哺乳類新皮質の保存されたおよび異なる遺伝子調節プログラム
Nathan R Zemke1,2, Ethan J Armand1,3, Wenliang Wang4
1Department of Cellular and Molecular Medicine, University of California, San Diego School of Medicine, La Jolla, CA, USA.
Nature
|December 13, 2023
まとめ
霊長類とマウスの脳における遺伝子調節の調査は,シス調節要素が種特有の特徴をどのように形作っているかを明らかにしています. この研究では ネオコーテックスの進化を促す 保存された異なったゲノム特性を発見しました
科学分野:
- 神経科学
- ゲノミクス
- 進化生物学
背景:
- 種特有の特徴は,シス調節要素の変化から生じる.
- 新皮質の進化を 分子レベルで理解することは 極めて重要です
研究 の 目的:
- ヒト,マカック,マモセット,マウスの原発運動皮質の遺伝子調節プログラムについて調べる
- 新皮質の進化の基礎にある 分子と細胞のメカニズムを探る
主な方法:
- 単細胞マルチオミクス解析 (遺伝子発現,クロマチンのアクセシビリティ,DNAメチローム,染色体構成)
- 4種にわたる20万以上の細胞を分析した
- 機械学習はシス調節要素を予測する
主要な成果:
- 転写因子発現の差異は,種特有のエピジェノームと相関する.
- 3Dゲノムでは保存され,異なる規制特性が明らかです.
- 移植可能な要素はヒト特異的なシス調節要素の80%を占める.
- ゲノム調節構文はネズミから霊長類まで保存されている.
- 機能的なシス調節要素を特定するエピジェネティック保存補助.
結論:
- エピジェネティックとシーケンスのデータ統合は,神経学的特徴に関連した遺伝的変異の解釈を強化します.
- この研究は新皮質の進化の分子基盤と 神経疾患への影響を洞察します
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