Mayer Christian, Schreiber Ulrich, Dávila María J, Schmitz Oliver J, Bronja Amela, Meyer Martin, Klein Julia, Meckelmann Sven W
Institute of Physical Chemistry, CENIDE, University of Duisburg-Essen, 45141 Essen, Germany.
Department of Geology, University of Duisburg-Essen, 45141 Essen, Germany.
Life (Basel). 2018 May 24;8(2):16. doi: 10.3390/life8020016.
Based on a new model of a possible origin of life, we propose an efficient and stable system undergoing structural reproduction, self-optimization, and molecular evolution. This system is being formed under realistic conditions by the interaction of two cyclic processes, one of which offers vesicles as the structural environment, with the other supplying peptides from a variety of amino acids as versatile building blocks. We demonstrate that structures growing in a combination of both cycles have the potential to support their own existence, to undergo chemical and structural evolution, and to develop unpredicted functional properties. The key mechanism is the mutual stabilization of the peptides by the vesicles and of the vesicles by the peptides together with a constant production and selection of both. The development of the proposed system over time would not only represent one of the principles of life, but could also be a model for the formation of self-evolving structures ultimately leading to the first living cell. The experiment yields clear evidence for a vesicle-induced accumulation of membrane-interacting peptide which could be identified by liquid chromatography combined with high-resolution mass spectroscopy. We found that the selected peptide has an immediate effect on the vesicles, leading to (i) reduced vesicle size, (ii) increased vesicle membrane permeability, and (iii) improved thermal vesicle stability.
基于一种关于生命可能起源的新模型,我们提出了一个高效且稳定的系统,该系统能够进行结构复制、自我优化和分子进化。在现实条件下,这个系统通过两个循环过程的相互作用而形成,其中一个过程提供囊泡作为结构环境,另一个过程则从多种氨基酸中提供肽作为通用的构建模块。我们证明,在两个循环相结合的情况下生长的结构有潜力维持自身的存在、经历化学和结构进化,并发展出不可预测的功能特性。关键机制是囊泡对肽的相互稳定作用以及肽对囊泡的相互稳定作用,同时伴随着两者的持续产生和选择。随着时间的推移,所提出系统的发展不仅将代表生命的一个原理,而且还可能成为自我进化结构形成的模型,最终导致第一个活细胞的出现。实验产生了明确的证据,证明囊泡诱导了与膜相互作用的肽的积累,这可以通过液相色谱结合高分辨率质谱法来鉴定。我们发现,所选择的肽对囊泡有直接影响,导致(i)囊泡尺寸减小,(ii)囊泡膜通透性增加,以及(iii)囊泡热稳定性提高。