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本文引用的文献

1
Core-Shell Modeling of Light Scattering by Vesicles: Effect of Size, Contents, and Lamellarity.囊泡光散射的核壳模型:大小、内容物和层状结构的影响。
Biophys J. 2019 Feb 19;116(4):659-669. doi: 10.1016/j.bpj.2019.01.006. Epub 2019 Jan 10.
2
Vesicle Self-Assembly of Monoalkyl Amphiphiles under the Effects of High Ionic Strength, Extreme pH, and High Temperature Environments.单烷烃两亲分子囊泡的自组装在高离子强度、极端 pH 值和高温环境的影响下。
Langmuir. 2018 Dec 18;34(50):15560-15568. doi: 10.1021/acs.langmuir.8b02830. Epub 2018 Nov 27.
3
Catalysis of Template-Directed Nonenzymatic RNA Copying by Iron(II).铁(II)催化模板指导的非酶 RNA 复制。
J Am Chem Soc. 2018 Nov 7;140(44):15016-15021. doi: 10.1021/jacs.8b09617. Epub 2018 Oct 26.
4
Protocells and RNA Self-Replication.原核细胞和 RNA 自我复制。
Cold Spring Harb Perspect Biol. 2018 Sep 4;10(9):a034801. doi: 10.1101/cshperspect.a034801.
5
Fatty acids' double role in the prebiotic formation of a hydrophobic dipeptide.脂肪酸在疏水性二肽益生元形成中的双重作用。
Chem Sci. 2016 May 1;7(5):3406-3413. doi: 10.1039/c5sc04796j. Epub 2016 Feb 9.
6
Molecular Evolution in a Peptide-Vesicle System.肽-囊泡系统中的分子进化
Life (Basel). 2018 May 24;8(2):16. doi: 10.3390/life8020016.
7
The Impact of Salts on Single Chain Amphiphile Membranes and Implications for the Location of the Origin of Life.盐对单链两亲分子膜的影响及其对生命起源位置的启示。
Life (Basel). 2017 Nov 14;7(4):44. doi: 10.3390/life7040044.
8
Quantifying Binding of Ethylene Oxide-Propylene Oxide Block Copolymers with Lipid Bilayers.定量评估环氧乙烷-环氧丙烷嵌段共聚物与脂双层的结合。
Langmuir. 2017 Nov 7;33(44):12624-12634. doi: 10.1021/acs.langmuir.7b02279. Epub 2017 Oct 25.
9
A Self-Assembled Aggregate Composed of a Fatty Acid Membrane and the Building Blocks of Biological Polymers Provides a First Step in the Emergence of Protocells.由脂肪酸膜和生物聚合物构建模块组成的自组装聚集体为原始细胞的出现提供了第一步。
Life (Basel). 2016 Aug 11;6(3):33. doi: 10.3390/life6030033.
10
Electrostatic Localization of RNA to Protocell Membranes by Cationic Hydrophobic Peptides.阳离子疏水肽介导RNA在原细胞膜上的静电定位
Angew Chem Int Ed Engl. 2015 Sep 28;54(40):11735-9. doi: 10.1002/anie.201505742. Epub 2015 Jul 29.

益生元氨基酸与益生元脂肪酸膜结合并稳定其结构。

Prebiotic amino acids bind to and stabilize prebiotic fatty acid membranes.

机构信息

Department of Chemistry, University of Washington, Seattle, WA 98195.

Department of Chemistry, University of Washington, Seattle, WA 98195;

出版信息

Proc Natl Acad Sci U S A. 2019 Aug 27;116(35):17239-17244. doi: 10.1073/pnas.1900275116. Epub 2019 Aug 12.

DOI:10.1073/pnas.1900275116
PMID:31405964
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6717294/
Abstract

The membranes of the first protocells on the early Earth were likely self-assembled from fatty acids. A major challenge in understanding how protocells could have arisen and withstood changes in their environment is that fatty acid membranes are unstable in solutions containing high concentrations of salt (such as would have been prevalent in early oceans) or divalent cations (which would have been required for RNA catalysis). To test whether the inclusion of amino acids addresses this problem, we coupled direct techniques of cryoelectron microscopy and fluorescence microscopy with techniques of NMR spectroscopy, centrifuge filtration assays, and turbidity measurements. We find that a set of unmodified, prebiotic amino acids binds to prebiotic fatty acid membranes and that a subset stabilizes membranes in the presence of salt and Mg Furthermore, we find that final concentrations of the amino acids need not be high to cause these effects; membrane stabilization persists after dilution as would have occurred during the rehydration of dried or partially dried pools. In addition to providing a means to stabilize protocell membranes, our results address the challenge of explaining how proteins could have become colocalized with membranes. Amino acids are the building blocks of proteins, and our results are consistent with a positive feedback loop in which amino acids bound to self-assembled fatty acid membranes, resulting in membrane stabilization and leading to more binding in turn. High local concentrations of molecular building blocks at the surface of fatty acid membranes may have aided the eventual formation of proteins.

摘要

早期地球上的第一个原始细胞的膜可能是由脂肪酸自组装形成的。理解原始细胞如何产生并能承受其环境变化的一个主要挑战是,脂肪酸膜在含有高浓度盐(如早期海洋中普遍存在的盐)或二价阳离子(对于 RNA 催化是必需的)的溶液中不稳定。为了测试包含氨基酸是否能解决这个问题,我们将冷冻电子显微镜和荧光显微镜的直接技术与 NMR 光谱、离心过滤测定和浊度测量技术相结合。我们发现,一组未修饰的、原始的氨基酸与原始的脂肪酸膜结合,并且一部分在盐和 Mg 的存在下稳定膜。此外,我们发现这些效果不需要氨基酸的最终浓度很高就能产生;在干燥或部分干燥的池重新水合过程中发生的稀释后,膜稳定仍然存在。除了提供稳定原始细胞膜的方法外,我们的结果还解决了如何解释蛋白质如何与膜共定位的挑战。氨基酸是蛋白质的组成部分,我们的结果与正反馈回路一致,即与自组装脂肪酸膜结合的氨基酸导致膜稳定,并反过来导致更多的结合。脂肪酸膜表面的分子构建块的局部高浓度可能有助于蛋白质的最终形成。