GPCR構造が薬物発見に与える影響
Miles Congreve1, Chris de Graaf1, Nigel A Swain1
1Sosei Heptares, Steinmetz Building, Granta Park, Abingdon, Cambridge CB21 6DG, UK.
Cell
|April 4, 2020
まとめ
構造生物学では,70のユニークなGタンパク質結合受容体 (GPCR) と370以上の構造が明らかにされています. 構造に基づく薬剤の設計は進んでおり,GPCR薬剤候補が臨床試験に入っています.
科学分野:
- 生化学と構造生物学
- 薬理学と薬剤発見
背景:
- 70種類以上の独特のGタンパク質結合受容体 (GPCR) 構造が決定され,合計で370種類以上の構造が決定されました.
- これらの構造は,様々な構成状態の受容体を表し,様々な結合体と結合する.
研究 の 目的:
- GPCR標的に対する構造ベースの薬剤設計の拡大を強調する.
- 臨床試験へのGPCR薬候補の進行について議論する.
主な方法:
- X線結晶学と冷凍電子顕微鏡 (cryo-EM) は,GPCR構造を決定するための重要な技術である.
- 計算モデリングと分子動力学シミュレーションは,受容体動力学とリガンド相互作用を理解するのに役立ちます.
主要な成果:
- 現在,GPCRの構造データの大部分は入手可能であり,詳細なメカニズム研究を容易にする.
- GPCRを標的とした構造ベースの設計を使用して開発されたいくつかの薬剤候補は,臨床試験に進んでいます.
結論:
- 構造ベースの薬剤設計は,GPCRをターゲットにすることで,急速に進歩する分野です.
- 構造ベースの設計のみで認可された薬はまだ開発されていないが,現在の候補薬が臨床開発を進めるにつれて,この状況が変わると予想されている.
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