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A Rapid In Vivo Bioassay for Developmentally Active Enhancers
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人とチンパンジーのニューラル・クライストにおけるエンハンサーの分岐とシス調節の進化
Sara L Prescott1, Rajini Srinivasan1, Maria Carolina Marchetto2
1Department of Chemical and Systems Biology and Department of Developmental Biology, Stanford University School of Medicine, Stanford, CA 94305, USA.
Cell
|September 15, 2015
まとめ
ヒトとチンパンジーの脳神経の細胞は cis 調節の変化が 形態的進化を 駆動する仕組みを明らかにしています 新しいモチーフやレトロエレメントは 遺伝子発現を変えることで 種特有の顔の特徴を説明します
科学分野:
- 進化生物学
- ゲノミクス
- 発達生物学
背景:
- 形態学的差異はシス調節的変化によって引き起こされるが,人間の特徴の進化の原理は不明である.
- 頭蓋の神経細胞は 頭蓋の発達と進化に不可欠です
研究 の 目的:
- ヒトとチンパンジーの間にある 面のシス調節の格差を体系的に記述する.
- ヒト特有の特徴の根底にある遺伝的および規制的要因を特定する.
主な方法:
- ヒトとチンパンジーの脳神経の細胞の表遺伝子解析
- 増強剤における転写因子 (TF) モチーフ内の遺伝的変異の分析
- レトロエレメントと種別強化剤の役割を調査する.
主要な成果:
- エピジェノミクスの差異はTFモチーフの遺伝的変異と関連しており,新しいモチーフは活動バイアスを予測する.
- 重要な遺伝子の近くのレトロエレメントと種別バイアスの強化剤は,頭蓋骨の違いに寄与する.
- ニューラル・クライスト・レギュレータの表現の変化と相関する.
結論:
- この研究は,ヒトの頭蓋骨の進化のための候補遺伝子と規制要素を提供します.
- インビトロに由来する細胞を用いた"細胞人類学"は,霊長類の形態学的多様性を研究するのに価値があります.
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