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Single-Cell Mechanics: Structural Determinants and Functional Relevance 单细胞力学:结构决定因素和功能相关性
IF 12.4 1区 生物学 Q1 BIOPHYSICS Pub Date : 2024-02-21 DOI: 10.1146/annurev-biophys-030822-030629
Marta Urbanska, Jochen Guck
The mechanical phenotype of a cell determines its ability to deform under force and is therefore relevant to cellular functions that require changes in cell shape, such as migration or circulation through the microvasculature. On the practical level, the mechanical phenotype can be used as a global readout of the cell's functional state, a marker for disease diagnostics, or an input for tissue modeling. We focus our review on the current knowledge of structural components that contribute to the determination of the cellular mechanical properties and highlight the physiological processes in which the mechanical phenotype of the cells is of critical relevance. The ongoing efforts to understand how to efficiently measure and control the mechanical properties of cells will define the progress in the field and drive mechanical phenotyping toward clinical applications.Expected final online publication date for the Annual Review of Biophysics, Volume 53 is May 2024. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
细胞的机械表型决定了其受力变形的能力,因此与需要改变细胞形状的细胞功能息息相关,如迁移或通过微血管循环。在实际应用中,机械表型可用作细胞功能状态的全局读数、疾病诊断的标记或组织建模的输入。我们的综述将重点放在有助于确定细胞机械特性的结构成分的现有知识上,并着重介绍细胞机械表型具有重要意义的生理过程。我们正在努力了解如何有效测量和控制细胞的机械特性,这将决定该领域的进展,并推动机械表型技术走向临床应用。《生物物理学年度综述》第53卷的最终在线出版日期预计为2024年5月。修订后的预计日期请参见 http://www.annualreviews.org/page/journal/pubdates。
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引用次数: 0
Cholesterol and Lipid Rafts in the Biogenesis of Amyloid-β Protein and Alzheimer's Disease 胆固醇和脂质筏在淀粉样蛋白-β和阿尔茨海默病的生物生成过程中的作用
IF 12.4 1区 生物学 Q1 BIOPHYSICS Pub Date : 2024-02-21 DOI: 10.1146/annurev-biophys-062823-023436
George A. Pantelopulos, Conor B. Abraham, John E. Straub
Cholesterol has been conjectured to be a modulator of the amyloid cascade, the mechanism that produces the amyloid-β (Aβ) peptides implicated in the onset of Alzheimer's disease. We propose that cholesterol impacts the genesis of Aβ not through direct interaction with proteins in the bilayer, but indirectly by inducing the liquid-ordered phase and accompanying liquid–liquid phase separations, which partition proteins in the amyloid cascade to different lipid domains and ultimately to different endocytotic pathways. We explore the full process of Aβ genesis in the context of liquid-ordered phases induced by cholesterol, including protein partitioning into lipid domains, mechanisms of endocytosis experienced by lipid domains and secretases, and pH-controlled activation of amyloid precursor protein secretases in specific endocytotic environments. Outstanding questions on the essential role of cholesterol in the amyloid cascade are identified for future studies.Expected final online publication date for the Annual Review of Biophysics, Volume 53 is May 2024. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
胆固醇被认为是淀粉样蛋白级联的调节剂,淀粉样蛋白级联是产生与阿尔茨海默病发病有关的淀粉样蛋白-β(Aβ)肽的机制。我们提出,胆固醇不是通过与双分子层中的蛋白质直接相互作用来影响 Aβ 的生成,而是通过诱导液态有序相和伴随的液-液相分离来间接影响 Aβ 的生成,这种分离将淀粉样级联中的蛋白质分隔到不同的脂质域,并最终分隔到不同的内吞途径。我们在胆固醇诱导的液态有序相的背景下探索了 Aβ 生成的全过程,包括蛋白质被分隔到脂质结构域、脂质结构域和分泌酶的内吞机制,以及淀粉样前体蛋白分泌酶在特定内吞环境中的 pH 控制激活。关于胆固醇在淀粉样蛋白级联过程中的重要作用,确定了未来研究的悬而未决的问题。《生物物理学年刊》第53卷的最终在线出版日期预计为2024年5月。修订后的预计日期请参见 http://www.annualreviews.org/page/journal/pubdates。
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引用次数: 0
Metabolomics and Microbial Metabolism: Toward a Systematic Understanding 代谢组学与微生物代谢:实现系统性理解
IF 12.4 1区 生物学 Q1 BIOPHYSICS Pub Date : 2023-12-18 DOI: 10.1146/annurev-biophys-030722-021957
