生物细胞中的物质/生命关系。

IF 7.6 2区 工程技术 Q1 CHEMISTRY, APPLIED
Vishal S Sivasankar, Roseanna N Zia
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引用次数: 0

摘要

对无生命物质与生物的区别的探索始于古代,最初是寻找生物体内深层的基本生命力——一种只有生命拥有的特殊物质单元——后来转变为更谨慎地寻找功能上的独特优势,这种优势可以将无生命物质转化为能够繁殖、适应和生存的物质。亚里士多德关于物质/生命区别的思想和活力论哲学的生命力一直持续到科学革命,只是在19世纪被巴斯德和布朗揭穿。接受原子的真实性,理解生命的遗传、进化和繁殖的独特性,导致了中心教条的形成。随后,技术的发展以惊人的速度催生了结构生物学、系统生物学和合成生物学——以及对复制和合成的探索,这些研究获得了将物质转化为生命的功能。然而,人们仍然无法从原子和分子成分中重新构建一个活细胞,用理查德·费曼(Richard Feynman)的话来说,“我不能创造的,就是我不理解的”。在过去的二十年里,对旧观念——空间组织和划分——的新认识重新聚焦于布朗物理学和流动物理学。在这篇文章中,我们探讨了在过去的十年中,实验和计算的进步是如何拥抱物理学和细胞生物化学之间的深度耦合,以揭示物质/生命的联系。全细胞建模和合成提供了有希望的新见解,可能会揭示细胞中这种关系的水,拥挤的环境。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Matter/Life Nexus in Biological Cells.

The search for what differentiates inanimate matter from living things began in antiquity as a search for a fundamental life force embedded deep within living things-a special material unit owned only by life-later transforming to a more circumspect search for unique gains in function that transform nonliving matter to that which can reproduce, adapt, and survive. Aristotelian thinking about the matter/life distinction and Vitalistic philosophy's vital force persisted well into the Scientific Revolution, only to be debunked by Pasteur and Brown in the nineteenth century. Acceptance of the atomic reality and understanding of the uniqueness of life's heredity, evolution, and reproduction led to formation of the Central Dogma. With startling speed, technological development then gave rise to structural biology, systems biology, and synthetic biology-and a search to replicate and synthesize that gain in function that transforms matter to life. Yet one still cannot build a living cell de novo from its atomic and molecular constituents, and "what I cannot create, I do not understand," in the words of Richard Feynman. In the last two decades, new recognition of old ideas-spatial organization and compartmentalization-has renewed focus on Brownian and flow physics. In this article, we explore how experimental and computational advances in the last decade have embraced the deep coupling between physics and cellular biochemistry to shed light on the matter/life nexus. Whole-cell modeling and synthesis are offering promising new insights that may shed light on this nexus in the cell's watery, crowded milieu.

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来源期刊
Annual review of chemical and biomolecular engineering
Annual review of chemical and biomolecular engineering CHEMISTRY, APPLIED-ENGINEERING, CHEMICAL
CiteScore
16.00
自引率
0.00%
发文量
25
期刊介绍: The Annual Review of Chemical and Biomolecular Engineering aims to provide a perspective on the broad field of chemical (and related) engineering. The journal draws from disciplines as diverse as biology, physics, and engineering, with development of chemical products and processes as the unifying theme.
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