Energy landscapes in molecular biology: History, principles, and perspectives.

IF 6.1 2区 生物学 Q1 BIOPHYSICS
Ruth Nussinov, Clil Regev, Hyunbum Jang
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Abstract

In an editorial for a Special Issue, Nussinov and Wolynes explored the energy landscapes of biomolecular function, questioning whether they constituted a second molecular biology revolution. With more than a decade having passed and science having progressed significantly, we revisit this question. Statistical energy landscapes not only visualize folding funnels but also quantify the likelihoods of different states, embodying the foundational physical-chemical principles of protein actions. Building upon the theory of energy landscapes, the conformational selection and population shift paradigm posited that since all functional conformations already pre-exist in a dynamic equilibrium, a ligand 'selects' and stabilizes a state from this pre-existing pool, resulting in re-equilibration, or shift, of the population. The principle that it established - that function harnesses transitions between pre-existing conformations - revolutionized the understanding of allostery and, broadly, regulation. This paradigm challenged and superseded the decades-old, albeit persisting, belief of only one (or two; 'open' and 'closed') protein conformations. It also indicates that for engineered proteins to exert effective function, we must account for the timescales of flipping between energy landscape states, for example, by tuning the barrier heights. Returning to the question of whether landscapes constituted a second biomolecular biology revolution, we consider their bedrock contributions, which are far beyond the original protein folding funnels. They established the principle of multiple dynamic conformational states 'jumping' over barriers during population shifts. By leveraging core concepts like conformational ensembles, modern molecular biology has achieved breakthroughs such as next-generation allosteric drugs, indeed leading to a transformative era in molecular science.

分子生物学中的能量景观:历史、原理和观点。
在一篇特刊的社论中,Nussinov和Wolynes探索了生物分子功能的能量景观,质疑它们是否构成了第二次分子生物学革命。十多年过去了,科学取得了重大进展,我们重新审视这个问题。统计能量景观不仅可以可视化折叠漏斗,还可以量化不同状态的可能性,体现了蛋白质作用的基本物理化学原理。基于能量景观理论,构象选择和种群转移范式假设,由于所有功能构象已经预先存在于动态平衡中,因此配体从这个预先存在的池中“选择”并稳定状态,从而导致种群的重新平衡或转移。它建立的原理——功能利用已有构象之间的转换——彻底改变了对变构和更广泛地说,调控的理解。这一范式挑战并取代了几十年来一直坚持的只有一种(或两种;“开放”和“封闭”)蛋白质构象的信念。它还表明,为了使工程蛋白发挥有效的功能,我们必须考虑在能量景观状态之间翻转的时间尺度,例如,通过调整势垒高度。回到景观是否构成了第二次生物分子生物学革命的问题上,我们考虑了它们的基本贡献,这些贡献远远超出了最初的蛋白质折叠漏斗。他们建立了多个动态构象状态在种群迁移过程中“跳过”障碍的原理。通过利用像构象集成这样的核心概念,现代分子生物学已经取得了突破,例如下一代变构药物,确实导致了分子科学的变革时代。
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来源期刊
Quarterly Reviews of Biophysics
Quarterly Reviews of Biophysics 生物-生物物理
CiteScore
12.90
自引率
1.60%
发文量
16
期刊介绍: Quarterly Reviews of Biophysics covers the field of experimental and computational biophysics. Experimental biophysics span across different physics-based measurements such as optical microscopy, super-resolution imaging, electron microscopy, X-ray and neutron diffraction, spectroscopy, calorimetry, thermodynamics and their integrated uses. Computational biophysics includes theory, simulations, bioinformatics and system analysis. These biophysical methodologies are used to discover the structure, function and physiology of biological systems in varying complexities from cells, organelles, membranes, protein-nucleic acid complexes, molecular machines to molecules. The majority of reviews published are invited from authors who have made significant contributions to the field, who give critical, readable and sometimes controversial accounts of recent progress and problems in their specialty. The journal has long-standing, worldwide reputation, demonstrated by its high ranking in the ISI Science Citation Index, as a forum for general and specialized communication between biophysicists working in different areas. Thematic issues are occasionally published.
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