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Encapsulins. 密封剂。
IF 16.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Pub Date : 2022-06-21 DOI: 10.1146/annurev-biochem-040320-102858
Tobias W Giessen

Subcellular compartmentalization is a defining feature of all cells. In prokaryotes, compartmentalization is generally achieved via protein-based strategies. The two main classes of microbial protein compartments are bacterial microcompartments and encapsulin nanocompartments. Encapsulins self-assemble into proteinaceous shells with diameters between 24 and 42 nm and are defined by the viral HK97-fold of their shell protein. Encapsulins have the ability to encapsulate dedicated cargo proteins, including ferritin-like proteins, peroxidases, and desulfurases. Encapsulation is mediated by targeting sequences present in all cargo proteins. Encapsulins are found in many bacterial and archaeal phyla and have been suggested to play roles in iron storage, stress resistance, sulfur metabolism, and natural product biosynthesis. Phylogenetic analyses indicate that they share a common ancestor with viral capsid proteins. Many pathogens encode encapsulins, and recent evidence suggests that they may contribute toward pathogenicity. The existing information on encapsulin structure, biochemistry, biological function, and biomedical relevance is reviewed here.

亚细胞区隔化是所有细胞的特征。在原核生物中,区隔化通常是通过基于蛋白质的策略实现的。微生物蛋白隔室的两大类主要是细菌微隔室和胶囊纳米隔室。包封蛋白自组装成直径在24至42纳米之间的蛋白壳,并由其外壳蛋白的病毒hk97倍定义。封装蛋白能够封装专用的货物蛋白,包括铁蛋白样蛋白、过氧化物酶和脱硫酶。包封是由存在于所有货物蛋白中的靶向序列介导的。在许多细菌和古细菌门中都发现了包封蛋白,并被认为在铁储存、抗逆性、硫代谢和天然产物生物合成中起着重要作用。系统发育分析表明它们与病毒衣壳蛋白有共同的祖先。许多病原体编码包封蛋白,最近的证据表明它们可能对致病性有贡献。本文综述了包封蛋白的结构、生物化学、生物学功能和生物医学意义等方面的研究进展。
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引用次数: 14
The Structural Dynamics of Translation. 翻译的结构动力学。
IF 16.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Pub Date : 2022-06-21 DOI: 10.1146/annurev-biochem-071921-122857
Andrei A Korostelev

Accurate protein synthesis (translation) relies on translation factors that rectify ribosome fluctuations into a unidirectional process. Understanding this process requires structural characterization of the ribosome and translation-factor dynamics. In the 2000s, crystallographic studies determined high-resolution structures of ribosomes stalled with translation factors, providing a starting point for visualizing translation. Recent progress in single-particle cryogenic electron microscopy (cryo-EM) has enabled near-atomic resolution of numerous structures sampled in heterogeneous complexes (ensembles). Ensemble and time-resolved cryo-EM have now revealed unprecedented views of ribosome transitions in the three principal stages of translation: initiation, elongation, and termination. This review focuses on how translation factors help achieve high accuracy and efficiency of translation by monitoring distinct ribosome conformations and by differentially shifting the equilibria of ribosome rearrangements for cognate and near-cognate substrates.

