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Mitochondria from the Outside in: The Relationship Between Inter-Organelle Crosstalk and Mitochondrial Internal Organization. 线粒体由外而内:器官间串联与线粒体内部组织之间的关系。
Pub Date : 2022-01-01 DOI: 10.1177/25152564221133267
Jonathan R Friedman

A fundamental role of membrane-bound organelles is the compartmentalization and organization of cellular processes. Mitochondria perform an immense number of metabolic chemical reactions and to efficiently regulate these, the organelle organizes its inner membrane into distinct morphological domains, including its characteristic cristae membranes. In recent years, a structural feature of increasing apparent importance is the inter-connection between the mitochondrial exterior and other organelles at membrane contact sites (MCSs). Mitochondria form MCSs with almost every other organelle in the cell, including the endoplasmic reticulum, lipid droplets, and lysosomes, to coordinate global cellular metabolism with mitochondrial metabolism. However, these MCSs not only facilitate the transport of metabolites between organelles, but also directly impinge on the physical shape and functional organization inside mitochondria. In this review, we highlight recent advances in our understanding of how physical connections between other organelles and mitochondria both directly and indirectly influence the internal architecture of mitochondria.

膜结合细胞器的一个基本作用是对细胞过程进行分区和组织。线粒体进行着大量的新陈代谢化学反应,为了有效地调节这些反应,细胞器将其内膜组织成不同的形态域,包括其特有的嵴膜。近年来,线粒体外部与其他细胞器在膜接触点(MCS)上的相互连接这一结构特征的重要性日益凸显。线粒体与细胞内几乎所有其他细胞器(包括内质网、脂滴和溶酶体)都形成了 MCS,以协调整体细胞代谢与线粒体代谢。然而,这些多导管系统不仅促进了细胞器之间代谢物的运输,还直接影响了线粒体内部的物理形态和功能组织。在这篇综述中,我们将重点介绍在了解其他细胞器与线粒体之间的物理连接如何直接或间接影响线粒体内部结构方面的最新进展。
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引用次数: 0
Nuclear Interactions: A Spotlight on Nuclear Mitochondrial Membrane Contact Sites. 核相互作用:聚焦于核线粒体膜接触位点。
Pub Date : 2022-01-01 DOI: 10.1177/25152564221096217
Jana Ovciarikova, Shikha Shikha, Lilach Sheiner

Membrane contact sites (MCS) are critical for cellular functions of eukaryotes, as they enable communication and exchange between organelles. Research over the last decade unravelled the function and composition of MCS between a variety of organelles including mitochondria, ER, plasma membrane, lysosomes, lipid droplets, peroxisome and endosome, to name a few. In fact, MCS are found between any pair of organelles studied to date, with common functions including lipid exchange, calcium signalling and organelle positioning in the cell. Work in the past year has started addressing the composition and function of nuclear-mitochondrial MCS. Tether components mediating these contacts in yeast have been identified via comprehensive phenotypic screens, which also revealed a possible link between this contact and phosphatidylcholine metabolism. In human cells, and in the protozoan parasites causing malaria, proximity between these organelles is proposed to promote cell survival via a mitochondrial retrograde response. These pioneering studies should inspire the field to explore what cellular processes depend on the exchange between the nucleus and the mitochondrion, given that they play such central roles in cell biology.

膜接触位点(MCS)对真核生物的细胞功能至关重要,因为它们使细胞器之间的通信和交换成为可能。过去十年的研究揭示了多种细胞器之间MCS的功能和组成,包括线粒体、内质网、质膜、溶酶体、脂滴、过氧化物酶体和核内体等。事实上,迄今为止研究的任何一对细胞器之间都存在MCS,其共同功能包括脂质交换、钙信号传导和细胞器在细胞中的定位。在过去的一年里,已经开始研究核线粒体MCS的组成和功能。通过综合表型筛选确定了酵母中介导这些接触的Tether成分,这也揭示了这种接触与磷脂酰胆碱代谢之间的可能联系。在人类细胞和引起疟疾的原生动物寄生虫中,这些细胞器之间的接近被认为可以通过线粒体逆行反应促进细胞存活。考虑到细胞核和线粒体在细胞生物学中起着如此重要的作用,这些开创性的研究应该激发该领域探索哪些细胞过程依赖于细胞核和线粒体之间的交换。
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引用次数: 1
Remodelling of Nucleus-Vacuole Junctions During Metabolic and Proteostatic Stress. 代谢和蛋白静态应激过程中的核-囊连接重塑
Pub Date : 2021-05-27 eCollection Date: 2021-01-01 DOI: 10.1177/25152564211016608
Verena Kohler, Sabrina Büttner

