原细胞
凝聚
裂变
人工细胞
生物分子
化学
生物物理学
材料科学
化学工程
膜
生物
生物化学
作者
Alan Ianeselli,Damla Tetiker,Julian Stein,Alexandra Kuehnlein,Christof B. Mast,Dieter Braun,T-Y Dora Tang
标识
DOI:10.1101/2021.07.08.451414
摘要
Abstract Key requirements for the first cells on Earth include the ability to compartmentalize and evolve. Compartmentalization spatially localizes biomolecules from a dilute pool and an evolving cell which grows and divides permits mixing and propagation of information to daughter cells. Complex coacervate microdroplets are excellent candidates as primordial cells with the ability to partition and concentrate molecules into their core and support primitive and complex biochemical reactions. However, the evolution of coacervate protocells by fusion, growth and fission has not yet been demonstrated. In this work, a primordial environment initiated the evolution of coacervate-based protocells. Gas bubbles inside heated rock pores perturb the coacervate protocell distribution and drive the growth, fusion, division and selection of coacervate microdroplets. This setting provides a primordial non-equilibrium environment. Our findings describe how common gas bubbles within heated rock pores induce the early evolution processes of coacervate-based protocells, providing a compelling scenario for the evolution of membrane-free coacervate microdroplets on the early Earth.
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