准确的蛋白质合成(翻译)依赖于将核糖体波动调整为单向过程的翻译因子。理解这一过程需要对核糖体和翻译因子动力学进行结构表征。在2000年代,晶体学研究确定了核糖体的高分辨率结构与翻译因子停滞,为可视化翻译提供了一个起点。单粒子低温电子显微镜(cryo-EM)的最新进展使非均相配合物(集合)中采样的许多结构的近原子分辨率成为可能。集合和时间分辨冷冻电镜现在揭示了核糖体在翻译的三个主要阶段的转变前所未有的观点:起始,延伸和终止。这篇综述的重点是翻译因子如何通过监测不同的核糖体构象和不同地改变同源和近同源底物的核糖体重排平衡来帮助实现高精度和高效率的翻译。
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引用次数: 13
Lipoproteins in the Central Nervous System: From Biology to Pathobiology. 中枢神经系统中的脂蛋白:从生物学到病理生物学
IF 12.1 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Pub Date : 2022-06-21 Epub Date: 2022-03-18 DOI: 10.1146/annurev-biochem-032620-104801
Ana-Caroline Raulin, Yuka A Martens, Guojun Bu

The brain, as one of the most lipid-rich organs, heavily relies on lipid transport and distribution to maintain homeostasis and neuronal function. Lipid transport mediated by lipoprotein particles, which are complex structures composed of apolipoproteins and lipids, has been thoroughly characterized in the periphery. Although lipoproteins in the central nervous system (CNS) were reported over half a century ago, the identification of APOE4 as the strongest genetic risk factor for Alzheimer's disease has accelerated investigation of the biology and pathobiology of lipoproteins in the CNS. This review provides an overview of the different components of lipoprotein particles, in particular apolipoproteins, and their involvements in both physiological functions and pathological mechanisms in the CNS.

大脑是脂质最丰富的器官之一,主要依靠脂质转运和分布来维持体内平衡和神经元功能。脂蛋白颗粒是由脂蛋白和脂质组成的复杂结构,其介导的脂质转运在外周已经得到了深入研究。虽然中枢神经系统(CNS)中的脂蛋白早在半个多世纪前就有报道,但 APOE4 被确定为阿尔茨海默病最强的遗传风险因素后,加速了对中枢神经系统中脂蛋白的生物学和病理生物学的研究。本综述概述了脂蛋白颗粒的不同成分,特别是脂蛋白,以及它们在中枢神经系统中的生理功能和病理机制。
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引用次数: 0
Kinetic Proofreading. 动能校对。
IF 16.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Pub Date : 2022-04-01 DOI: 10.1146/annurev-biochem-040320-103630
Hinrich Boeger
Biochemistry and molecular biology rely on the recognition of structural complementarity between molecules. Molecular interactions must be both quickly reversible, i.e., tenuous, and specific. How the cell reconciles these conflicting demands is the subject of this article. The problem and its theoretical solution are discussed within the wider theoretical context of the thermodynamics of stochastic processes (stochastic thermodynamics). The solution-an irreversible reaction cycle that decreases internal error at the expense of entropy export into the environment-is shown to be widely employed by biological processes that transmit genetic and regulatory information. Expected final online publication date for the Annual Review of Biochemistry, Volume 91 is June 2022. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
生物化学和分子生物学依赖于对分子之间结构互补性的识别。分子相互作用必须是快速可逆的,即脆弱的和特异的。细胞如何调和这些相互矛盾的需求是本文的主题。这个问题及其理论解是在随机过程热力学(随机热力学)的更广泛的理论背景下讨论的。该解决方案——以熵输出为代价减少内部误差的不可逆反应循环——被证明广泛用于传递遗传和调控信息的生物过程。《生物化学年度评论》第91卷预计最终在线出版日期为2022年6月。请参阅http://www.annualreviews.org/page/journal/pubdates用于修订估算。
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引用次数: 6
Validating Small Molecule Chemical Probes for Biological Discovery. 用于生物发现的小分子化学探针的验证。
IF 16.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Pub Date : 2022-04-01 DOI: 10.1146/annurev-biochem-032620-105344
Victoria Vu, Magdalena M. Szewczyk, David Y. Nie, C. Arrowsmith, D. Barsyte-Lovejoy
