地球の初期の環境変化が生命の化学的起源にどのように影響を与えたかを研究 (How Earth’s Early Cycles Shaped the Chemistry of Life)

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2025-02-25 ジョージア工科大学

ジョージア工科大学とエルサレム・ヘブライ大学の研究チームは、環境変動が初期地球の化学進化に与えた影響を調査し、生命の起源に関する新たな知見を得た。研究では、湿潤と乾燥のサイクルが分子の自己組織化を促進し、無秩序な複雑性を回避する進化的プロセスを示すことを実証。化学系が平衡に達せず進化し続ける可能性を示唆し、合成生物学や材料科学への応用が期待される。

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複雑な化学混合物の進化は、組み合わせによる圧縮と集団の共時性を明らかにする Evolution of complex chemical mixtures reveals combinatorial compression and population synchronicity

Kavita Matange,Vahab Rajaei,Pau Capera-Aragones,John T. Costner,Adelaide Robertson,Jennifer Seoyoung Kim,Anton S. Petrov,Jessica C. Bowman,Loren Dean Williams & Moran Frenkel-Pinter
Nature Chemistry  Published:12 February 2025
DOI:https://doi.org/10.1038/s41557-025-01734-x

地球の初期の環境変化が生命の化学的起源にどのように影響を与えたかを研究 (How Earth’s Early Cycles Shaped the Chemistry of Life)

Abstract

Many open questions about the origins of life are centred on the generation of complex chemical species. Past work has characterized specific chemical reactions that might lead to biological molecules. Here we establish an experimental model of chemical evolution to investigate general processes by which chemical systems continuously change. We used water as a chemical reactant, product and medium. We leveraged oscillating water activity at near-ambient temperatures to cause ratcheting of near-equilibrium reactions in mixtures of organic molecules containing carboxylic acids, amines, thiols and hydroxyl groups. Our system (1) undergoes continuous change with transitions to new chemical spaces while not converging throughout the experiment; (2) demonstrates combinatorial compression with stringent chemical selection; and (3) displays synchronicity of molecular populations. Our results suggest that chemical evolution and selection can be observed in organic mixtures and might ultimately be adapted to produce a broad array of molecules with novel structures and functions.

生物工学一般
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