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1.
同型融合和蛋白质分选复合体(HOPS)由VPS11、VPS16、VPS18、VPS33、VPS39和VPS41这6种蛋白组成,能够通过膜融合机制来调节生物体内的膜泡运输。已有研究表明其可以作为融合因子来促进自噬体与溶酶体膜融合过程。为在体外确定HOPS复合体与自噬性SNARE蛋白STX17是否具有直接相互作用,首先利用PCR技术从已有质粒中扩增得到6种基因的编码序列,将其连接至pGEX 4T-1-GST或pET-His-NusA原核表达载体上,经菌落PCR初步鉴定和DNA测序无误后成功构建6种原核表达重组质粒并转化至大肠杆菌BL21(DE3);利用谷胱甘肽琼脂糖树脂与镍柱对重组蛋白进行纯化,烟草蚀纹病毒(TEV)蛋白酶酶切掉GST或His-NusA标签,得到分子量约为105 kDa的HA-VPS11蛋白、97 kDa的Flag-VPS16蛋白、108 kDa的HA-VPS18蛋白、70 kDa的Flag-VPS33蛋白、97 k Da的HA-VPS39蛋白和98 kDa的Flag-VPS41蛋白;通过体外GST pull-down技术对6种蛋白的功能进行验证,证实自噬性SNARE蛋白STX17和6种重组蛋白在体外均具有直接相互作用,为深入探究HOPS复合体参与自噬体与溶酶体膜融合过程中的功能及作用机制奠定实验基础。  相似文献   

2.
主要介绍了SNARE蛋在在膜融合过程中的核心驱动作用。自1980s后期SNARE蛋白被发现以后,SNAREs就作为细胞膜融合蛋白复合体的关键组分而获得普遍认同。尽管不同SNARE蛋白的基因组成序列存在差异,但它们的功能在进化上似乎是保守的,均涉及细胞生长、膜修复、细胞骨架动力学和突触传递等许多方面的细胞膜融合活动。从这些发现可以看到,膜融合机制展示了SNARE蛋白复合体作为一种超级微型机器工作的迷人画卷。  相似文献   

3.
高等植物细胞含有复杂的内膜系统,通过其特有的膜泡运输机制来完成细胞内和细胞间的物质交流。膜泡运输主要包括运输囊泡的出芽、定向移动、拴留和膜融合4个过程。这4个过程受到许多因子的调控,如Coat、SM、Tether、SNARE和Rab蛋白等,其中SNARE因子在膜融合过程中发挥重要功能。SNARE因子是小分子跨膜蛋白,分为定位于运输囊泡上的v-SNARE和定位于靶位膜上的t-SNARE,两类SNARE结合形成SNARE复合体,促进膜融合的发生。SNARE蛋白在调控植物体生长发育以及对外界环境响应等生理过程中起重要作用。该文对模式植物拟南芥(Arabidopsis thaliana)SNARE因子的最新细胞内定位和功能分析等研究进展进行了概述。  相似文献   

4.
拟南芥SNARE因子在膜泡运输中的功能   总被引:1,自引:0,他引:1  
金红敏  李立新 《植物学报》2010,45(4):479-491
高等植物细胞含有复杂的内膜系统, 通过其特有的膜泡运输机制来完成细胞内和细胞间的物质交流。膜泡运输主要包括运输囊泡的出芽、定向移动、拴留和膜融合4个过程。这4个过程受到许多因子的调控, 如Coat、SM、Tether、SNARE和Rab蛋白等, 其中SNARE因子在膜融合过程中发挥重要功能。SNARE因子是小分子跨膜蛋白, 分为定位于运输囊泡上的v-SNARE和定位于靶位膜上的t-SNARE, 两类SNARE结合形成SNARE复合体, 促进膜融合的发生。SNARE蛋白在调控植物体生长发育以及对外界环境响应等生理过程中起重要作用。该文对模式植物拟南芥(Arabidopsis thaliana)SNARE因子的最新细胞内定位和功能分析等研究进展进行了概述。  相似文献   