Small molecule chemical probes are valuable tools for interrogating protein biological functions and relevance as a therapeutic target. Rigorous validation of chemical probe parameters such as cellular potency and selectivity is critical to unequivocally linking biological and phenotypic data resulting from treatment with a chemical probe to the function of a specific target protein. A variety of modern technologies are available to evaluate cellular potency and selectivity, target engagement, and functional response biomarkers of chemical probe compounds. Here, we review these technologies and the rationales behind using them for the characterization and validation of chemical probes. In addition, large-scale phenotypic characterization of chemical probes through chemical genetic screening is increasingly leading to a wealth of information on the cellular pharmacology and disease involvement of potential therapeutic targets. Extensive compound validation approaches and integration of phenotypic information will lay foundations for further use of chemical probes in biological discovery. Expected final online publication date for the Annual Review of Biochemistry, Volume 91 is June 2022. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
小分子化学探针是询问蛋白质生物学功能和作为治疗靶点的相关性的有价值的工具。严格验证化学探针参数,如细胞效力和选择性,对于明确将化学探针处理产生的生物学和表型数据与特定靶蛋白的功能联系起来至关重要。多种现代技术可用于评估化学探针化合物的细胞效力和选择性、靶标参与和功能反应生物标志物。在这里,我们回顾了这些技术及其用于化学探针表征和验证的原理。此外,通过化学遗传筛选对化学探针进行大规模表型表征,越来越多地为潜在治疗靶点的细胞药理学和疾病参与提供了丰富的信息。广泛的化合物验证方法和表型信息的整合将为化学探针在生物学发现中的进一步应用奠定基础。《生物化学年度评论》第91卷预计最终在线出版日期为2022年6月。请参阅http://www.annualreviews.org/page/journal/pubdates用于修订估算。
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引用次数: 8
Metalloproteomics for Biomedical Research: Methodology and Applications. 生物医学研究的金属代谢组学:方法论和应用。
IF 16.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Pub Date : 2022-02-18 DOI: 10.1146/annurev-biochem-040320-104628
Ying Zhou, Hongyan Li, Hongzhe Sun
Metals are essential components in life processes and participate in many important biological processes. Dysregulation of metal homeostasis is correlated with many diseases. Metals are also frequently incorporated into diagnosis and therapeutics. Understanding of metal homeostasis under (patho)physiological conditions and the molecular mechanisms of action of metallodrugs in biological systems has positive impacts on human health. As an emerging interdisciplinary area of research, metalloproteomics involves investigating metal-protein interactions in biological systems at a proteome-wide scale, has received growing attention, and has been implemented into metal-related research. In this review, we summarize the recent advances in metalloproteomics methodologies and applications. We also highlight emerging single-cell metalloproteomics, including time-resolved inductively coupled plasma mass spectrometry, mass cytometry, and secondary ion mass spectrometry. Finally, we discuss future perspectives in metalloproteomics, aiming to attract more original research to develop more advanced methodologies, which could be utilized rapidly by biochemists or biologists to expand our knowledge of how metal functions in biology and medicine. Expected final online publication date for the Annual Review of Biochemistry, Volume 91 is June 2022. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
金属是生命过程中的重要组成部分,并参与许多重要的生物过程。金属稳态失调与许多疾病有关。金属也经常被用于诊断和治疗。了解(病理)生理条件下的金属稳态以及金属药物在生物系统中的分子作用机制对人类健康有积极影响。作为一个新兴的跨学科研究领域,金属蛋白质组学涉及在蛋白质组学范围内研究生物系统中的金属-蛋白质相互作用,受到越来越多的关注,并已被应用于金属相关研究。本文综述了近年来金属蛋白质组学的研究进展及其应用。我们还重点介绍了新兴的单细胞金属蛋白质组学,包括时间分辨电感耦合等离子体质谱法、质谱仪和二次离子质谱法。最后,我们讨论了金属蛋白质组学的未来前景,旨在吸引更多原创研究来开发更先进的方法,生物化学家或生物学家可以迅速利用这些方法来扩展我们对金属在生物学和医学中如何发挥作用的知识。《生物化学年度评论》第91卷预计最终在线出版日期为2022年6月。请参阅http://www.annualreviews.org/page/journal/pubdates用于修订估算。
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引用次数: 13
MAPK-Activated Protein Kinases: Servant or Partner? MAPK活化蛋白激酶:仆人还是伴侣?