Cellular adaptation to stress and metabolic cues requires a coordinated response of different intracellular compartments, separated by semipermeable membranes. One way to facilitate interorganellar communication is via membrane contact sites, physical bridges between opposing organellar membranes formed by an array of tethering machineries. These contact sites are highly dynamic and establish an interconnected organellar network able to quickly respond to external and internal stress by changing size, abundance and molecular architecture. Here, we discuss recent work on nucleus-vacuole junctions, connecting yeast vacuoles with the nucleus. Appearing as small, single foci in mitotic cells, these contacts expand into one enlarged patch upon nutrient exhaustion and entry into quiescence or can be shaped into multiple large foci essential to sustain viability upon proteostatic stress at the nuclear envelope. We highlight the remarkable plasticity and rapid remodelling of these contact sites upon metabolic or proteostatic stress and their emerging importance for cellular fitness.

细胞对压力和新陈代谢信号的适应需要由半透膜隔开的不同细胞内区室的协调反应。促进细胞器间交流的一种方式是通过膜接触点,即由一系列系链机制形成的对立细胞器膜之间的物理桥梁。这些接触点是高度动态的,它们建立了一个相互连接的细胞器网络,能够通过改变大小、丰度和分子结构对内外压力做出快速反应。在此,我们将讨论最近有关连接酵母液泡与细胞核的细胞核-液泡连接点的研究。这些连接点在有丝分裂细胞中表现为单个小病灶,在营养耗竭和进入静止期时扩展成一个扩大的斑块,或者在核膜受到蛋白静态压力时形成多个维持生命力所必需的大病灶。我们强调了这些接触点在新陈代谢或蛋白静态应激时的显著可塑性和快速重塑,以及它们对细胞活力的新的重要性。
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引用次数: 0
What the VAP: The Expanded VAP Family of Proteins Interacting With FFAT and FFAT-Related Motifs for Interorganellar Contact. VAP是什么:扩展的VAP蛋白家族与FFAT和FFAT相关基序相互作用的细胞器间接触。
Pub Date : 2021-05-09 eCollection Date: 2021-01-01 DOI: 10.1177/25152564211012246
Jacques Neefjes, Birol Cabukusta

Membrane contact sites are formed by tether proteins that have the ability to bring two organellar membranes together. VAP proteins are a family of endoplasmic reticulum (ER)-resident tether proteins specialized in interacting with FFAT (two phenylalanines in an acidic tract) peptide motifs in other proteins. If the FFAT-motif-containing proteins reside on other organelles, VAP proteins form contact sites between these organelles and the ER. The role of VAPA and VAPB, the two founding members of the VAP family in recruiting proteins to the ER and forming membrane contact sites is well appreciated as numerous interaction partners of VAPA and VAPB at different intracellular contact sites have been characterized. Recently, three new proteins -MOSPD1, MOSPD2 and MOSPD3-have been added to the VAP family. While MOSPD2 has a motif preference similar to VAPA and VAPB, MOSPD1 and MOSPD3 prefer to interact with proteins containing FFNT (two phenylalanines in a neutral tract) motifs. In this review, we discuss the recent advances in motif binding by VAP proteins along with the other biological processes VAP proteins are involved in.

