Literature DB >> 12941907

Integrin-using rotaviruses bind alpha2beta1 integrin alpha2 I domain via VP4 DGE sequence and recognize alphaXbeta2 and alphaVbeta3 by using VP7 during cell entry.

Kate L Graham1, Peter Halasz, Yan Tan, Marilyn J Hewish, Yoshikazu Takada, Erich R Mackow, Martyn K Robinson, Barbara S Coulson.   

Abstract

Integrins alpha2beta1, alphaXbeta2, and alphaVbeta3 have been implicated in rotavirus cell attachment and entry. The virus spike protein VP4 contains the alpha2beta1 ligand sequence DGE at amino acid positions 308 to 310, and the outer capsid protein VP7 contains the alphaXbeta2 ligand sequence GPR. To determine the viral proteins and sequences involved and to define the roles of alpha2beta1, alphaXbeta2, and alphaVbeta3, we analyzed the ability of rotaviruses and their reassortants to use these integrins for cell binding and infection and the effect of peptides DGEA and GPRP on these events. Many laboratory-adapted human, monkey, and bovine viruses used integrins, whereas all porcine viruses were integrin independent. The integrin-using rotavirus strains each interacted with all three integrins. Integrin usage related to VP4 serotype independently of sialic acid usage. Analysis of rotavirus reassortants and assays of virus binding and infectivity in integrin-transfected cells showed that VP4 bound alpha2beta1, and VP7 interacted with alphaXbeta2 and alphaVbeta3 at a postbinding stage. DGEA inhibited rotavirus binding to alpha2beta1 and infectivity, whereas GPRP binding to alphaXbeta2 inhibited infectivity but not binding. The truncated VP5* subunit of VP4, expressed as a glutathione S-transferase fusion protein, bound the expressed alpha2 I domain. Alanine mutagenesis of D308 and G309 in VP5* eliminated VP5* binding to the alpha2 I domain. In a novel process, integrin-using viruses bind the alpha2 I domain of alpha2beta1 via DGE in VP4 and interact with alphaXbeta2 (via GPR) and alphaVbeta3 by using VP7 to facilitate cell entry and infection.

Entities:  

Mesh:

Substances:

Year:  2003        PMID: 12941907      PMCID: PMC224597          DOI: 10.1128/jvi.77.18.9969-9978.2003

Source DB:  PubMed          Journal:  J Virol        ISSN: 0022-538X            Impact factor:   5.103


  54 in total

1.  A method for the separation of GST fusion proteins from co-purifying GroEL.

Authors:  A Thain; K Gaston; O Jenkins; A R Clarke
Journal:  Trends Genet       Date:  1996-06       Impact factor: 11.639

2.  Integrin alpha5beta1-mediated adenovirus infection is enhanced by the integrin-activating antibody TS2/16.

Authors:  E Davison; R M Diaz; I R Hart; G Santis; J F Marshall
Journal:  J Virol       Date:  1997-08       Impact factor: 5.103

3.  Rotavirus contains integrin ligand sequences and a disintegrin-like domain that are implicated in virus entry into cells.

Authors:  B S Coulson; S L Londrigan; D J Lee
Journal:  Proc Natl Acad Sci U S A       Date:  1997-05-13       Impact factor: 11.205

Review 4.  Anchorage dependence, integrins, and apoptosis.

Authors:  E Ruoslahti; J C Reed
Journal:  Cell       Date:  1994-05-20       Impact factor: 41.582

5.  The I domain is essential for echovirus 1 interaction with VLA-2.

Authors:  J M Bergelson; N F St John; S Kawaguchi; R Pasqualini; F Berdichevsky; M E Hemler; R W Finberg
Journal:  Cell Adhes Commun       Date:  1994-10

6.  A novel activating anti-beta1 integrin monoclonal antibody binds to the cysteine-rich repeats in the beta1 chain.

Authors:  R J Faull; J Wang; D I Leavesley; W Puzon; G R Russ; D Vestweber; Y Takada
Journal:  J Biol Chem       Date:  1996-10-11       Impact factor: 5.157

7.  Interactions between the two surface proteins of rotavirus may alter the receptor-binding specificity of the virus.

Authors:  E Méndez; C F Arias; S López
Journal:  J Virol       Date:  1996-02       Impact factor: 5.103

