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目的:BAG结构域(BAG domain,BD)为BAG家族蛋白的基本功能结构域,通过对BAG家族蛋白6个成员的9个BDs的相互作用蛋白进行分析,以探明不同BD相互作用蛋白的异同点并为研究BAG家族蛋白多样性生物功能的分子机制提供理论依据。方法:构建p-GEX-4T2-BDs重组子并转化E.coli BL21(DE3)经IPTG诱导表达GST-BDs融合蛋白并纯化。采用GST pulldown技术联合高效液相色谱串联质谱(LC-MS/MS)的策略对BDs相互作用蛋白进行定性定量分析。最后,用DAVID(The Database for Annotation,Visualization and Intergrated Discovery)和cytoscape对BDs相互作用蛋白进行GO(Gene Ontology)功能分析及KEGG(Kyoto Enyoolpedia of Genes and Genomes)通路分析。结果:在Hela细胞的胞浆蛋白中总共鉴定到370个潜在的BDs相互作用蛋白,主要为核糖体蛋白(ribosomal proteins)、翻译起始因子(Eukaryotic translation initiation factors)、翻译延长因子(Eukaryotic translation elongation factors)、泛素化-蛋白酶体相关蛋白(ubiquitin-proteasome associated proteins)及HSP40家族蛋白。GO功能富集分析结果显示,BDs相互作用蛋白涉及多种生物学功能,包括细胞内蛋白质质量控制(protein quality control)、糖代谢(glycolysis)、免疫调控(immune response)、应激反应(stress response)、细胞周期(cell cycle)等。KEGG通路分析结果表明BDs相互作用蛋白参与多条细胞内重要的信号通路,包括FGF信号通路(FGF signaling pathway)、EGF受体信号通路(EGF receptor signaling pathway)、PDGF信号通路(PDGF signaling pathway)、Ras通路(Ras pathway)等。结论:BAG家族蛋白不同成员的BD所介导的蛋白-蛋白相互作用既有共性又有特异性,BAG家族蛋白通过BDs介导多种蛋白相互作用并参与细胞内多条重要的信号通路来调控细胞内蛋白质稳态、糖代谢、免疫反应、应激反应、细胞周期等过程。  相似文献   
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It has been reported that it is difficult to express cationic antibacterial peptides in engineered bacteria because such peptides are highly toxic to the host bacteria cells and sensitive to intracellular proteases. Antibacterial peptide CM4 (ABP-CM4) is a small cationic peptide with broad-spectrum activities against bacteria, fungi and tumor cells, which may possibly be used as an antimicrobial agent. Here we tried to express ABP-CM4 in Escherichia coli cells using either the GST fusion system or the intein-mediated fusion expression system. In order to investigate the possible use of these two fusion partners in cationic small peptide expression and purification, a mutant ABP-CMt, which is a highly positively charged peptide with +9 charges at neutral pH, was designed. In the present study, we have shown that both ABP-CM4 and ABP-CMt peptides can be expressed and purified by the intein-mediated expression system but not by the GST fusion expression system. Thus the intein-mediated peptide expression and purification system potentially could be employed for the production of recombinant protease-sensitive and cytotoxic peptides.  相似文献   
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KMT2/Set1 is the catalytic subunit of the complex of proteins associated with Set1 (COMPASS) that is responsible for the methylation of lysine 4 of histone H3 (H3K4) in Saccharomyces cerevisiae. Whereas monomethylated H3K4 (H3K4me1) is found throughout the genome, di- (H3K4me2) and tri- (H3K4me3) methylated H3K4 are enriched at specific loci, which correlates with the promoter and 5′-ends of actively transcribed genes in the case of H3K4me3. The COMPASS subunits contain a number of domains that are conserved in homologous complexes in higher eukaryotes and are reported to interact with modified histones. However, the exact organization of these subunits and their role within the complex have not been elucidated. In this study we showed that: (1) subunits Swd1 and Swd3 form a stable heterodimer that dissociates upon binding to a modified H3K4me2 tail peptide, suggesting a regulatory role in COMPASS; (2) the affinity of the subunit Spp1 for modified histone H3 substrates is much higher than that of Swd1 and Swd3; (3) Spp1 has a preference for H3K4me2/3 methylation state; and (4) Spp1 contains a high-affinity DNA-binding domain in the previously uncharacterised C-terminal region. These data allow us to suggest a mechanism for the regulation of COMPASS activity at an actively transcribed gene.  相似文献   
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Mutations in the transpeptidase domain of penicillin-binding protein 2x (PBP2x) of Streptococcus pneumoniae that reduce the affinity to beta-lactams are important determinants of resistance to these antibiotics. We have now analyzed in vitro and in vivo properties of PBP2x variants from cefotaxime-resistant laboratory mutants and a clinical isolate. The patterns of two to four resistance-specific mutations present in each of the proteins, all of which are placed between 6.6 and 24 Å around the active site, fall into three categories according to their positions in the three-dimensional structure. The first PBP2x group is characterized by mutations at the end of helix α11 and carries the well-known T550A change and/or one mutation on the surface of the penicillin-binding domain in close contact with the C-terminal domain. All group I proteins display very low acylation efficiencies, ≤ 1700 M− 1 s− 1, for cefotaxime. The second class represented by PBP2x of the mutant C505 shows acylation efficiencies below 100 M− 1 s− 1 for both cefotaxime and benzylpenicillin and contains the mutation L403F at a critical site close to the active serine. PBP2x of the clinical isolate 669 reveals a third mutational pathway where at least the two mutations Q552E and S389L are important for resistance, and acylation efficiency is reduced for both beta-lactams to around 10,000 M− 1 s− 1. In each group, at least one mutation is located in close vicinity to the active site and mediates a resistance phenotype in vivo alone, whereas other mutations might exhibit secondary effects only in context with other alterations.  相似文献   
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Autophagy is a bulk protein degradation system for the entire organelles and cytoplasmic proteins. Previously, we have shown the liver dysfunction by autophagy deficiency. To examine the pathological effect of autophagy deficiency, we examined protein composition and their levels in autophagy-deficient liver by the proteomic analysis. While impaired autophagy led to an increase in total protein mass, the protein composition was largely unchanged, consistent with non-selective proteins/organelles degradation of autophagy. However, a series of oxidative stress-inducible proteins, including glutathione S-transferase families, protein disulfide isomerase and glucose-regulated proteins were specifically increased in autophagy-deficient liver, probably due to enhanced gene expression, which is induced by accumulation of Nrf2 in the nuclei of mutant hepatocytes. Our results suggest that autophagy deficiency causes oxidative stress, and such stress might be the main cause of liver injury in autophagy-deficient liver.  相似文献   
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