膜接触点是由能够将两个细胞器膜连接在一起的系链蛋白形成的。VAP蛋白是一类内质网(ER)系链蛋白,专门与其他蛋白质中的FFAT(酸性通道中的两种苯丙氨酸)肽基序相互作用。如果含有ffat基序的蛋白存在于其他细胞器上,VAP蛋白在这些细胞器和内质网之间形成接触位点。VAPA和VAPB是VAP家族的两个创始成员,它们在向内质网募集蛋白质和形成膜接触位点方面的作用得到了很好的认识,因为VAPA和VAPB在不同细胞内接触位点的许多相互作用伙伴已经被表征。最近,三个新的蛋白-MOSPD1, MOSPD2和mospd3 -被添加到VAP家族。虽然MOSPD2具有与VAPA和VAPB相似的基序偏好,但MOSPD1和MOSPD3更倾向于与含有FFNT(中性通道中的两种苯丙氨酸)基序的蛋白质相互作用。本文综述了近年来VAP蛋白结合基序的研究进展以及VAP蛋白参与的其他生物过程。
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引用次数: 11
Regulation of Plasma Membrane Sterol Homeostasis by Nonvesicular Lipid Transport. 非囊性脂质转运对质膜固醇稳态的调节。
Pub Date : 2021-01-01 DOI: 10.1177/25152564211042451
Dylan Hong Zheng Koh, Yasunori Saheki

Sterol contributes to the structural integrity of cellular membranes and plays an important role in the regulation of cell signaling in eukaryotes. It is either produced in the endoplasmic reticulum or taken up from the extracellular environment. In most eukaryotic cells, however, the majority of sterol is enriched in the plasma membrane. Thus, the transport of sterol between the plasma membrane and other organelles, including the endoplasmic reticulum, is crucial for maintaining sterol homeostasis. While vesicular transport that relies on membrane budding and fusion reactions plays an important role in bulk sterol transport, this mode of transport is slow and non-selective. Growing evidence suggests a critical role of nonvesicular transport mediated by evolutionarily conserved families of lipid transfer proteins in more rapid and selective delivery of sterol. Some lipid transfer proteins act primarily at the sites of contacts formed between the endoplasmic reticulum and other organelles or the plasma membrane without membrane fusion. In this review, we describe the similarities and differences of sterol biosynthesis and uptake in mammals and yeast and discuss the role of their lipid transfer proteins in maintaining plasma membrane sterol homeostasis.

甾醇有助于细胞膜的结构完整性,并在真核生物的细胞信号传导调节中发挥重要作用。它要么在内质网中产生,要么从细胞外环境中吸收。然而,在大多数真核细胞中,大部分甾醇富集在质膜中。因此,固醇在质膜和其他细胞器(包括内质网)之间的运输对于维持固醇稳态至关重要。尽管依赖于膜出芽和融合反应的囊泡运输在散装固醇运输中起着重要作用,但这种运输方式缓慢且无选择性。越来越多的证据表明,由进化上保守的脂质转移蛋白家族介导的非囊泡转运在更快速和选择性地递送甾醇中起着关键作用。一些脂质转移蛋白主要作用于内质网与其他细胞器或质膜之间的接触部位,而没有膜融合。本文综述了哺乳动物和酵母中固醇合成和摄取的异同,并讨论了它们的脂质转移蛋白在维持质膜固醇稳态中的作用。
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引用次数: 3
Interactome Analysis of the ER Stress Sensor Perk Uncovers Key Components of ER-Mitochondria Contact Sites and Ca2+ Signalling. 内质网应激传感器Perk的相互作用组分析揭示了内质网线粒体接触位点和Ca2+信号传导的关键成分。
Pub Date : 2021-01-01 DOI: 10.1177/25152564211052392
Maria Livia Sassano, Rita Derua, Etienne Waelkens, Patrizia Agostinis, Alexander R van Vliet

