Rotavirus Cell Entry

被引:37
作者
Baker, Matthew [1 ,2 ]
Prasad, B. V. Venkataram [1 ,3 ]
机构
[1] Baylor Coll Med, Verna & Marrs Mclean Dept Biochem & Mol Biol, Houston, TX 77030 USA
[2] Baylor Coll Med, Natl Ctr Macromol Imaging, Houston, TX 77030 USA
[3] Baylor Coll Med, Dept Mol Virol & Microbiol, Houston, TX 77030 USA
来源
CELL ENTRY BY NON-ENVELOPED VIRUSES | 2010年 / 343卷
关键词
SIALIC-ACID-BINDING; MEMBRANE-PENETRATION PROTEIN; ADULT DIARRHEA ROTAVIRUS; BLUETONGUE VIRUS CORE; TISSUE-CULTURE CELLS; RHESUS ROTAVIRUS; CRYOELECTRON MICROSCOPY; 3-DIMENSIONAL STRUCTURE; RECEPTOR-BINDING; ATOMIC-STRUCTURE;
D O I
10.1007/82_2010_34
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Infecting nearly every child by age five, rotaviruses are the major causative agents of severe gastroenteritis in young children. While much is known about the structure of these nonenveloped viruses and their components, the exact mechanism of viral cell entry is still poorly understood. A consensus opinion that appears to be emerging from recent studies is that rotavirus cell entry involves a series of complex and coordinated events following proteolytic priming of the virus. Rotaviruses attach to the cell through sialic acid containing receptors, with integrins and Hsc70 acting as postattachment receptors, all localized on lipid rafts. Unlike other endocytotic mechanisms, this internalization pathway appears to be independent of clathrin or caveola. Equally complex and coordinated is the fascinating structural gymnastics of the VP4 spikes that are implicated in facilitating optimal interface between viral and host components. While these studies only begin to capture the basic cellular, molecular, and structural mechanisms of cell entry, the unusual features they have uncovered and many intriguing questions they have raised undoubtedly will prompt further investigations.
引用
收藏
页码:121 / 148
页数:28
相关论文
共 134 条
[31]  
ESTES MK, 2006, FIELDS VIROLOGY, V2, P1917
[32]   ROTAVIRUS-INDUCED FUSION FROM WITHOUT IN TISSUE-CULTURE CELLS [J].
FALCONER, MM ;
GILBERT, JM ;
ROPER, AM ;
GREENBERG, HB ;
GAVORA, JS .
JOURNAL OF VIROLOGY, 1995, 69 (09) :5582-5591
[33]   Inhibition of rotavirus replication by a non-neutralizing rotaviras VP6-specific IgA mAb [J].
Feng, NG ;
Lawton, JA ;
Gilbert, J ;
Kuklin, N ;
Vo, P ;
Prasad, BVV ;
Greenberg, HB .
JOURNAL OF CLINICAL INVESTIGATION, 2002, 109 (09) :1203-1213
[34]   THE VP8 FRAGMENT OF VP4 IS THE RHESUS ROTAVIRUS HEMAGGLUTININ [J].
FIORE, L ;
GREENBERG, HB ;
MACKOW, ER .
VIROLOGY, 1991, 181 (02) :553-563
[35]   COMPARISON OF HUMAN, SIMIAN, AND BOVINE ROTAVIRUSES FOR REQUIREMENT OF SIALIC-ACID IN HEMAGGLUTINATION AND CELL ADSORPTION [J].
FUKUDOME, K ;
YOSHIE, O ;
KONNO, T .
VIROLOGY, 1989, 172 (01) :196-205
[36]   ROLE OF VP3 IN HUMAN ROTAVIRUS INTERNALIZATION AFTER TARGET-CELL ATTACHMENT VIA VP7 [J].
FUKUHARA, N ;
YOSHIE, O ;
KITAOKA, S ;
KONNO, T .
JOURNAL OF VIROLOGY, 1988, 62 (07) :2209-2218
[37]   Two proline residues are essential in the calcium-binding activity of rotavirus VP7 outer capsid protein [J].
Gajardo, R ;
Vende, P ;
Poncet, D ;
Cohen, J .
JOURNAL OF VIROLOGY, 1997, 71 (03) :2211-2216
[38]   Cellular entry of hantaviruses which cause hemorrhagic fever with renal syndrome is mediated by β3 integrins [J].
Gavrilovskaya, IN ;
Brown, EJ ;
Ginsberg, MH ;
Mackow, ER .
JOURNAL OF VIROLOGY, 1999, 73 (05) :3951-3959
[39]   Serotype diversity and reassortment between human and animal rotavirus strains:: Implications for rotavirus vaccine programs [J].
Gentsch, JR ;
Laird, AR ;
Bielfelt, B ;
Griffin, DD ;
Bányai, K ;
Ramachandran, M ;
Jain, V ;
Cunliffe, NA ;
Nakagomi, O ;
Kirkwood, CD ;
Fischer, TK ;
Parashar, UD ;
Bresee, JS ;
Jiang, B ;
Glass, RI .
JOURNAL OF INFECTIOUS DISEASES, 2005, 192 :S146-S159
[40]   The highly ordered double-stranded RNA genome of bluetongue virus revealed by crystallography [J].
Gouet, P ;
Diprose, JM ;
Grimes, JM ;
Malby, R ;
Burroughs, JN ;
Zientara, S ;
Stuart, DI ;
Mertens, PPC .
CELL, 1999, 97 (04) :481-490