α-セクレタゼADAM10による制御されたタンパク質分解の構造的基礎
Tom C M Seegar1, Lauren B Killingsworth1, Nayanendu Saha2
1Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, MA 02115, USA.
Cell
|December 12, 2017
まとめ
研究者はADAM10の構造を明らかにしました これは細胞の信号伝達と アルツハイマー病に不可欠な酵素です この重要な酵素を制御する 新しい方法を提示しています
科学分野:
- 生物化学
- 構造生物学
- 細胞生物学
背景:
- ADAM (分解タンパク質と金属タンパク質酶) エンドペプチダースは,信号伝達とタンパク質のターンオーバーに不可欠です.
- ADAM10は特にノッチ受容体とアルツハイマー病前駆体タンパク質 (APP) を分割する.
研究 の 目的:
- ADAM10 エクトドメインのX線結晶構造を解明する.
- ADAM10の活動を管理する規制メカニズムを理解する.
主な方法:
- ADAM10エクトドメインのX線結晶図
- 生物化学分析について
- 細胞研究です
主要な成果:
- ADAM10エクトドメインは,システインに富んだドメインが活性部位を部分的に遮断する自己抑制構造を示している.
- 特定の抗体がシステインに富んだドメインに結合すると,この自己抑制が緩和され,酵素活性が増加します.
- これはADAM10の活性に対する新しい規制メカニズムを示しています.
結論:
- ADAM10の活動は,その領域組織によって本質的に規制されています.
- 抗体結合によるADAM10の調節は,潜在的な治療戦略を提供する.
- この規則を理解すると,ADAM10モジュール開発のロードマップが得られます.
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