Physics Department, Norwich University, Northfield, VT, USA.
Department of Molecular Evolution, Centro de Astrobiología (CSIC-INTA), Ctra. Ajalvir Km. 4, 28850, Torrejón de Ardóz, Madrid, Spain.
Sci Rep. 2023 Jun 19;13(1):9885. doi: 10.1038/s41598-023-36852-4.
We study the generation of homochirality in a general chemical model (based on the homogeneous, fully connected Smoluchowski aggregation-fragmentation model) that obeys thermodynamics and can be easily mapped onto known origin of life models (e.g. autocatalytic sets, hypercycles, etc.), with essential aspects of origin of life modeling taken into consideration. Using a combination of theoretical modeling and numerical simulations, we look for minimal conditions for which our general chemical model exhibits spontaneous mirror symmetry breaking. We show that our model spontaneously breaks mirror symmetry in various catalytic configurations that only involve a small number of catalyzed reactions and nothing else. Of particular importance is that mirror symmetry breaking occurs in our model without the need for single-step autocatalytis or mutual inhibition, which may be of relevance for prebiotic chemistry.
我们研究了在一个遵循热力学且易于映射到已知生命起源模型(例如自催化集、超循环等)的一般化学模型(基于均匀、全连接的斯莫鲁霍夫斯基聚合-断裂模型)中手性的产生,考虑了生命起源模型的基本方面。我们使用理论建模和数值模拟的组合,寻找我们的一般化学模型自发打破镜像对称的最小条件。我们表明,我们的模型在仅涉及少量催化反应的各种催化配置中自发打破镜像对称性,没有其他任何东西。特别重要的是,我们的模型不需要单步自催化或相互抑制就能打破镜像对称性,这对于前生物化学可能具有重要意义。