枝分かれする形態形成の統一理論
Edouard Hannezo1, Colinda L G J Scheele2, Mohammad Moad3
1Cavendish Laboratory, Department of Physics, University of Cambridge, Cambridge CB3 0HE, UK; The Wellcome Trust/Cancer Research UK Gurdon Institute, University of Cambridge, Cambridge CB2 1QN, UK; The Wellcome Trust/Medical Research Council Stem Cell Institute, University of Cambridge, Cambridge CB2 1QN, UK.
Cell
|September 23, 2017
まとめ
複雑な臓器の分岐は 乳腺や腎臓のように 単純な自己組織化プロセスで説明できます エキピオテントの先端は 空間を探索し 枝分かれし 隣の近くで成長し 固い遺伝子プログラムなしに 複雑な構造を作り出すのです
科学分野:
- 発達生物学
- システム生物学
- 数学生物学
背景:
- 枝分かれした構造の有機生成は複雑である.
- 信号伝達経路は知られていますが 顕微鏡の特徴は解明されていません
研究 の 目的:
- 枝分かれした臓器のマクロスコーピーの特徴 (サイズ,トポロジー,パターン) を統一的な枠組みで説明する.
- 皮質構造における自己組織化された形態変異のモデルを提案する.
主な方法:
- 大規模な臓器の再建 (マウス乳腺,腎臓,ヒト前立腺) の定量分析.
- 増殖運動の測定
- ランダムな散歩を分岐して消去するモデルです.
主要な成果:
- 枝分かれした臓器のマクロスコーピーの特徴は,単一の枠組みで定量的に説明できます.
- モルフォゲネシスは ストキャスティックに分岐し 空間を探索する 均等な先端から生じます
- 隣人同士の距離が狭くなると 場所の争いは中立になるのです
結論:
- 複雑な枝状の上皮構造は 自己組織化によって発達する.
- 単純で一般的な規則が形態変異を統制する 厳格な遺伝子配列ではない
- ランダムな散歩の分岐と消去は 臓器の発達を統合する枠組みを提供する
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