Duncan Holbrook-Smith, Julian Trouillon, Uwe Sauer
Over the past decades, our understanding of microbial metabolism has increased dramatically. Metabolomics, a family of techniques that are used to measure the quantities of small molecules in biological samples, has been central to these efforts. Advances in analytical chemistry have made it possible to measure the relative and absolute concentrations of more and more compounds with increasing levels of certainty. In this review, we highlight how metabolomics has contributed to understanding microbial metabolism and in what ways it can still be deployed to expand our systematic understanding of metabolism. To that end, we explain how metabolomics was used to ( a) characterize network topologies of metabolism and its regulation networks, ( b) elucidate the control of metabolic function, and ( c) understand the molecular basis of higher-order phenomena. We also discuss areas of inquiry where technological advances should continue to increase the impact of metabolomics, as well as areas where our understanding is bottlenecked by other factors such as the availability of statistical and modeling frameworks that can extract biological meaning from metabolomics data.Expected final online publication date for the Annual Review of Biophysics, Volume 53 is May 2024. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
过去几十年来,我们对微生物新陈代谢的了解有了显著提高。代谢组学是用于测量生物样本中小分子数量的一系列技术,对这些工作至关重要。分析化学的进步使得越来越多化合物的相对浓度和绝对浓度的测量变得越来越精确。在这篇综述中,我们将重点介绍代谢组学如何帮助我们了解微生物的新陈代谢,以及如何利用代谢组学拓展我们对新陈代谢的系统了解。为此,我们解释了代谢组学如何用于(a)描述代谢及其调控网络的网络拓扑结构,(b)阐明代谢功能的控制,以及(c)了解高阶现象的分子基础。我们还讨论了技术进步应继续提高代谢组学影响力的研究领域,以及我们的理解因其他因素(如可从代谢组学数据中提取生物学意义的统计和建模框架的可用性)而遇到瓶颈的领域。《生物物理学年刊》第 53 卷的最终在线出版日期预计为 2024 年 5 月。修订后的预计日期请参见 http://www.annualreviews.org/page/journal/pubdates。
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引用次数: 0
High-Speed Atomic Force Microscopy for Filming Protein Molecules in Dynamic Action 高速原子力显微镜拍摄蛋白质分子的动态动作
IF 12.4 1区 生物学 Q1 BIOPHYSICS Pub Date : 2023-12-07 DOI: 10.1146/annurev-biophys-030722-113353
Toshio Ando, Shingo Fukuda, Kien X. Ngo, Holger Flechsig
Structural biology is currently undergoing a transformation into dynamic structural biology, which reveals the dynamic structure of proteins during their functional activity to better elucidate how they function. Among the various approaches in dynamic structural biology, high-speed atomic force microscopy (HS-AFM) is unique in the ability to film individual molecules in dynamic action, although only topographical information is acquirable. This review provides a guide to the use of HS-AFM for biomolecular imaging and showcases several examples, as well as providing information on up-to-date progress in HS-AFM technology. Finally, we discuss the future prospects of HS-AFM in the context of dynamic structural biology in the upcoming era.Expected final online publication date for the Annual Review of Biophysics, Volume 53 is May 2024. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
结构生物学目前正在向动态结构生物学转变,动态结构生物学揭示了蛋白质在功能活动过程中的动态结构,从而更好地阐明了蛋白质的功能。在动态结构生物学的各种方法中,高速原子力显微镜(HS-AFM)是独一无二的,它能够拍摄单个分子的动态活动,但只能获得地形信息。本综述为如何使用 HS-AFM 进行生物分子成像提供了指导,并展示了几个实例,同时还介绍了 HS-AFM 技术的最新进展。最后,我们讨论了 HS-AFM 在即将到来的动态结构生物学时代的前景。《生物物理学年刊》(Annual Review of Biophysics)第 53 卷的最终在线出版日期预计为 2024 年 5 月。修订后的预计日期请参见 http://www.annualreviews.org/page/journal/pubdates。
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引用次数: 0
Structure and Mechanism of Human ABC Transporters. 人类ABC转运蛋白的结构和机制。
IF 12.4 1区 生物学 Q1 BIOPHYSICS Pub Date : 2023-05-09 Epub Date: 2023-02-03 DOI: 10.1146/annurev-biophys-111622-091232
Amer Alam, Kaspar P Locher

