Structure-function analysis of the prosegment of the proprotein convertase PC5A

被引:41
|
作者
Nour, N
Basak, A
Chrétien, M
Seidah, NG
机构
[1] Ottawa Hlth Res Inst, Reg Prot Chem Ctr, Dis Aging Unit, Ottawa, ON K1Y 4E9, Canada
[2] Clin Res Inst Montreal, Biochem Neuroendocrinol Lab, Montreal, PQ H2W 1R7, Canada
关键词
D O I
10.1074/jbc.M208009200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
To investigate if some residues within the prosegment of PC5A are important for its optimal proteolytic function, various PC5A mutants were cellularly expressed, and their processing activities were compared using pro-vascular endothelial growth factor C (pro-VEGF-C) as a substrate. Although wild type PC5A almost completely processes pro-VEGF-C, a prosegment deletion as well as both P1 mutants of the primary (R116A) and secondary (R84A) autocatalytic cleavage sites are inactive. The in vitro inhibitory potency of various decapeptides mimicking the C-terminal sequence of PC5 prosegment (pPC5) revealed that the native (107)QQVVVKKRTKR(116) peptide is a nanomolar inhibitor, whereas its P6 mutant K111H is more selective toward PC5A than Furin. In vitro activity assays using the bacterially expressed pPC5 and its mutants revealed them to be very potent nanomolar inhibitors (IC50) and only similar to 6-fold more selective inhibitors of PC5A versus Furin. Expression of the preprosegment of PC5 (ppPC5) and its mutants in Chinese hamster ovary FD11 cells overexpressing pro-VEGF-C with either PC5A or Furin showed them to be as good inhibitors of PC5A as the serpin alpha1-antitrypsin Portland (alpha1-PDX), ppFurin, or ppPACE4 but less potent toward overexpressed Furin. In conclusion, cleavages of the prosegment of PC5A at both Arg(116) and Are are required for PC5A cellular activity, and ppPC5 is a very potent but modestly selective cellular inhibitor of PC5A.
引用
收藏
页码:2886 / 2895
页数:10
相关论文
共 50 条
  • [41] Apoptosis in steroidogenic cells: Structure-function analysis
    Amsterdam, A
    Dantes, A
    Selvaraj, N
    Aharoni, D
    STEROIDS, 1997, 62 (01) : 207 - 211
  • [42] PHYLOGENETIC AND STRUCTURE-FUNCTION ANALYSIS OF MAMMALIAN HEXOKINASES
    GRIFFIN, LD
    GELB, BD
    WHEELER, DA
    DAVISON, D
    MCCABE, ERB
    AMERICAN JOURNAL OF HUMAN GENETICS, 1991, 49 (04) : 460 - 460
  • [43] DETAILED QCD ANALYSIS OF THE PHOTON STRUCTURE-FUNCTION
    GLUCK, M
    GRASSIE, K
    REYA, E
    PHYSICAL REVIEW D, 1984, 30 (07): : 1447 - 1460
  • [44] Structure-function analysis of the RNA helicase maleless
    Izzo, Annalisa
    Regnard, Catherine
    Morales, Violette
    Kremmer, Elisabeth
    Becker, Peter B.
    NUCLEIC ACIDS RESEARCH, 2008, 36 (03) : 950 - 962
  • [45] Combined structure-function analysis in glaucoma screening
    Karvonen, Elina
    Stoor, Katri
    Luodonpaa, Marja
    Hagg, Pasi
    Leiviska, Ilmari
    Liinamaa, Johanna
    Tuulonen, Anja
    Saarela, Ville
    BRITISH JOURNAL OF OPHTHALMOLOGY, 2022, 106 (12) : 1689 - 1695
  • [46] STRUCTURE-FUNCTION ANALYSIS OF THE PAIRED PROTEIN IN DROSOPHILA
    JUN, S
    BERTUCCIOLI, C
    SHENG, GJ
    WILSON, D
    DESPLAN, C
    JOURNAL OF CELLULAR BIOCHEMISTRY, 1995, : 340 - 340
  • [47] A structure-function analysis of γ tubulin in Aspergillus nidulans
    Jung, MK
    Oakley, CE
    Prigozhina, NL
    Oakley, BR
    MOLECULAR BIOLOGY OF THE CELL, 1999, 10 : 18A - 18A
  • [48] STRUCTURE-FUNCTION ANALYSIS OF THE YEAST CENTROMERE/KINETOCHORE
    MIDDLETON, K
    JIANG, WD
    CARBON, J
    JOURNAL OF CELLULAR BIOCHEMISTRY, 1994, : 83 - 83
  • [49] In vivo structure-function analysis of Drosophila HAIRLESS
    Maier, D
    Marquart, J
    ThompsonFontaine, A
    Beck, I
    Wurmbach, E
    Preiss, A
    MECHANISMS OF DEVELOPMENT, 1997, 67 (01) : 97 - 106
  • [50] Structure-function analysis of muscarinic acetylcholine receptors
    Kostenis, E
    Zeng, FY
    Wess, J
    JOURNAL OF PHYSIOLOGY-PARIS, 1998, 92 (3-4) : 265 - 268