IF 16.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Pub Date : 2022-02-18 DOI: 10.1146/annurev-biochem-081720-114505
N. Ronkina, M. Gaestel
Mitogen-activated protein kinase (MAPK)-activated protein kinases (MAPKAPKs) are defined by their exclusive activation by MAPKs. They can be activated by classical and atypical MAPKs that have been stimulated by mitogens and various stresses. Genetic deletions of MAPKAPKs and availability of highly specific small-molecule inhibitors have continuously increased our functional understanding of these kinases. MAPKAPKs cooperate in the regulation of gene expression at the level of transcription; RNA processing, export, and stability; and protein synthesis. The diversity of stimuli for MAPK activation, the cross talk between the different MAPKs and MAPKAPKs, and the specific substrate pattern of MAPKAPKs orchestrate immediate-early and inflammatory responses in space and time and ensure proper control of cell growth, differentiation, and cell behavior. Hence, MAPKAPKs are promising targets for cancer therapy and treatments for conditions of acute and chronic inflammation, such as cytokine storms and rheumatoid arthritis. Expected final online publication date for the Annual Review of Biochemistry, Volume 91 is June 2022. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
丝裂原活化蛋白激酶(MAPK)活化蛋白激酶是指它们被MAPK独家激活。它们可以被经典和非典型MAPK激活,这些MAPK受到有丝分裂原和各种应激的刺激。MAPKAPKs的遗传缺失和高特异性小分子抑制剂的可用性不断增加了我们对这些激酶的功能理解。MAPKAPKs在转录水平上协同调节基因表达;RNA加工、出口和稳定性;以及蛋白质合成。MAPK激活刺激的多样性、不同MAPK和MAPKAPKs之间的串扰以及MAPKAPKs的特定底物模式在空间和时间上协调了即时的早期和炎症反应,并确保对细胞生长、分化和细胞行为的适当控制。因此,MAPKAPKs是癌症治疗和治疗急性和慢性炎症的有前景的靶点,如细胞因子风暴和类风湿性关节炎。《生物化学年度评论》第91卷预计最终在线出版日期为2022年6月。请参阅http://www.annualreviews.org/page/journal/pubdates用于修订估算。
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引用次数: 36
DNA-Protein Crosslinks and Their Resolution. DNA-蛋白质交联及其解析。
IF 16.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Pub Date : 2022-02-18 DOI: 10.1146/annurev-biochem-032620-105820
P. Weickert, Julian Stingele
Covalent DNA-protein crosslinks (DPCs) are pervasive DNA lesions that interfere with essential chromatin processes such as transcription or replication. This review strives to provide an overview of the sources and principles of cellular DPC formation. DPCs are caused by endogenous reactive metabolites and various chemotherapeutic agents. However, in certain conditions DPCs also arise physiologically in cells. We discuss the cellular mechanisms resolving these threats to genomic integrity. Detection and repair of DPCs require not only the action of canonical DNA repair pathways but also the activity of specialized proteolytic enzymes-including proteases of the SPRTN/Wss1 family-to degrade the crosslinked protein. Loss of DPC repair capacity has dramatic consequences, ranging from genome instability in yeast and worms to cancer predisposition and premature aging in mice and humans. Expected final online publication date for the Annual Review of Biochemistry, Volume 91 is June 2022. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
共价DNA蛋白质交联(DPCs)是一种普遍存在的DNA损伤,干扰转录或复制等基本染色质过程。这篇综述致力于提供细胞DPC形成的来源和原理的概述。DPCs是由内源性反应性代谢产物和各种化疗药物引起的。然而,在某些条件下,DPC也在细胞中产生。我们讨论了解决这些威胁基因组完整性的细胞机制。DPCs的检测和修复不仅需要典型DNA修复途径的作用,还需要专门的蛋白水解酶(包括SPRTN/Wss1家族的蛋白酶)的活性来降解交联蛋白。DPC修复能力的丧失具有显著的后果,从酵母和蠕虫的基因组不稳定到小鼠和人类的癌症易感性和过早衰老。《生物化学年度评论》第91卷预计最终在线出版日期为2022年6月。请参阅http://www.annualreviews.org/page/journal/pubdates用于修订估算。
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引用次数: 23
The Wnt Pathway: From Signaling Mechanisms to Synthetic Modulators. Wnt通路:从信号机制到合成调制剂。
