sequence in <bold>13 and 15</bold>, to include A&#x3b2;-(1&#x2013;23) fragment, led to a much larger effect on the lag phase (<xref ref-type="sec" rid="s10">Supplementary Figures S5A, S6A</xref>, <xref ref-type="sec" rid="s10">Supplementary Material S38&#x2013;S39</xref>), with &#x394;t<sub>50</sub> &#x3d; 7.1&#xa0;h for <bold>13</bold> (25&#xa0;&#xb5;M) and &#x394;t<sub>50</sub> &#x3d; 5.2&#xa0;h for <bold>15</bold> (50&#xa0;&#xb5;M) (<xref ref-type="fig" rid="F2">Figure 2A</xref>), indicating an inhibitory effect on A&#x3b2;40 aggregation. Notably, we observed a complete saturation of the ThT signal for native peptide <bold>13</bold> at higher concentration (50&#xa0;&#xb5;M) (<xref ref-type="sec" rid="s10">Supplementary Figures S5A,B</xref>, <xref ref-type="sec" rid="s10">Supplementary Material S38</xref>). Hence, the aggregation of A&#x3b2;40 in the presence of nonglycosylated peptides <bold>3, 5, 7, 10, 13</bold>, or <bold>15</bold> displayed a longer lag phase when the length of the A&#x3b2; fragment was increased. The effect of the Swedish mutation was less clear and varied regardless of peptide length.</p>
<p>To evaluate A&#x3b2;40 aggregation in the presence of glycopeptides, we first performed kinetics with the free GalNAc sugar (10 and 50&#xa0;&#xb5;M) that showed minimal difference in &#x394;t<sub>50</sub> values (&#x394;t<sub>50</sub> &#x3c;0.5&#xa0;h, <xref ref-type="fig" rid="F2">Figure 2B</xref>). The presence of a single GalNAc moiety on Ser<sup>667</sup> in native glycopeptide four increased the lag phase substantially (&#x394;t<sub>50</sub> &#x3d; 6.7&#xa0;h at 50&#xa0;&#x3bc;M, <xref ref-type="fig" rid="F2">Figure 2B</xref>, and <xref ref-type="sec" rid="s10">Supplementary Figure S1B</xref> in the <xref ref-type="sec" rid="s10">Supplementary Material S33</xref>) and delayed A&#x3b2;40 aggregation much more compared to its non-glycosylated counterpart <bold>3</bold>. Extension of the <italic>N</italic>-terminal domain sequence in native glycopeptide eight by IKTE, slightly decreased the &#x394;t<sub>50</sub> value (&#x394;t<sub>50</sub> &#x3d; 5&#xa0;h at 50&#xa0;&#x3bc;M, <xref ref-type="fig" rid="F2">Figure 2B</xref>, and <xref ref-type="sec" rid="s10">Supplementary Figure S3B</xref> in the <xref ref-type="sec" rid="s10">Supplementary Material S35</xref>) compared to four. However, increasing the glycan valency in nine resulted in gain in inhibition of A&#x3b2;40 aggregation and further increase of the lag phase (&#x394;t<sub>50</sub> &#x3d; 7.7&#xa0;h at 50&#xa0;&#x3bc;M, <xref ref-type="fig" rid="F2">Figure 2B</xref>, <xref ref-type="sec" rid="s10">Supplementary Figure S3C</xref>, <xref ref-type="sec" rid="s10">Supplementary Material S36</xref>). Regardless of the length of the <italic>N</italic>-terminal domain sequence, the presence of the Swedish mutation in <bold>6</bold> and <bold>11</bold> completely suppressed the inhibitory effect of <italic>O</italic>-glycosylation on A&#x3b2;40 aggregation exhibited by <bold>8</bold> (&#x394;t<sub>50</sub> &#x3d; 0&#xa0;h at 50&#xa0;&#x3bc;M, <xref ref-type="fig" rid="F2">Figure 2B</xref>, and <xref ref-type="sec" rid="s10">Supplementary Figure S2B, S4B</xref> in the <xref ref-type="sec" rid="s10">Supplementary Material S34,S37</xref>). A drastic increase in the &#x394;t<sub>50</sub> value for diglycosylated and Swedish mutated peptide <bold>12</bold> (&#x394;t<sub>50</sub> &#x3d; 7.8&#xa0;h at 50&#xa0;&#x3bc;M, <xref ref-type="fig" rid="F2">Figure 2B</xref>, and <xref ref-type="sec" rid="s10">Supplementary Figure S4C</xref> in the <xref ref-type="sec" rid="s10">Supplementary Material S37</xref>) clearly indicated that <italic>O</italic>-glycosylation at multiple sites of attachment can overcome the