生きたキラル結晶の奇妙な動態
Tzer Han Tan1,2,3, Alexander Mietke4, Junang Li1
1Department of Physics, Massachusetts Institute of Technology, Cambridge, MA, USA.
Nature
|July 13, 2022
まとめ
泳ぎ回っている海星胚は 大きくて頑丈なキラル結晶を形成します この発見は,多細胞生物が自己組織化と水力学的な相互作用を通じて,どのように複雑な活性物質の相を作り出すことができるかを明らかにしています.
科学分野:
- 物理学
- 発達生物学
- 材料科学
背景:
- アクティブ・クリスタルは,自己組織的運動体によって形成された秩序ある構造であり,合成および細菌系で広く研究されています.
- 自律的に発達する多細胞生物における 持続的な結晶の秩序の出現は 未知のままである.
研究 の 目的:
- 泳ぐ海星胚が自然に 持続的なキラル結晶を形成するかどうかを調べるため
- 生体結晶の形成,動態,解消を制御するメカニズムを理解する
主な方法:
- 泳ぐ海星胚に関する実験
- 理論的なモデルです
- コンピューターシミュレーション
- 水力学的性質と胚の発達の分析
主要な成果:
- 海星の胚は自発的に 大規模なキラル結晶に 組み合わされ 何時間も続きます
- 結晶の形成,ダイナミクス,溶解は胚の水力学と発達によって支配されます.
- 生きたキラル結晶は自己持続的なキラル振動とユニークな変形反応を示します.
結論:
- 多細胞生物の持続的なキラル結晶形成の 最初の実験的証拠を提供した.
- 自律的な多細胞成分における非相互の相互作用が,キラル活性物質の非均衡相を駆動する方法を示した.
- 水力学と進化が自己組織化する活体物質に果たす役割を強調する.
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