IF 16.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Pub Date : 2022-02-18 DOI: 10.1146/annurev-biochem-040320-103615
Ellen Youngsoo Rim, H. Clevers, R. Nusse
The Wnt pathway is central to a host of developmental and disease-related processes. The remarkable conservation of this intercellular signaling cascade throughout metazoan lineages indicates that it coevolved with multicellularity to regulate the generation and spatial arrangement of distinct cell types. By regulating cell fate specification, mitotic activity, and cell polarity, Wnt signaling orchestrates development and tissue homeostasis, and its dysregulation is implicated in developmental defects, cancer, and degenerative disorders. We review advances in our understanding of this key pathway, from Wnt protein production and secretion to relay of the signal in the cytoplasm of the receiving cell. We discuss the evolutionary history of this pathway as well as endogenous and synthetic modulators of its activity. Finally, we highlight remaining gaps in our knowledge of Wnt signal transduction and avenues for future research. Expected final online publication date for the Annual Review of Biochemistry, Volume 91 is June 2022. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
Wnt通路是许多发育和疾病相关过程的核心。这种细胞间信号级联在后生动物谱系中的显著保存表明,它与多细胞共同进化,调节不同细胞类型的产生和空间排列。通过调节细胞命运规范、有丝分裂活性和细胞极性,Wnt信号调节发育和组织稳态,其失调与发育缺陷、癌症和退行性疾病有关。我们回顾了我们对这一关键途径的理解进展,从Wnt蛋白的产生和分泌到信号在接收细胞细胞质中的传递。我们讨论了这一途径的进化历史,以及其活性的内源性和合成调节剂。最后,我们强调了我们在Wnt信号转导知识和未来研究途径方面的空白。预计《生物化学年度评论》91卷的最终在线出版日期为2022年6月。修订后的估计数请参阅http://www.annualreviews.org/page/journal/pubdates。
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引用次数: 93
The Role of DEAD-Box ATPases in Gene Expression and the Regulation of RNA-Protein Condensates. DEAD-Box-ATP酶在基因表达中的作用及对RNA蛋白凝结物的调控。
IF 16.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Pub Date : 2022-02-18 DOI: 10.1146/annurev-biochem-032620-105429
K. Weis, Maria Hondele
DEAD-box ATPases constitute a very large protein family present in all cells, often in great abundance. From bacteria to humans, they play critical roles in many aspects of RNA metabolism, and due to their widespread importance in RNA biology, they have been characterized in great detail at both the structural and biochemical levels. DEAD-box proteins function as RNA-dependent ATPases that can unwind short duplexes of RNA, remodel ribonucleoprotein (RNP) complexes, or act as clamps to promote RNP assembly. Yet, it often remains enigmatic how individual DEAD-box proteins mechanistically contribute to specific RNA-processing steps. Here, we review the role of DEAD-box ATPases in the regulation of gene expression and propose that one common function of these enzymes is in the regulation of liquid-liquid phase separation of RNP condensates. Expected final online publication date for the Annual Review of Biochemistry, Volume 91 is June 2022. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
DEAD-box ATP酶是一个存在于所有细胞中的非常大的蛋白质家族,通常丰度很高。从细菌到人类,它们在RNA代谢的许多方面发挥着关键作用,由于它们在RNA生物学中的广泛重要性,它们在结构和生化水平上都得到了详细的表征。DEAD盒蛋白作为RNA依赖性ATP酶发挥作用,可以解开RNA的短双链体,重塑核糖核蛋白(RNP)复合物,或充当促进RNP组装的夹子。然而,个体DEAD盒蛋白是如何在特定的RNA加工步骤中发挥作用的,这通常仍然是个谜。在此,我们综述了DEAD-box ATP酶在基因表达调控中的作用,并提出这些酶的一个共同功能是调节RNP缩合物的液-液相分离。《生物化学年度评论》第91卷预计最终在线出版日期为2022年6月。请参阅http://www.annualreviews.org/page/journal/pubdates用于修订估算。
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引用次数: 13
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Annual review of biochemistry
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