Structural basis of viral RBDs binding to cell receptors
Structural basis of viral RBDs binding to cell receptors
批准号:
10926438
负责人:
Philippe Youkharibache
金额:
$4.09万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至
关键词:
2019-nCoVACE2Amino Acid TransporterAmino AcidsAnimalsAntiviral AgentsArginineBindingBiological MarkersBovine Leukemia VirusBovine leukemiaCCL21 geneCell Differentiation processCell Surface ProteinsCell Surface ReceptorsCell surfaceCellsCellular Metabolic ProcessCollaborationsComplexComputer softwareCoronavirusDataDevelopmentEndogenous RetrovirusesEpitopesFamilyFeline Leukemia VirusFranceG-Protein-Coupled ReceptorsGlucoseGlucose TransporterGlutamineGlycoproteinsGoalsHomologous GeneHumanHuman GenomeHuman T-Cell Leukemia VirusesImmune responseInflammationLigandsMembrane ProteinsMethodologyMolecularMusNeutral Amino Acid Transport SystemsNormal CellNutrientOncogenicPapioParis, FrancePlayProcessProteinsReceptor CellResearchRetroviridaeRoleSLC2A1 geneSerineSpecificityStructureSupersecondary Protein StructureSystemTMPRSS2 geneVirus DiseasesVirus Receptorsanti-cancerbetacoronaviruscomputational pipelinesdata-driven modeldesignimprovedinnovationmembermodel buildingreceptorreceptor bindingsoftware developmentsyncytintooltumorigenesisvirus envelope
中文摘要
我最近的研究工作的很大一部分集中在研究分子系统的自缔合决定因素,正如它们在几个水平上的结构对称性所揭示的:从蛋白质组装到它们的蛋白质超二级结构组成(原始域)[Youkharibache 2019]。特别是,我们已经证明了许多重要的多主题螺旋膜蛋白结构家族在它们的构建过程中遵循了共同的伪对称进化过程[Youkharibache,Tran,and Abrol 2020]。这就是G蛋白偶联受体(GPCRs),具有MFS折叠的SLC,如SLC2A1/GLUT1,HTLV用作受体的葡萄糖转运体,或SLC7A1/CAT1,精氨酸转运体和小鼠和牛白血病逆转录病毒的受体。我们的结构分析是由我们与NCBI合作开发的创新软件实现的[Wang等人。2020],并且已经获得了大量的结构数据,我们现在正在利用这些数据来研究它们与细胞表面蛋白质配体的相互作用。脊椎动物逆转录病毒不同于人T细胞白血病病毒(HTLV)和牛白血病病毒(BLV),它们是猴/鼠/猫白血病病毒的大家族,以及构成存在于人类基因组中的许多非传染性人类内源性逆转录病毒(HERV)成员,它们利用病毒包膜糖蛋白中的受体结合域(RBD)与SLC家族的营养转运蛋白结合,作为进入细胞的第一步。SLCs条件细胞代谢及其表达在正常细胞分化和致癌过程中被系统地改变。我们的目标是与IGMM(法国蒙彼利埃CNRS)和初创企业Metafora-BiosSystems(法国巴黎)合作,研究与在致癌过程和免疫反应中发挥关键作用的SLCs结合的RBDS:特别是葡萄糖和氨基酸(包括谷氨酰胺、丝氨酸和精氨酸)的转运体。在能共同或不同地与谷氨酰胺和/或其他中性氨基酸转运蛋白(分别为SLC1A5/ASCT2和SLC1A4/ASCT1)结合的RBDS家族中,有BaEV和HERV-W RBDS。另一类能与葡萄糖或精氨酸转运蛋白显著结合的rbd家族--SLC2A1/GLUT1和SLC7A1/CAT1--分别包括HTLV和BLV rbd。我们的目标是研究病毒rbds和SLCs之间的结构相互作用,以及SLCs在病毒感染、肿瘤发生和免疫反应中的作用。阐明RBD-SLC相互作用也将有助于设计合成的SLC调节剂,无论是直接从RBDS衍生出来的,还是设计的从头开始的。最近的研究表明,SARS-CoV2 RBD与一个受体复合体结合,该复合体包括ACE2、TMPRSS2、SLC6A19、谷氨酰胺和其他中性氨基酸转运体,该转运体也属于SLC超家族。我们进行了初步的结构分析,并开发了结构分析工具,以使合作研究成为可能,特别是在细胞表面蛋白质-RBD相互作用方面[Youkharibache等人。2020年]。软件和管道正在改进,以支持该项目的目标。
英文摘要
A significant part of my recent research efforts is focused on studying self-association determinants of molecular systems as revealed by their structural symmetries at several levels: from proteins assemblies to their protein supersecondary structures constituents (protodomains) [Youkharibache 2019]. We have shown in particular that many important structural families of Polytopic Helical Membrane Proteins followed a common Pseudo-Symmetric evolutionary process in their construction [Youkharibache, Tran, and Abrol 2020]. This is the case for G protein-coupled receptors (GPCRs), SLCs with an MFS fold such as SLC2A1/GLUT1, a glucose transporter used as a receptor by HTLV, or SLC7A1/CAT1, an arginine transporter and a receptor for mouse and bovine leukemia retroviruses. Our structural analyses have been enabled by innovative software that we developed in collaboration with NCBI [Wang et al. 2020], and a significant body of structural data has been obtained, that we are now harnessing to study their interactions with protein ligands on cell surfaces. Vertebrate retroviruses as different as the Human T-cell leukemia virus (HTLV) and the bovine leukemia virus, the large family of simian/murine/feline leukemia viruses, and many members of the non-infectious human endogenous retroviruses (HERV) that are constitutively present in the human genome, use their receptor-binding domains (RBDs) in the virus envelope glycoprotein to bind nutrient transporters of the SLC family as an initial step in cell entry. SLCs condition cell metabolism and their expression is systematically altered during normal cell differentiation and oncogenic processes. In collaboration with the IGMM (CNRS Montpellier, France) and the start-up Metafora-biosystems (Paris, France), we aim to study RBDs that bind SLCs that play a key role in oncogenic processes and immune response: notably the transporters of glucose and amino acids including glutamine, serine, and arginine. Among the family of RBDs that can commonly or distinctively bind glutamine and/or other neutral amino acid transporters (SLC1A5/ASCT2 and SLC1A4/ASCT1, respectively) are the BaEV and HERV-W RBDs. Another family of RBDs that distinctively bind glucose or arginine transporters - SLC2A1/GLUT1 and SLC7A1/CAT1 - includes the HTLV and BLV RBDs, respectively. We aim to study structural interactions between viral RBDs and SLCs and the role of SLCs in viral infections, oncogenesis, and immunological responses. Elucidating RBD-SLC interactions will also help designing synthetic SLC modulators either directly derived from RBDs or designed de novo. Recently, it was shown that SARS-CoV2 RBD binds to a receptor complex that includes ACE2, TMPRSS2, but also SLC6A19, a glutamine and other neutral amino acids transporters that also belongs to the SLC superfamily. We have performed initial structural analyses and developed structural analysis tools to enable collaborative research, especially on cell surface proteins-RBD interactions [Youkharibache et al. 2020]. The software and pipelines are being improved to support the aims of the project.
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批准号:10262600
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资助金额:$14.3万
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资助金额:$16.36万
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批准号:10702794
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资助金额:$3.78万
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资助金额:$19.0万
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