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DESCRIPTION (provided by applicant): Murine-based retroviruses continue to be developed as viral vectors, despite their association with oncogenic transformation and insertional mutagenesis. This is highlighted in the past month with the association of xenotropic murine leukemia virus-related virus (XMRV) with human diseases including chronic fatigue syndrome and prostate cancer. Although comparative retroviral/lentiviral analysis of integration sites has noted differences in the positioning within the host chromosome, the mechanism for tethering the murine-based viruses to the host chromosomes is not understood. Structural analysis of proteins can provide essential insights into function. This proposal develops and extends preliminary structural analysis of the N-terminal domain (NTD) of the Moloney Murine Leukemia Virus Integrase (M-MuLV IN) protein to define the function of this domain within the preintegrative complex. The structural analysis of this domain will be extended to XMRV, which maintains structural homology with MuLV IN. The first focus of the research is structural studies of the IN NTD. The MuLV NTD is distinct from that of HIV and avian retroviruses in that it encodes an additional 50 amino acids N-terminal to the HHCC zinc-binding domain. This adds complexity to the NMR structural analysis of the 105 aa dimer. Through development of a novel growth/labeling system in E. coli utilizing condensed cultures, a preliminary NMR structure of the MuLV IN NTD monomer has been obtained. Experiments modify this system utilizing amino acid auxotroph strains to determine the dimer structure by NMR. Structural comparison with the IN NTD X-ray structure will be made, for which diffraction quality crystals have been obtained. SAXS analysis of the full-length IN ( DNA) will be performed. The IN NTD structures will be critical in defining domain localizations within the synaptic complex. Based on the structural analysis, the predictive function of the MuLV IN NTD will be analyzed. Specifically, the role of the putative winged-helix domain to interact with chromatinized DNA or associated factors will be determined. Mutagenesis studies will identify the role of specific amino acids in the dimer interface as well as interacting with viral and host factors. The ability of known DNA viral tethering domains to functionally complement the mutant IN NTD domains will be examined. Insights into the tethering of IN to chromatin has broad applications into target-site selection, but also to the requirement for mitosis for MuLV-based vectors. The safety of retroviral-based vectors is dependent on the target-site selection during retroviral integration. Through this understanding, mechanism to alter or limit integration can then be rationally designed.
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DOI: 10.1093/nar/gkl693
发表时间: 2006
期刊: Nucleic acids research
影响因子: 14.9
作者: [Montaño SP, Coté ML, Roth MJ, Georgiadis MM]
通讯作者: Georgiadis MM
X-ray crystal structure of the N-terminal region of Moloney murine leukemia virus integrase and its implications for viral DNA recognition.
莫洛尼鼠白血病病毒整合酶 N 末端区域的 X 射线晶体结构及其对病毒 DNA 识别的影响。
DOI: 10.1002/prot.25245
发表时间: 2017
期刊: Proteins
影响因子: 2.9
作者: [Guan,Rongjin, Aiyer,Sriram, Cote,MarieL, Xiao,Rong, Jiang,Mei, Acton,ThomasB, Roth,MonicaJ, Montelione,GaetanoT]
通讯作者: Montelione,GaetanoT
Characterization of the long-terminal repeat single-strand tail-binding site of Moloney-MuLV integrase by crosslinking.
通过交联表征 Moloney-MuLV 整合酶的长末端重复单链尾结合位点。
DOI: --
发表时间: 2008
期刊: Biological research
影响因子: 6.7
作者: [Vera,Jorge, Valenzuela,Beatriz, Roth,MonicaJ, Leon,Oscar]
通讯作者: Leon,Oscar
Expression of an Mg2+-dependent HIV-1 RNase H construct for drug screening.
用于药物筛选的 Mg2 依赖性 HIV-1 RNase H 构建体的表达。
DOI: 10.1128/aac.00658-11
发表时间: 2011
期刊: Antimicrobial agents and chemotherapy
影响因子: 4.9
作者: [Farias,RichardV, Vargas,DeborahA, Castillo,AndresE, Valenzuela,Beatriz, Cote,MarieL, Roth,MonicaJ, Leon,Oscar]
通讯作者: Leon,Oscar
Targeting retroviral and virus-like particles for gene and protein delivery
Targeting retroviral and virus-like particles for gene and protein delivery
Interactions of retroviral and host proteins guided by advanced modeling
Targeting retroviral and virus-like particles for gene and protein delivery
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