5.
自噬对胞内感染病原体的双重作用   总被引:1,自引:0,他引:1  
自噬(autophagy)是细胞维持稳态的一种机制[1,2].在自噬发生过程中,来源不明的单层膜凹陷形成杯状双层膜的结构,包裹细胞质和细胞器部分,形成有双层膜的自噬体(autophagosome).自噬体随之与溶酶体融合形成自噬溶酶体,其中的细胞物质被溶酶体酶降解,降解后产生的氨基酸可以被细胞重新利用,参与物质的再循环.  相似文献   

6.
细胞自噬是指细胞通过自噬-溶酶体(autolysosome)降解变性蛋白聚集物和受损细胞器的过程. 自噬对于细胞内环境的稳态、物质的平衡、胚胎发育以及疾病的发生发挥重要作用. 在电镜下观察,自噬体膜是一个双层脂质膜结构. 细胞中因缺乏除了自噬相关蛋白9 (autophagy-related protein 9,ATG9)以外的自噬体膜相关蛋白,故难以确定自噬体膜的来源. 自噬体膜的来源也因此成为目前自噬研究领域的热点问题. 关于自噬体膜的来源,学术界存在两种观点:一种认为自噬体膜是细胞在自噬体组装位点(pre-autophagosomal structure, PAS)重新合成的;另一种观点则认为自噬体膜来源于细胞已有的某些细胞器(如内质网、高尔基体、内吞体、质膜和线粒体). 该文综述了近年有关自噬体膜来源于细胞已有的某些细胞器的研究进展,旨在为相关领域的研究提供参考.  相似文献   

7.
赵翔  韩宝达  李立新 《遗传》2012,34(4):11-22
大多数细胞内都包含靶向不同细胞器的各种运输囊泡,其运输机制在进化上是高度保守的。Sec1/Munc-18(SM)蛋白在膜泡运输中起着重要的调控作用,它能够与SNARE(Soluble N-ethylmaleimide-sensitive factorattachment protein receptor)蛋白结合,共同在细胞内各个膜融合发生部位发挥重要作用。SM蛋白和SNARE复合体中的Syntaxin蛋白结合,调节SNARE复合体的装配,并与SNARE协同作用促进整个膜融合过程。文章对SM蛋白在结构和功能分析方面的最新研究进展进行了概述。  相似文献   

8.
细胞自噬是一类依赖于溶酶体的蛋白质降解途径,在真核生物中非常保守。自噬能够感受细胞所处环境的各种信号,如氨基酸、糖等营养物质的缺乏、p H值或渗透压的改变等,使细胞做出应激反应,在恶劣环境下存活。同时,自噬过程会清除细胞内错误折叠或聚集的蛋白质,受损或老化细胞器以维持细胞内部稳态。自噬发生时,细胞内部的胞质组分被包裹在自噬体中,自噬体与溶酶体融合进行降解,产生新的小分子,如氨基酸等供细胞重新利用。一系列研究发现自噬的信号通路非常复杂,已报道有40个自噬相关蛋白(Atg蛋白)参与了自噬体的形成过程。Atg蛋白按照一定步骤发挥功能,同时相互影响,利用内膜系统构建成一个闭合的双层膜结构。将对细胞自噬研究的历史、自噬分子机制的前沿进展进行综述。  相似文献   

9.
高等植物细胞通过其特有的内膜系统和膜泡运输机制完成细胞内外的物质与信息交流。SNARE是膜泡运输过程中运输囊泡与靶膜之间融合的重要调节因子。根据氨基酸序列特性,SNARE分为Q-SNARE和R-SNARE两类。Q-SNARE又分为Qa-、Qb-和Qc-SNARE三类。其中,Qa-SNARE在SNARE复合体形成乃至整个膜融合过程中发挥着至关重要的作用。本文对Qa-SNARE在植物生长发育和响应环境变化的最新研究进展进行概述。  相似文献   

