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DESCRIPTION (provided by applicant): Galactofuranose (Galf) residues have been implicated in the virulence or viability of many microbes, including mycobacteria. The goal of the proposed research is to understand the mechanisms underlying Galf residue incorporation into the mycobacterial cell wall. We shall investigate the structure, catalytic mechanism, and function of two key enzymes in this process: the flavoenzyme uridine-5'-diphosphate (UDP)-galactopyranose mutase (Glf or UGM) and the galactosylfuranosyltransferase GlfT2. The three Specific Aims of this application follow. Aim 1 is to understand the mechanism of the flavoenzyme UGM. Elucidating the catalytic mechanism UGM will enhance our understanding of the diverse chemistry of the flavoenzymes, provide insight into the chemistry underlying cell wall biosynthesis, and guide the generation of inhibitors of this essential enzyme. Aim 2 is to generate potent and cell-permeable inhibitors of UGM that can be used as probes of cell wall biosynthesis and as leads for the development of new antimycobacterial agents. Aim 3 is to investigate the enzyme GlfT2, which catalyzes the synthesis of a galactan polymer composed of alternating 1,5- and 1,6-linked Galf residues. We shall test whether the polymerization is processive, explore how a single enzyme generates two regioisomeric sugar linkages, and determine how polymer length is controlled. These investigations will illuminate the mechanisms underlying galactan biosynthesis in mycobacteria and the biosynthesis of polysaccharides, in general. In pursuing these Aims, we shall employ methods and ideas from organic chemistry, glycobiology, carbohydrate chemistry, chemical enzymology, structural biology, microbiology, and chemical biology. Significance: The results of the proposed research will provide new insights into the assembly of the galactan polymer, an essential component of the mycobacterial cell wall. They also will address the fundamental question of how biological systems control polymer length in the absence of a template. This knowledge will be applied to develop small molecules that block mycobacterial cell growth. Such agents will serve as valuable probes of mycobacterial cell wall biosynthesis and as leads for the development of new antimycobacterial drugs.
期刊论文(9)
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DOI: 10.1021/ol802094p
发表时间: 2009-01-01
期刊: Organic letters
影响因子: 5.2
作者: [Dykhuizen EC, Kiessling LL]
通讯作者: Kiessling LL
X-ray crystallography reveals a reduced substrate complex of UDP-galactopyranose mutase poised for covalent catalysis by flavin.
X射线晶体学揭示了黄素有益于共价催化的UDP-半乳吡喃糖突变酶的底物复合物减少。
DOI: 10.1021/bi901437v
发表时间: 2009-10-06
期刊: BIOCHEMISTRY
影响因子: 2.9
作者: [Gruber, Todd D., Westler, William M., Kiessling, Laura L., Forest, Katrina T.]
通讯作者: Forest, Katrina T.
Publisher Correction: A proteome-wide atlas of lysine-reactive chemistry.
出版商更正:赖氨酸反应化学的蛋白质组范围图谱。
DOI: 10.1038/s41557-021-00823-x
发表时间: 2021
期刊: Nature chemistry
影响因子: 21.8
作者: [Abbasov,MikailE, Kavanagh,MadelineE, Ichu,Taka-Aki, Lazear,MichaelR, Tao,Yongfeng, Crowley,VincentM, AmEnde,ChristopherW, Hacker,StephanM, Ho,Jordan, Dix,MelissaM, Suciu,Radu, Hayward,MatthewM, Kiessling,LauraL, Cravatt,BenjaminF]
通讯作者: Cravatt,BenjaminF
Isoprenoid phosphonophosphates as glycosyltransferase acceptor substrates.
异磷酸磷酸磷酸盐作为糖基转移酶受体底物。
DOI: 10.1021/ja500622v
发表时间: 2014-06-18
期刊: Journal of the American Chemical Society
影响因子: 15
作者: [Martinez Farias MA, Kincaid VA, Annamalai VR, Kiessling LL]
通讯作者: Kiessling LL
6
    Chemoenzymatic synthesis of bacterial polysaccharides
    • 批准号:
      9981827
    • 项目类别:
    • 资助金额:
      $72.04万
    • 财政年份:
      2017
    • 负责人:
      Laura L Kiessling
    • 依托单位:
    The Chemistry and Biology of Galactofuranose-Containing Glycans
    Chemoenzymatic synthesis of bacterial polysaccharides
    • 批准号:
      9764158
    • 项目类别:
    • 资助金额:
      $73.23万
    • 财政年份:
      2017
    • 负责人:
      Laura L Kiessling
    • 依托单位:
    Chemical Probes of Mycobacteria
    海外基金