Trypsin activation pathway of rotavirus infectivity

被引:122
作者
Arias, CF
Romero, P
Alvarez, V
Lopez, S
机构
关键词
D O I
10.1128/JVI.70.9.5832-5839.1996
中图分类号
Q93 [微生物学];
学科分类号
071005 [微生物学]; 100705 [微生物与生化药学];
摘要
The infectivity of rotaviruses is increased by and most probably is dependent on trypsin treatment of the virus, This proteolytic treatment specifically cleaves VP4, the protein that forms the spikes on the surface of the virions, to polypeptides VPS and VP8, This cleavage has been reported to occur in rotavirus SA114fM at two conserved, closely spaced arginine residues located at VP4 amino acids 241 and 247, In this work, we have characterized the VP4 cleavage products of rotavirus SA114S generated by in vitro treatment of the virus with increasing concentrations of trypsin and with proteases AspN and alpha-chymotrypsin. The VP8 and VP5 polypeptides were analyzed by gel electrophoresis and by Western blotting (immunoblotting) with antibodies raised to synthetic peptides that mimic the terminal regions of VP4 generated by the trypsin cleavage, It was shown that in addition to arginine residues 241 and 247, VP4 is cleaved at arginine residue 231. These three sites were found to have different susceptibilities to trypsin, Arg-241 > Arg-231 > Arg-247, with the enhancement of infectivity correlating with cleavage at Arg-247 rather than at Arg-231 or Arg-241. Proteases AspN and alpha-chymotrypsin cleaved VP4 at Asp-242 and Tyr-246, respectively, with no significant enhancement of infectivity, although this enhancement could be achieved by further treatment of the virus with trypsin. The VP4 end products of trypsin treatment were a homogeneous VP8 polypeptide comprising VP4 amino acids 1 to 231 and a heterogeneous VP5, which is formed by two polypeptide species (present at a ratio of approximately 1:5) as a result of cleavage at either Arg-241 or Arg-247. A pathway for the trypsin activation of rotavirus infectivity is proposed.
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页码:5832 / 5839
页数:8
相关论文
共 37 条
[1]
EFFECT OF TRYPSIN ON GROWTH OF ROTAVIRUS [J].
ALMEIDA, JD ;
HALL, T ;
BANATVALA, JE ;
TOTTERDELL, BM ;
CHRYSTIE, IL .
JOURNAL OF GENERAL VIROLOGY, 1978, 40 (JUL) :213-218
[2]
ROTAVIRUS SPIKE STRUCTURE AND POLYPEPTIDE COMPOSITION [J].
ANTHONY, ID ;
BULLIVANT, S ;
DAYAL, S ;
BELLAMY, AR ;
BERRIMAN, JA .
JOURNAL OF VIROLOGY, 1991, 65 (08) :4334-4340
[3]
SYNTHESIS IN ESCHERICHIA-COLI AND IMMUNOLOGICAL CHARACTERIZATION OF A POLYPEPTIDE CONTAINING THE CLEAVAGE SITES ASSOCIATED WITH TRYPSIN ENHANCEMENT OF ROTAVIRUS SA11 INFECTIVITY [J].
ARIAS, CF ;
LIZANO, M ;
LOPEZ, S .
JOURNAL OF GENERAL VIROLOGY, 1987, 68 :633-642
[4]
PRIMING FOR ROTAVIRUS NEUTRALIZING ANTIBODIES BY A VP4 PROTEIN-DERIVED SYNTHETIC PEPTIDE [J].
ARIAS, CF ;
GARCIA, G ;
LOPEZ, S .
JOURNAL OF VIROLOGY, 1989, 63 (12) :5393-5398
[5]
BABIUK LA, 1977, J CLIN MICROBIOL, V6, P610
[6]
A SPRING-LOADED MECHANISM FOR THE CONFORMATIONAL CHANGE OF INFLUENZA HEMAGGLUTININ [J].
CARR, CM ;
KIM, PS .
CELL, 1993, 73 (04) :823-832
[7]
TRYPSIN ENHANCEMENT OF ROTAVIRUS INFECTIVITY - MECHANISM OF ENHANCEMENT [J].
CLARK, SM ;
ROTH, JR ;
CLARK, ML ;
BARNETT, BB ;
SPENDLOVE, RS .
JOURNAL OF VIROLOGY, 1981, 39 (03) :816-822
[8]
CLARK SM, 1979, J CLIN MICROBIOL, V9, P413
[9]
ELLENS H, 1993, VIRAL FUSION MECHANI, P291
[10]
DIFFERENT POLYPEPTIDE COMPOSITION OF 2 HUMAN ROTAVIRUS TYPES [J].
ESPEJO, R ;
MARTINEZ, E ;
LOPEZ, S ;
MUNOZ, O .
INFECTION AND IMMUNITY, 1980, 28 (01) :230-237