ABC transporters are essential for cellular physiology. Humans have 48 ABC genes organized into seven distinct families. Of these genes, 44 (in five distinct families) encode for membrane transporters, of which several are involved in drug resistance and disease pathways resulting from transporter dysfunction. Over the last decade, advances in structural biology have vastly expanded our mechanistic understanding of human ABC transporter function, revealing details of their molecular arrangement, regulation, and interactions, facilitated in large part by advances in cryo-EM that have rendered hitherto inaccessible targets amenable to high-resolution structural analysis. As a result, experimentally determined structures of multiple members of each of the five families of ABC transporters in humans are now available. Here we review this recent progress, highlighting the physiological relevance of human ABC transporters and mechanistic insights gleaned from their direct structure determination. We also discuss the impact and limitations of model systems and structure prediction methods in understanding human ABC transporters and discuss current challenges and future research directions.

ABC转运蛋白对细胞生理至关重要。人类有48个ABC基因,分为7个不同的家族。在这些基因中,44个(在5个不同的家族中)编码膜转运蛋白,其中一些参与了由转运蛋白功能障碍引起的耐药性和疾病途径。在过去的十年中,结构生物学的进步极大地扩展了我们对人类ABC转运蛋白功能的机制理解,揭示了它们的分子排列、调控和相互作用的细节,这在很大程度上得益于冷冻电镜技术的进步,这使得迄今为止难以接近的目标可以进行高分辨率的结构分析。因此,现在可以通过实验确定人类ABC转运蛋白5个家族中每个家族的多个成员的结构。在这里,我们回顾了最近的进展,强调了人类ABC转运蛋白的生理相关性和从它们的直接结构确定中收集到的机制见解。我们还讨论了模型系统和结构预测方法对理解人类ABC转运蛋白的影响和局限性,并讨论了当前面临的挑战和未来的研究方向。
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引用次数: 12
Hybrid Quantum Mechanical/Molecular Mechanical Methods For Studying Energy Transduction in Biomolecular Machines. 研究生物分子机械中能量转换的量子力学/分子机械混合方法。
IF 10.4 1区 生物学 Q1 BIOPHYSICS Pub Date : 2023-05-09 Epub Date: 2023-02-15 DOI: 10.1146/annurev-biophys-111622-091140
T Kubař, M Elstner, Q Cui

Hybrid quantum mechanical/molecular mechanical (QM/MM) methods have become indispensable tools for the study of biomolecules. In this article, we briefly review the basic methodological details of QM/MM approaches and discuss their applications to various energy transduction problems in biomolecular machines, such as long-range proton transports, fast electron transfers, and mechanochemical coupling. We highlight the particular importance for these applications of balancing computational efficiency and accuracy. Using several recent examples, we illustrate the value and limitations of QM/MM methodologies for both ground and excited states, as well as strategies for calibrating them in specific applications. We conclude with brief comments on several areas that can benefit from further efforts to make QM/MM analyses more quantitative and applicable to increasingly complex biological problems.

量子力学/分子力学(QM/MM)混合方法已成为研究生物分子不可或缺的工具。在本文中,我们简要回顾了量子力学/分子力学方法的基本方法细节,并讨论了它们在生物分子机器中各种能量传输问题上的应用,如长程质子传输、快速电子传输和机械化学耦合。我们强调了平衡计算效率和准确性对这些应用的特殊重要性。我们通过最近的几个例子,说明了QM/MM方法对基态和激发态的价值和局限性,以及在具体应用中校准这些方法的策略。最后,我们简要评述了几个可以从进一步努力中获益的领域,使 QM/MM 分析更加定量,并适用于日益复杂的生物问题。
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引用次数: 0
Assembly and Architecture of NLR Resistosomes and Inflammasomes. NLR抵抗体和炎性小体的组装和结构。
IF 12.4 1区 生物学 Q1 BIOPHYSICS Pub Date : 2023-05-09 DOI: 10.1146/annurev-biophys-092922-073050
Zehan Hu, Jijie Chai

Nucleotide-binding and leucine-rich repeat (NLR) proteins are critical intracellular immune receptors in both animals and plants. Perception of pathogen-derived or stress-associated signals induces NLR oligomerization to form multiprotein complexes called inflammasomes in animals or resistosomes in plants to mediate host immune response. Significant progress has been made during the past few years in our understanding of NLR biology, particularly the structural perspective of these two types of NLR-containing complexes. In this article, we review the latest advances in our structural knowledge of how NLR inflammasomes and resistosomes are activated and assembled and how the structural information provides insight into their distinct mechanisms of action. Commonalities and differences between NLR inflammasomes and resistosomes are also discussed.