We recently reported that the ER stress kinase PERK regulates ER-mitochondria appositions and ER- plasma membrane (ER-PM) contact sites, independent of its canonical role in the unfolded protein response. PERK regulation of ER-PM contacts was revealed by a proximity biotinylation (BioID) approach and involved a dynamic PERK-Filamin A interaction supporting the formation of ER-PM contacts by actin-cytoskeleton remodeling in response to depletion of ER-Ca2+ stores. In this report, we further interrogated the PERK BioID interactome by validating through co-IP experiments the interaction between PERK and two proteins involved in Ca2+ handling and ER-mitochondria contact sites. These included the vesicle associated membrane (VAMP)-associated proteins (VAPA/B) and the main ER Ca2+ pump sarcoplasmic/endoplasmic reticulum Ca ATPase 2 (SERCA2). These data identify new putative PERK interacting proteins with a crucial role in membrane contact sites and Ca2+ signaling further supporting the uncanonical role of PERK in Ca2+ signaling through membrane contact sites (MCSs).

我们最近报道了内质网应激激酶PERK调节内质网线粒体的附着和内质网-质膜(ER- pm)接触位点,独立于其在未折叠蛋白反应中的典型作用。通过接近生物素化(BioID)方法揭示了PERK对ER-PM接触的调节,并涉及动态的PERK- filamin a相互作用,通过肌动蛋白-细胞骨架重塑来支持ER-PM接触的形成,以响应ER-Ca2+储存的消耗。在这篇报告中,我们进一步研究了PERK BioID相互作用组,通过co-IP实验验证了PERK与两个参与Ca2+处理和er -线粒体接触位点的蛋白质之间的相互作用。这些包括囊泡相关膜(VAMP)相关蛋白(VAPA/B)和主要ER Ca2+泵肌浆/内质网Ca atp酶2 (SERCA2)。这些数据确定了新的假定的PERK相互作用蛋白,在膜接触位点和Ca2+信号传导中起关键作用,进一步支持了PERK在通过膜接触位点(MCSs)的Ca2+信号传导中的非规范作用。
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引用次数: 4
A Glimpse of the Structural Biology of the Metabolism of Sphingosine-1-Phosphate. 鞘氨醇-1-磷酸代谢的结构生物学初探。
Pub Date : 2021-01-01 DOI: 10.1177/2515256421995601
Ruobing Ren, Bin Pang, Yufei Han, Yihao Li

As a key sphingolipid metabolite, sphingosine-1-phosphate (S1P) plays crucial roles in vascular and immune systems. It regulates angiogenesis, vascular integrity and homeostasis, allergic responses, and lymphocyte trafficking. S1P is interconverted with sphingosine, which is also derived from the deacylation of ceramide. S1P levels and the ratio to ceramide in cells are tightly regulated by its metabolic pathways. Abnormal S1P production causes the occurrence and progression of numerous severe diseases, such as metabolic syndrome, cancers, autoimmune disorders such as multiple sclerosis, and kidney and cardiovascular diseases. In recent years, huge advances on the structure of S1P metabolic pathways have been accomplished. In this review, we have got a glimpse of S1P metabolism through structural and biochemical studies of: sphingosine kinases, S1P transporters and S1P receptors, and the development of therapeutics targeting S1P signaling. The progress we summarize here could provide fresh perspectives to further the exploration of S1P functions and facilitate the development of therapeutic molecules targeting S1P signaling with improved specificity and therapeutic effects.

鞘鞘醇-1-磷酸(S1P)是鞘脂代谢的关键代谢物,在血管和免疫系统中起着重要作用。它调节血管生成、血管完整性和稳态、过敏反应和淋巴细胞运输。S1P与鞘氨醇相互转化,鞘氨醇也来源于神经酰胺的去酰化。细胞中S1P的水平和与神经酰胺的比例受到其代谢途径的严格调节。异常的S1P生成导致许多严重疾病的发生和发展,如代谢综合征、癌症、多发性硬化症等自身免疫性疾病、肾脏和心血管疾病。近年来,对S1P代谢途径结构的研究取得了巨大进展。本文通过对鞘氨醇激酶、S1P转运体和S1P受体的结构和生化研究,以及针对S1P信号的治疗方法的研究,对S1P的代谢进行了综述。本文综述的研究进展为进一步探索S1P的功能提供了新的视角,并有助于开发靶向S1P信号的治疗分子,提高特异性和治疗效果。
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引用次数: 2
A Tetrameric Assembly of Saposin A: Increasing Structural Diversity in Lipid Transfer Proteins. 皂苷A的四聚体组装:增加脂质转移蛋白的结构多样性。
Pub Date : 2021-01-01 DOI: 10.1177/25152564211052382
Maria Shamin, Samantha J Spratley, Stephen C Graham, Janet E Deane