effect of the Swedish mutation and cause A&#x3b2;40 to aggregate at slower rates. Consistent with their nonglycosylated versions <bold>13</bold> and <bold>15</bold>, the extension of the A&#x3b2; fragment and site-specific <italic>O</italic>-glycosylation of Tyr<sup>681</sup> in <bold>14</bold> and <bold>16</bold> showed the largest difference in lag phase and strongest inhibition of A&#x3b2;40 aggregation profile, with &#x394;t<sub>50</sub> &#x3d; 12.1&#xa0;h for <bold>14</bold> (50&#xa0;&#xb5;M) and &#x394;t<sub>50</sub> &#x3d; 15.2&#xa0;h for <bold>16</bold> (50&#xa0;&#xb5;M) (<xref ref-type="fig" rid="F2">Figure 2B</xref>, and <xref ref-type="sec" rid="s10">Supplementary Figures S5C, S6B</xref> in the <xref ref-type="sec" rid="s10">Supplementary Material S39&#x2013;S40</xref>). Along with having a prolonged lag phase, <bold>14</bold> also reduces the final ThT fluorescence intensity dramatically (&#x223c;50%), suggesting a significant interference in A&#x3b2;40 aggregation. Therefore, our results suggest that <italic>O</italic>-glycosylation inhibits A&#x3b2;40 aggregation in a concentration-dependent manner, and this effect is more pronounced when the glycopeptides contain the longer A&#x3b2;-(1&#x2013;23) fragment and GalNAc modification on Tyr<sup>681</sup>(<bold>14</bold> and <bold>16</bold>). It is also important to mention that by reducing the length of the A&#x3b2; fragment to A&#x3b2;-(1&#x2013;9), we were able to detect the key differences between the Swedish-mutated (<bold>6</bold> and <bold>11</bold>) and mono-/diglycosylated analogues (<bold>4, 8, 9</bold>, and <bold>12</bold>) on A&#x3b2;40 aggregation kinetics.</p>
<p>The morphology of the tyrosine (glyco) peptide aggregates (<bold>13&#x2013;16</bold>) co-incubated with A&#x3b2;40 was examined using atomic force microscopy (AFM). In the absence of (glyco)peptides, A&#x3b2;40 forms a dense meshwork of amyloid fibrils (<xref ref-type="fig" rid="F2">Figure 2</xref>). In the presence of native peptide <bold>13</bold> (25&#xa0;&#x03BC;M) lower density of A&#x3b2;40 fibrils is observed (<xref ref-type="fig" rid="F2">Figure 2A</xref>). Similarly, addition of glycosylated counterpart <bold>14</bold> (50&#xa0;&#x03BC;M), resulted in less fibrils formed, and the ones formed were shorter in size (<xref ref-type="fig" rid="F2">Figure 2B</xref>). This is consistent with the ThT kinetics data for <bold>13</bold> and <bold>14</bold> at 25 and 50&#xa0;&#x03BC;M, respectively. The addition of the Swedish-mutated peptide <bold>15</bold> (50&#xa0;&#xb5;M) to A&#x3b2;40 resulted in the fibrilar morphology similar to that of A&#x3b2;40 alone (<xref ref-type="fig" rid="F2">Figure 2A</xref>). However, its glycosylated counterpart <bold>16</bold> was able to partially inhibit the fibril formation, resulting in thinly dispersed and less dense A&#x3b2;40 fibril (<xref ref-type="fig" rid="F2">Figure 2B</xref>). Thus, as observed in ThT kinetics, the aggregation of A&#x3b2;40 can be delayed by <bold>15</bold> and <bold>16</bold> (50&#xa0;&#xb5;M), however, the inhibitory potency is not enough to prevent fibril formation under the current conditions.</p>
<p>Our work parallels and directly complements the study by <xref ref-type="bibr" rid="B30">Liu et al., 2021</xref> that shows A&#x3b2;42 peptides bearing Tyr<sup>681</sup> <italic>O</italic>-glycosylation significantly affect both the aggregation and degradation of A&#x3b2;42. Furthermore, similar inhibiting activity of A&#x3b2;40 and A&#x3b2;42 fibrillogenesis by glycation (<xref ref-type="bibr" rid="B14">Emendato et al., 2018</xref>; <xref ref-type="bibr" rid="B38">Milordini et al., 2020</xref>) and addition of polysaccharides, such as chitosan (<xref ref-type="bibr" rid="B33">Liu et al., 2015</xref>; <xref ref-type="bibr" rid="B19">Hao et al., 2017</xref>) and heparin sulfate (<xref ref-type="bibr" rid="B55">Wang et al., 2021</xref>) was reported.</p>