10.
缺血性脑卒中是由脑血管梗塞引起的急性脑血管病,具有较高的发病率、致残率和致死率。研究发现,过度自噬或自噬不足均可导致细胞损伤。自噬包括自噬体的形成和成熟、自噬体与溶酶体融合、自噬底物在自噬溶酶体内的降解和清除,这些过程呈连续状态则称为自噬流。研究发现,脑缺血可导致自噬体与溶酶体间发生融合障碍,从而引发自噬流损伤。细胞内膜融合由3种核心组分介导,即N-乙基马来酰亚胺敏感因子(N-ethylmaleimide sensitive factor,NSF) ATP酶、可溶性NSF黏附蛋白(soluble NSF attachment protein,SNAP)及可溶性NSF黏附蛋白受体(soluble NSF attachment protein receptors,SNAREs)。当SNAREs介导自噬体与溶酶体融合后以非活性的复合体形式存留于自噬溶酶体膜,须被NSF再激活为单体后方可发挥新一轮的膜融合介导作用,而NSF是唯一可再激活SNAREs的ATP酶。新近研究表明,脑缺血可显著抑制NSF ATP酶活性,导致其对SNAREs再激活减少,这可能是自噬体与溶酶体间发生融合障碍并导致神经元自噬...  相似文献   

11.
Autophagy is a process delivering cytoplasmic components to lysosomes for degradation. Autophagy may, however, play a role in unconventional secretion of leaderless cytosolic proteins. How secretory autophagy diverges from degradative autophagy remains unclear. Here we show that in response to lysosomal damage, the prototypical cytosolic secretory autophagy cargo IL‐1β is recognized by specialized secretory autophagy cargo receptor TRIM16 and that this receptor interacts with the R‐SNARE Sec22b to recruit cargo to the LC3‐II+ sequestration membranes. Cargo secretion is unaffected by downregulation of syntaxin 17, a SNARE promoting autophagosome–lysosome fusion and cargo degradation. Instead, Sec22b in combination with plasma membrane syntaxin 3 and syntaxin 4 as well as SNAP‐23 and SNAP‐29 completes cargo secretion. Thus, secretory autophagy utilizes a specialized cytosolic cargo receptor and a dedicated SNARE system. Other unconventionally secreted cargo, such as ferritin, is secreted via the same pathway.  相似文献   

12.
Macroautophagy/autophagy plays a role in unconventional secretion of leaderless cytosolic proteins. Whether and how secretory autophagy diverges from conventional degradative autophagy is unclear. We have shown that the prototypical secretory autophagy cargo IL1B/IL-1β (interleukin 1 β) is recognized by TRIM16, and that this first to be identified secretory autophagy receptor interacts with the R-SNARE SEC22B to jointly deliver cargo to the MAP1LC3B-II-positive sequestration membranes. Cargo secretion is unaffected by knockdowns of STX17, a SNARE catalyzing autophagosome-lysosome fusion as a prelude to cargo degradation. Instead, SEC22B in combination with plasma membrane syntaxins completes cargo secretion. Thus, secretory autophagy diverges from degradative autophagy by using specialized receptors and a dedicated SNARE machinery to bypass fusion with lysosomes.  相似文献   

13.
Xu Liu 《Autophagy》2016,12(5):894-895
The macroautophagy (hereafter autophagy) process involves de novo formation of double-membrane autophagosomes; after sequestering cytoplasm these transient organelles fuse with the vacuole/lysosome. Genetic studies in yeasts have characterized more than 40 autophagy-related (Atg) proteins required for autophagy, and the majority of these proteins play roles in autophagosome formation. The fusion of autophagosomes with the vacuole is mediated by the Rab GTPase Ypt7, its guanine nucleotide exchange factor Mon1-Ccz1, and soluble N-ethylmaleimide-sensitive factor attachment protein receptor (SNARE) proteins. However, these factors are not autophagosome-vacuole fusion specific. We recently showed that 2 autophagy scaffold proteins, the Atg17-Atg31-Atg29 complex and Atg11, regulate autophagosome-vacuole fusion by recruiting the vacuolar SNARE Vam7 to the phagophore assembly site (PAS), where an autophagosome forms in yeast.  相似文献   