8.  Antibodies that activate beta 2 integrins can generate different ligand binding states.

Authors:  S Ortlepp; P E Stephens; N Hogg; C G Figdor; M K Robinson
Journal:  Eur J Immunol       Date:  1995-03       Impact factor: 5.532

9.  Antigenic mapping of the surface proteins of rhesus rotavirus.

Authors:  R D Shaw; P T Vo; P A Offit; B S Coulson; H B Greenberg
Journal:  Virology       Date:  1986-12       Impact factor: 3.616

10.  Rotavirus antigenicity is affected by the genetic context and glycosylation of VP7.

Authors:  I Lazdins; B S Coulson; C Kirkwood; M Dyall-Smith; P J Masendycz; S Sonza; I H Holmes
Journal:  Virology       Date:  1995-05-10       Impact factor: 3.616

View more
  60 in total

1.  Structural rearrangements in the membrane penetration protein of a non-enveloped virus.

Authors:  Philip R Dormitzer; Emma B Nason; B V V Prasad; Stephen C Harrison
Journal:  Nature       Date:  2004-08-26       Impact factor: 49.962

2.  VP7 mediates the interaction of rotaviruses with integrin alphavbeta3 through a novel integrin-binding site.

Authors:  Selene Zárate; Pedro Romero; Rafaela Espinosa; Carlos F Arias; Susana López
Journal:  J Virol       Date:  2004-10       Impact factor: 5.103

3.  Rhesus rotavirus trafficking during entry into MA104 cells is restricted to the early endosome compartment.

Authors:  Marie Wolf; Emily M Deal; Harry B Greenberg
Journal:  J Virol       Date:  2012-01-25       Impact factor: 5.103

Review 4.  Integrins as therapeutic targets: lessons and opportunities.

Authors:  Dermot Cox; Marian Brennan; Niamh Moran
Journal:  Nat Rev Drug Discov       Date:  2010-10       Impact factor: 84.694

5.  Adeno-associated virus type 2 contains an integrin alpha5beta1 binding domain essential for viral cell entry.

Authors:  Aravind Asokan; Julie B Hamra; Lakshmanan Govindasamy; Mavis Agbandje-McKenna; Richard J Samulski
Journal:  J Virol       Date:  2006-09       Impact factor: 5.103

6.  Heterogeneity of Raft-type membrane microdomains associated with VP4, the rotavirus spike protein, in Caco-2 and MA 104 cells.

Authors:  Olivier Delmas; Michelyne Breton; Catherine Sapin; André Le Bivic; Odile Colard; Germain Trugnan
Journal:  J Virol       Date:  2006-11-29       Impact factor: 5.103

7.  Rotavirus replication in intestinal cells differentially regulates integrin expression by a phosphatidylinositol 3-kinase-dependent pathway, resulting in increased cell adhesion and virus yield.

Authors:  Peter Halasz; Gavan Holloway; Stephen J Turner; Barbara S Coulson
Journal:  J Virol       Date:  2007-10-17       Impact factor: 5.103

8.  A Point Mutation in the Rhesus Rotavirus VP4 Protein Generated through a Rotavirus Reverse Genetics System Attenuates Biliary Atresia in the Murine Model.

Authors:  Sujit K Mohanty; Bryan Donnelly; Phylicia Dupree; Inna Lobeck; Sarah Mowery; Jaroslaw Meller; Monica McNeal; Greg Tiao
Journal:  J Virol       Date:  2017-07-12       Impact factor: 5.103

9.  Rhesus rotavirus VP6 regulates ERK-dependent calcium influx in cholangiocytes.

Authors:  Inna Lobeck; Bryan Donnelly; Phylicia Dupree; Maxime M Mahe; Monica McNeal; Sujit K Mohanty; Greg Tiao
Journal:  Virology       Date:  2016-09-23       Impact factor: 3.616

10.  Glycan Binding Specificity and Mechanism of Human and Porcine P[6]/P[19] Rotavirus VP8*s.

Authors:  Xiaoman Sun; Dandi Li; Jianxun Qi; Wengang Chai; Luyao Wang; Lihong Wang; Ruchao Peng; Han Wang; Qing Zhang; Lili Pang; Xiangyu Kong; Hong Wang; Miao Jin; George F Gao; Zhaojun Duan
Journal:  J Virol       Date:  2018-06-29       Impact factor: 5.103

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.