</sec>
</sec>
<sec sec-type="conclusion" id="s4">
<title>Conclusion</title>
<p>In summary, the dynamical interplay between <italic>O</italic>-glycosylation and aggregation affected the structure of peptides and slowed down the aggregation process. The presence of the Swedish mutation led to an increased amount of &#x3b2;-structure in physiological conditions, with the &#x3b2;-secretase activity being drastically increased, and the aggregation process remaining largely unaffected. However, this effect of the Swedish mutation on the (glyco)peptides was overcome by increasing the number of glycosylation sites near the &#x3b2;-secretase cleavage site, increasing the C-terminal domain (A&#x3b2;) sequence relative to the &#x3b2;-secretase cleavage site, and/or having Tyr<sup>681</sup> glycosylated in the A&#x3b2; domain, resulting in glycosylation strongly inhibiting the aggregation process of A&#x3b2;40. Therefore, our studies demonstrate that <italic>O</italic>-glycosylation typically supports the non-amyloidogenic processing of APP, however, in FAD cases, it can incline towards the amyloidogenic processing of APP, where its fate lies upon the abundance and position of <italic>O</italic>-glycans relative to the &#x3b2;-secretase cleavage site.</p>
</sec>
</body>
<back>
<sec id="s5">
<title>Data Availability Statement</title>
<p>The original contributions presented in the study are included in the article/<xref ref-type="sec" rid="s10">Supplementary Material</xref>, further inquiries can be directed to the corresponding author.</p>
</sec>
<sec id="s6">
<title>Author Contributions</title>
<p>YS and MC wrote the manuscript. YS, DO, and RA conducted the synthesis of the glycosylated Thr/Ser building blocks. Synthesis of glycopeptides was done by YS, NV, GM and DO. The CD analysis was done by YS and NV. Proteolytic cleavage assay was done by DM and samples analyzed by YS, GM, and NV. Aggregation kinetics assays and AFM images acquired and analyzed by DR and DD. The senior authorship is shared by DM, DD, and MC.</p>
</sec>
<sec id="s7">
<title>Funding</title>
<p>This research was supported by the National Institute of Health (NIH) Grants R15CA242351 to MC, R15CA249788 to DM, and R15GM116006 to DD, the Alzheimer&#x2019;s Association AARG-17-531423 to DD, and Palm Health Foundation and Stiles-Nicholson Brain Institute to MC.</p>
</sec>
<sec sec-type="COI-statement" id="s8">
<title>Conflict of Interest</title>
<p>The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.</p>
</sec>
<sec sec-type="disclaimer" id="s9">
<title>Publisher&#x2019;s Note</title>
<p>All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors and the reviewers. Any product that may be evaluated in this article, or claim that may be made by its manufacturer, is not guaranteed or endorsed by the publisher.</p>
</sec>
<ack>
<p>The authors are thankful to Dr. Vivian Merk (FAU) and her lab for their atomic force microscopy system that was used in this study.</p>
</ack>
<sec id="s10">
<title>Supplementary Material</title>
<p>The Supplementary Material for this article can be found online at: <ext-link ext-link-type="uri" xlink:href="https://www.frontiersin.org/articles/10.3389/fchem.2022.859822/full#supplementary-material">https://www.frontiersin.org/articles/10.3389/fchem.2022.859822/full&#x23;supplementary-material</ext-link>
</p>
<supplementary-material xlink:href="DataSheet1.PDF" id="SM1" mimetype="application/PDF" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</sec>
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