フルテキストファイル
著者
Miyawaki, Shiori Graduate School of Sustainability Science, Tottori University
Uemura, Yumi Department of Engineering, Tottori University
本郷 邦広 Graduate School of Sustainability Science, Tottori University / Department of Engineering, Tottori University / Center for Research on Green Sustainable Chemistry, Tottori University 研究者総覧 KAKEN
河田 康志 Graduate School of Sustainability Science, Tottori University / Department of Engineering, Tottori University / Center for Research on Green Sustainable Chemistry, Tottori University 研究者総覧 KAKEN
溝端 知宏 Graduate School of Sustainability Science, Tottori University / Department of Engineering, Tottori University / Center for Research on Green Sustainable Chemistry, Tottori University 研究者総覧 KAKEN
キーワード
molecular chaperone
protein folding
Gram-negative bacteria
protein aggregation
small heat shock protein (sHsp)
amyloid
acid denaturation
periplasm
protein fibrillogenesis
reversible fibrillation
抄録
The periplasmic small heat shock protein HdeA from Escherichia coli is inactive under normal growth conditions (at pH 7) and activated only when E. coli cells are subjected to a sudden decrease in pH, converting HdeA into an acid-denatured active state. Here, using in vitro fibrillation assays, transmission EM, atomic-force microscopy, and CD analyses, we found that when HdeA is active as a molecular chaperone, it is also capable of forming inactive aggregates that, at first glance, resemble amyloid fibrils. We noted that the molecular chaperone activity of HdeA takes precedence over fibrillogenesis under acidic conditions, as the presence of denatured substrate protein was sufficient to suppress HdeA fibril formation. Further experiments suggested that the secondary structure of HdeA fibrils deviates somewhat from typical amyloid fibrils and contains α-helices. Strikingly, HdeA fibrils that formed at pH 2 were immediately resolubilized by a simple shift to pH 7 and from there could regain molecular chaperone activity upon a return to pH 1. HdeA, therefore, provides an unusual example of a “reversible” form of protein fibrillation with an atypical secondary structure composition. The competition between active assistance of denatured polypeptides (its “molecular chaperone” activity) and the formation of inactive fibrillary deposits (its “fibrillogenic” activity) provides a unique opportunity to probe the relationship among protein function, structure, and aggregation in detail.
出版者
American Society for Biochemistry and Molecular Biology
資料タイプ
学術雑誌論文
外部リンク
ISSN
00219258
EISSN
1083351X
掲載誌名
JOURNAL OF BIOLOGICAL CHEMISTRY
294
5
開始ページ
1590
終了ページ
1601
発行日
2019-02-01
出版者DOI
著者版フラグ
出版社版
著作権表記
© 2019 Miyawaki et al. Published under exclusive license by The American Society for Biochemistry and Molecular Biology, Inc.
掲載情報
Miyawaki Shiori, Uemura Yumi, Hongo Kunihiro, et al. Acid-denatured small heat shock protein HdeA from Escherichia coli forms reversible fibrils with an atypical secondary structure. JOURNAL OF BIOLOGICAL CHEMISTRY. 2019. 294(5). 1590-1601. doi:10.1074/jbc.RA118.005611
部局名
工学部・工学研究科
言語
英語
Web of Science Key ut
WOS:000457879200014