{"title":"淀粉样β与脂质膜结合特性的分类:利用石英晶体微天平结合固定脂质平面膜进行膜组学研究","authors":"Toshinori Shimanouchi , Miki Iwamura , Yasuhiro Sano , Keita Hayashi , Minoru Noda , Yukitaka Kimura","doi":"10.1016/j.bbapap.2023.140987","DOIUrl":null,"url":null,"abstract":"<div><p><span><span><span>A biomembrane-related fibrillogenesis of </span>Amyloid β from Alzheimer’ disease (Aβ) is closely related to its accumulation behavior. A binding property of Aβ peptides from Alzheimer’ disease to </span>lipid membranes was then classified by a quartz crystal microbalance (QCM) method combined with an immobilization technique using thiol self-assembled membrane. The accumulated amounts of Aβ, Δ</span><em>f</em><sub>max</sub>, was determined from the measurement of the maximal frequency reduction using QCM. The plots of Δ<em>f</em><sub>max</sub> to Aβ concentration gave the slope and saturated value of Δ<em>f</em><sub>max</sub>, (Δ<em>f</em><sub>max</sub>)<sup>sat</sup><span> that are the parameters for binding property of Aβ to lipid membranes. Therefore, the Aβ-binding property on lipid membranes was classified by the slope and (Δ</span><em>f</em><sub>max</sub>)<sup>sat</sup>. The plural lipid system was described as X + Y where X = L<sub>1</sub>, L<sub>1</sub>/L<sub>2</sub>, and L<sub>1</sub>/L<sub>2</sub>/L<sub>3</sub>. The slope and (Δ<em>f</em><sub>max</sub>)<sup>sat</sup> values plotted as a function of mixing ratio of Y to X was classified on a basis of the lever principle (LP). The LP violation observed in both parameters resulted from the formation of the crevice or pothole, as Aβ-specific binding site, generated at the boundary between <em>l</em><sub>d</sub> and <em>l</em><sub>o</sub> phases. The LP violation observed only in the slope resulted from glycolipid-rich domain acting as Aβ-specific binding site. Furthermore, lipid planar membranes indicating strong LP violation favored strong fibrillogenesis. Especially, lipid planar membranes indicating the LP violation only in the slope induced lateral aggregated and spherulitic fibrillar aggregates. Thus, the classification of Aβ binding property on lipid membranes appeared to be related to the fibrillogenesis with a certain morphology.</p></div>","PeriodicalId":8760,"journal":{"name":"Biochimica et biophysica acta. Proteins and proteomics","volume":null,"pages":null},"PeriodicalIF":2.5000,"publicationDate":"2023-12-19","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Classification of binding property of amyloid β to lipid membranes: Membranomic research using quartz crystal microbalance combined with the immobilization of lipid planar membranes\",\"authors\":\"Toshinori Shimanouchi , Miki Iwamura , Yasuhiro Sano , Keita Hayashi , Minoru Noda , Yukitaka Kimura\",\"doi\":\"10.1016/j.bbapap.2023.140987\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p><span><span><span>A biomembrane-related fibrillogenesis of </span>Amyloid β from Alzheimer’ disease (Aβ) is closely related to its accumulation behavior. A binding property of Aβ peptides from Alzheimer’ disease to </span>lipid membranes was then classified by a quartz crystal microbalance (QCM) method combined with an immobilization technique using thiol self-assembled membrane. The accumulated amounts of Aβ, Δ</span><em>f</em><sub>max</sub>, was determined from the measurement of the maximal frequency reduction using QCM. The plots of Δ<em>f</em><sub>max</sub> to Aβ concentration gave the slope and saturated value of Δ<em>f</em><sub>max</sub>, (Δ<em>f</em><sub>max</sub>)<sup>sat</sup><span> that are the parameters for binding property of Aβ to lipid membranes. Therefore, the Aβ-binding property on lipid membranes was classified by the slope and (Δ</span><em>f</em><sub>max</sub>)<sup>sat</sup>. The plural lipid system was described as X + Y where X = L<sub>1</sub>, L<sub>1</sub>/L<sub>2</sub>, and L<sub>1</sub>/L<sub>2</sub>/L<sub>3</sub>. The slope and (Δ<em>f</em><sub>max</sub>)<sup>sat</sup> values plotted as a function of mixing ratio of Y to X was classified on a basis of the lever principle (LP). The LP violation observed in both parameters resulted from the formation of the crevice or pothole, as Aβ-specific binding site, generated at the boundary between <em>l</em><sub>d</sub> and <em>l</em><sub>o</sub> phases. The LP violation observed only in the slope resulted from glycolipid-rich domain acting as Aβ-specific binding site. Furthermore, lipid planar membranes indicating strong LP violation favored strong fibrillogenesis. Especially, lipid planar membranes indicating the LP violation only in the slope induced lateral aggregated and spherulitic fibrillar aggregates. Thus, the classification of Aβ binding property on lipid membranes appeared to be related to the fibrillogenesis with a certain morphology.</p></div>\",\"PeriodicalId\":8760,\"journal\":{\"name\":\"Biochimica et biophysica acta. 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Proteins and proteomics","FirstCategoryId":"99","ListUrlMain":"https://www.sciencedirect.com/science/article/pii/S1570963923001012","RegionNum":4,"RegionCategory":"生物学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q3","JCRName":"BIOCHEMISTRY & MOLECULAR BIOLOGY","Score":null,"Total":0}
Classification of binding property of amyloid β to lipid membranes: Membranomic research using quartz crystal microbalance combined with the immobilization of lipid planar membranes
A biomembrane-related fibrillogenesis of Amyloid β from Alzheimer’ disease (Aβ) is closely related to its accumulation behavior. A binding property of Aβ peptides from Alzheimer’ disease to lipid membranes was then classified by a quartz crystal microbalance (QCM) method combined with an immobilization technique using thiol self-assembled membrane. The accumulated amounts of Aβ, Δfmax, was determined from the measurement of the maximal frequency reduction using QCM. The plots of Δfmax to Aβ concentration gave the slope and saturated value of Δfmax, (Δfmax)sat that are the parameters for binding property of Aβ to lipid membranes. Therefore, the Aβ-binding property on lipid membranes was classified by the slope and (Δfmax)sat. The plural lipid system was described as X + Y where X = L1, L1/L2, and L1/L2/L3. The slope and (Δfmax)sat values plotted as a function of mixing ratio of Y to X was classified on a basis of the lever principle (LP). The LP violation observed in both parameters resulted from the formation of the crevice or pothole, as Aβ-specific binding site, generated at the boundary between ld and lo phases. The LP violation observed only in the slope resulted from glycolipid-rich domain acting as Aβ-specific binding site. Furthermore, lipid planar membranes indicating strong LP violation favored strong fibrillogenesis. Especially, lipid planar membranes indicating the LP violation only in the slope induced lateral aggregated and spherulitic fibrillar aggregates. Thus, the classification of Aβ binding property on lipid membranes appeared to be related to the fibrillogenesis with a certain morphology.
期刊介绍:
BBA Proteins and Proteomics covers protein structure conformation and dynamics; protein folding; protein-ligand interactions; enzyme mechanisms, models and kinetics; protein physical properties and spectroscopy; and proteomics and bioinformatics analyses of protein structure, protein function, or protein regulation.