14.
神经末梢突触囊泡释放神经递质过程的调控蛋白   总被引:3,自引:0,他引:3  
神经末梢突触囊泡释放神经递质是一个复杂且受到精细调控的过程,涉及多种蛋白质间的相互作用。位于突触囊泡膜上的突触囊泡蛋白/突触囊泡相关膜蛋白(synaptobrevin/VAMP),与位于突触前膜上的syntaxin和突触小体相关蛋白SNAP-25,三者聚合形成的可溶性N-甲基马来酰胺敏感因子(NSF)附着蛋白受体(SNARE)核心复合物是突触囊泡胞吐过程中的核心成分。本文主要围绕参与空触囊泡胞吐过程,以及调节SNARE核心复合物的形成,解离及其功能的蛋白质,并对突触囊泡胞吐过程的分子模型作一概述。  相似文献   

15.
Soluble N-ethylmaleimide-sensitive factor activating protein receptor (SNARE) proteins have been at the fore-front of research on biological membrane fusion for some time. The subcellular localization of SNAREs and their ability to form the so-called SNARE complex may be integral to determining the specificity of intracellular fusion (the SNARE hypothesis) and/or serving as the minimal fusion machinery. Both the SNARE hypothesis and the idea of the minimal fusion machinery have been challenged by a number of experimental observations in various model systems, suggesting that SNAREs may have other functions. Considering recent advances in the SNARE literature, it appears that SNAREs may actually function as part of a complex fusion "machine." Their role in the machinery could be any one or a combination of roles, including establishing tight membrane contact, formation of a scaffolding on which to build the machine, binding of lipid surfaces, and many others. It is also possible that complexations other than the classic SNARE complex participate in membrane fusion.  相似文献   

16.
Soluble N-ethylmaleimide sensitive-factor attachment receptor (SNARE) proteins have crucial roles in driving exocytic membrane fusion. Molecular recognition between vesicle-associated (v)-SNARE and target membrane (t)-SNARE leads to the formation of a four-helix bundle, which facilitates the merging of two apposing membranes. Synthetic peptides patterned after the SNARE motifs are predicted to block SNARE complex formation by competing with the parental SNAREs, inhibiting neuronal exocytosis. As an initial attempt to identify the peptide sequences that block SNARE assembly and membrane fusion, we created thirteen 17-residue synthetic peptides derived from the SNARE motifs of v- and t-SNAREs. The effects of these peptides on SNARE-mediated membrane fusion were investigated using an in vitro lipid-mixing assay, in vivo neurotransmitter release and SNARE complex formation assays in PC12 cells. Peptides derived from the N-terminal region of SNARE motifs had significant inhibitory effects on neuroexocytosis, whereas middle- and C-terminal-mimicking peptides did not exhibit much inhibitory function. N-terminal mimicking peptides blocked N-terminal zippering of SNAREs, a rate-limiting step in SNARE-driven membrane fusion. Therefore, the results suggest that the N-terminal regions of SNARE motifs are excellent targets for the development of drugs to block SNARE-mediated membrane fusion and neurotransmitter release.  相似文献   