Saposins are lipid transfer proteins required for the degradation of sphingolipids in the lysosome. These small proteins bind lipids by transitioning from a closed, monomeric state to an open conformation exposing a hydrophobic surface that binds and shields hydrophobic lipid tails from the aqueous environment. Saposins form a range of multimeric assemblies to encompass these bound lipids and present them to hydrolases in the lysosome. This lipid-binding property of human saposin A has been exploited to form lipoprotein nanodiscs suitable for structural studies of membrane proteins. Here we present the crystal structure of a unique tetrameric assembly of murine saposin A produced serendipitously, following modifications of published protocols for making lipoprotein nanodiscs. The structure of this new saposin oligomer highlights the diversity of tertiary arrangement that can be adopted by these important lipid transfer proteins.

皂苷是溶酶体降解鞘脂所需的脂质转移蛋白。这些小蛋白质通过从封闭的单体状态转变为开放的构象来结合脂质,暴露出一个结合并保护疏水脂质尾部不受水环境影响的疏水表面。皂苷形成一系列多聚体组合,包围这些结合的脂质,并将它们呈递给溶酶体中的水解酶。人类皂苷A的这种脂质结合特性已被利用来形成适合于膜蛋白结构研究的脂蛋白纳米盘。在这里,我们展示了一种独特的四聚体组装的小鼠皂苷a的晶体结构,它是在对已发表的制造脂蛋白纳米盘的方案进行修改后偶然产生的。这种新的皂苷低聚物的结构突出了这些重要的脂质转移蛋白可以采用的三级排列的多样性。
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引用次数: 1
Corrigendum to "Getting in Touch is an Important Step: Control of Metabolism at Organelle Contact Sites". “接触是重要的一步:控制细胞器接触部位的代谢”的勘误表。
Pub Date : 2021-01-01 DOI: 10.1177/25152564211031738

[This corrects the article DOI: 10.1177/2515256421993708.].

[这更正了文章DOI: 10.1177/2515256421993708.]。
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引用次数: 0
Sigma 1 Receptor, Cholesterol and Endoplasmic Reticulum Contact Sites. Sigma 1受体、胆固醇和内质网接触部位。
Pub Date : 2021-01-01 DOI: 10.1177/25152564211026505
Vladimir Zhemkov, Jen Liou, Ilya Bezprozvanny

Recent studies indicated potential importance of membrane contact sites (MCS) between the endoplasmic reticulum (ER) and other cellular organelles. These MCS have unique protein and lipid composition and serve as hubs for inter-organelle communication and signaling. Despite extensive investigation of MCS protein composition and functional roles, little is known about the process of MCS formation. In this perspective, we propose a hypothesis that MCS are formed not as a result of random interactions between membranes of ER and other organelles but on the basis of pre-existing cholesterol-enriched ER microdomains.

最近的研究表明,内质网(ER)和其他细胞器之间的膜接触位点(MCS)具有潜在的重要性。这些MCS具有独特的蛋白质和脂质组成,是细胞器间通信和信号传导的枢纽。尽管对MCS的蛋白质组成和功能作用进行了广泛的研究,但对MCS形成的过程知之甚少。从这个角度来看,我们提出了一个假设,即MCS的形成不是内质网膜和其他细胞器之间随机相互作用的结果,而是基于预先存在的富含胆固醇的内质网微域。
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引用次数: 3
期刊
Contact (Thousand Oaks (Ventura County, Calif.))
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