核苷酸结合蛋白和富含亮氨酸重复序列(NLR)蛋白是动物和植物细胞内重要的免疫受体。感知病原体来源或应激相关信号诱导NLR寡聚化形成多蛋白复合物,在动物中称为炎症小体或在植物中称为抗性小体,介导宿主免疫反应。在过去的几年中,我们对NLR生物学的理解取得了重大进展,特别是对这两种含NLR复合物的结构观点的理解。在本文中,我们回顾了NLR炎症小体和抵抗小体如何被激活和组装的结构知识的最新进展,以及结构信息如何提供对其独特作用机制的见解。还讨论了NLR炎症小体和抵抗小体的共性和差异。
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引用次数: 4
Ball-and-Chain Inactivation in Potassium Channels. 钾离子通道的球链失活。
IF 12.4 1区 生物学 Q1 BIOPHYSICS Pub Date : 2023-05-09 DOI: 10.1146/annurev-biophys-100322-072921
Nattakan Sukomon, Chen Fan, Crina M Nimigean
Carefully orchestrated opening and closing of ion channels controls the diffusion of ions across cell membranes, generating the electrical signals required for fast transmission of information throughout the nervous system. Inactivation is a parsimonious means for channels to restrict ion conduction without the need to remove the activating stimulus. Voltage-gated channel inactivation plays crucial physiological roles, such as controlling action potential duration and firing frequency in neurons. The ball-and-chain moniker applies to a type of inactivation proposed first for sodium channels and later shown to be a universal mechanism. Still, structural evidence for this mechanism remained elusive until recently. We review the ball-and-chain inactivation research starting from its introduction as a crucial component of sodium conductance during electrical signaling in the classical Hodgkin and Huxley studies, through the discovery of its simple intuitive mechanism in potassium channels during the molecular cloning era, to the eventual elucidation of a potassium channel structure in a ball-and-chain inactivated state. Expected final online publication date for the Annual Review of Biophysics, Volume 52 is May 2023. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
精心安排离子通道的打开和关闭控制离子在细胞膜上的扩散,产生在整个神经系统中快速传递信息所需的电信号。失活是通道在不去除激活刺激的情况下限制离子传导的一种节省手段。电压门控通道失活在神经元中具有重要的生理作用,如控制动作电位持续时间和放电频率。球链的绰号适用于首先提出的钠通道失活类型,后来被证明是一种普遍机制。然而,直到最近,这种机制的结构证据仍然难以捉摸。我们回顾了球链失活的研究,从经典的霍奇金和赫胥利研究中作为电信号中钠电导的关键组成部分引入,到分子克隆时代发现其在钾通道中的简单直观机制,再到最终阐明球链失活状态下的钾通道结构。
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引用次数: 2
The Expanded Central Dogma: Genome Resynthesis, Orthogonal Biosystems, Synthetic Genetics. 扩展的中心法则:基因组再合成,正交生物系统,合成遗传学。
IF 12.4 1区 生物学 Q1 BIOPHYSICS Pub Date : 2023-05-09 DOI: 10.1146/annurev-biophys-111622-091203
Karola Gerecht, Niklas Freund, Wei Liu, Yang Liu, Maximilian J L J Fürst, Philipp Holliger

Synthetic biology seeks to probe fundamental aspects of biological form and function by construction [i.e., (re)synthesis] rather than deconstruction (analysis). In this sense, biological sciences now follow the lead given by the chemical sciences. Synthesis can complement analytic studies but also allows novel approaches to answering fundamental biological questions and opens up vast opportunities for the exploitation of biological processes to provide solutions for global problems. In this review, we explore aspects of this synthesis paradigm as applied to the chemistry and function of nucleic acids in biological systems and beyond, specifically, in genome resynthesis, synthetic genetics (i.e., the expansion of the genetic alphabet, of the genetic code, and of the chemical make-up of genetic systems), and the elaboration of orthogonal biosystems and components.

合成生物学试图通过构建(即(重新)合成)而不是解构(分析)来探索生物形态和功能的基本方面。从这个意义上说,生物科学现在追随化学科学的领导。综合可以补充分析研究,但也允许用新的方法来回答基本的生物学问题,并为利用生物过程为全球问题提供解决方案开辟了广阔的机会。在这篇综述中,我们探讨了这种合成范式在生物系统及其他领域应用于核酸的化学和功能的各个方面,特别是在基因组再合成、合成遗传学(即遗传字母表、遗传密码和遗传系统化学组成的扩展)以及正交生物系统和组分的阐述方面。
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引用次数: 1
Next-Gen Biophysics: Look to the Forest, Beyond the Trees. 新一代生物物理学:透过树木看森林。
IF 12.4 1区 生物学 Q1 BIOPHYSICS Pub Date : 2023-05-09 DOI: 10.1146/annurev-bb-52-030923-100001
Jeremy Schmit, Ken A Dill
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引用次数: 0
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Annual Review of Biophysics
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