17.
The Ca(2+)-triggered release of neurotransmitters is mediated by fusion of synaptic vesicles with the plasma membrane. The molecular machinery that translates the Ca(2+) signal into exocytosis is only beginning to emerge. The soluble N-ethylmaleimide-sensitive factor attachment protein receptor (SNARE) proteins syntaxin, SNAP-25, and synaptobrevin are central components of the fusion apparatus. Assembly of a membrane-bridging ternary SNARE complex is thought to initiate membrane merger, but the roles of other factors are less understood. Complexins are two highly conserved proteins that modulate the Ca(2+) responsiveness of neurotransmitter release. In vitro, they bind in a 1:1 stoichiometry to the assembled synaptic SNARE complex, making complexins attractive candidates for controlling the exocytotic fusion apparatus. We have now performed a detailed structural, kinetic, and thermodynamic analysis of complexin binding to the SNARE complex. We found that no major conformational changes occur upon binding and that the complexin helix is aligned antiparallel to the four-helix bundle of the SNARE complex. Complexins bound rapidly (approximately 5 x 10(7) m(-1) s(-1)) and with high affinity (approximately 10 nm), making it one of the fastest protein-protein interactions characterized so far in membrane trafficking. Interestingly, neither affinity nor binding kinetics was substantially altered by Ca(2+) ions. No interaction of complexins was detectable either with individual SNARE proteins or with the binary syntaxin x SNAP-25 complex. Furthermore, complexin did not promote the formation of SNARE complex oligomers. Together, our data suggest that complexins modulate neuroexocytosis after assembly of membrane-bridging SNARE complexes.  相似文献   

18.
Double membrane structure, autophagosome, is formed de novo in the process of autophagy in the yeast Saccharomyces cerevisiae, and many Apg proteins participate in this process. To further understand autophagy, we analyzed the involvement of factors engaged in the secretory pathway. First, we showed that Sec18p (N-ethylmaleimide-sensitive fusion protein, NSF) and Vti1p (soluble N-ethylmaleimide-sensitive fusion protein attachment protein, SNARE), and soluble N-ethylmaleimide-sensitive fusion protein receptor are required for fusion of the autophagosome to the vacuole but are not involved in autophagosome formation. Second, Sec12p was shown to be essential for autophagy but not for the cytoplasm to vacuole-targeting (Cvt) (pathway, which shares mostly the same machinery with autophagy. Subcellular fractionation and electron microscopic analyses showed that Cvt vesicles, but not autophagosomes, can be formed in sec12 cells. Three other coatmer protein (COPII) mutants, sec16, sec23, and sec24, were also defective in autophagy. The blockage of autophagy in these mutants was not dependent on transport from endoplasmic reticulum-to-Golgi, because mutations in two other COPII genes, SEC13 and SEC31, did not affect autophagy. These results demonstrate the requirement for subgroup of COPII proteins in autophagy. This evidence demonstrating the involvement of Sec proteins in the mechanism of autophagosome formation is crucial for understanding membrane flow during the process.  相似文献   

19.
Kohei Arasaki 《Autophagy》2017,13(11):2008-2009
Pathogens subvert host defense systems including autophagy and apoptosis for their survival and proliferation. Legionella pneumophila is a Gram-negative bacterium that grows in alveolar macrophages and causes severe pneumonia. Early during infection Legionella secretes effector proteins that convert the plasma membrane-derived vacuole containing Legionella into an endoplasmic reticulum (ER)-like replicative vacuole. These vacuoles ultimately fuse with the ER, where the pathogen replicates. Recently, we showed that one of the effectors, Lpg1137, is a serine protease that targets the mitochondria-associated ER membrane (MAM) and degrades STX17 (syntaxin 17), a SNARE implicated in macroautophagy/autophagy as well as mitochondria dynamics and membrane trafficking in fed cells. Degradation of STX17 blocks autophagy and BAX-induced apoptosis.  相似文献   

20.
Christopher A. Lamb 《Autophagy》2016,12(7):1212-1213
Amino acid withdrawal induces the formation of autophagosomes, which results in dozens of these large double-membrane vesicles appearing in the starved cell within 10–15 min, and the initiation of autophagy. This vesicle-mediated response clearly requires an adequate supply of membrane and a tight molecular regulation creating a substantial challenge for the cell in terms of vesicle trafficking pathways. Several membrane sources, which contribute to autophagosome initiation and formation, have been identified including the ER, Golgi, plasma membrane, mitochondria and recycling endosomes. How contributions from these organelles are regulated is an intensive area of study. Members of several families of membrane traffic regulators, including small GTPases, such as RAB proteins, and their regulators, SNARE proteins and BAR domain-containing proteins, have recently been shown to support autophagosome formation.  相似文献   

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