Literature DB >> 19669672

Sequence analysis of morbillivirus CD150 receptor-Signaling Lymphocyte Activation Molecule (SLAM) of different animal species.

J Sarkar1, V Balamurugan, A Sen, P Saravanan, B Sahay, K K Rajak, T J Rasool, V Bhanuprakash, R K Singh.   

Abstract

Signaling Lymphocyte Activation Molecule-SLAM (CD150) molecule has been reported as a putative receptor for most morbilliviruses for their respective host species. In this study, we determined the complete nucleotide sequence of the gene coding for the morbillivirus receptor-SLAM from the four species, namely, goat (Capra hircus), sheep (Ovis aries), Indian cattle (Bos indicus), and buffalo (Bubalus bubalis). The nucleotide (nt) open reading frame sequence of SLAM gene in all the four species studied was 1017 nucleotides in length encoding a polypeptide of 339 amino acids (aa), similar to Bos taurus, but different from canine, human, marmoset, and mouse SLAM, which were 1029, 1008, 1011, and 1032 nts, respectively, in length, and coding for 343, 336, 337, and 344 aa, respectively. Sequence analysis revealed 96.3-98.5% and 92.9-96.8% identities among the four species at the nt and aa level, respectively. Sequence diversity at aa level between various species revealed that the critical functional region of SLAM protein among different species is relatively conserved, thereby facilitating this molecule to act as a receptor for morbillivirus. Phylogenetic relationship based on the aa sequences of SLAM protein revealed that caprine, ovine, cattle, and buffalo fall under a defined cluster but caprine SLAM is more closely related to ovine, followed by bovine.

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Year:  2009        PMID: 19669672     DOI: 10.1007/s11262-009-0391-9

Source DB:  PubMed          Journal:  Virus Genes        ISSN: 0920-8569            Impact factor:   2.332


  37 in total

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Authors:  G Aversa; J Carballido; J Punnonen; C C Chang; T Hauser; B G Cocks; J E De Vries
Journal:  Immunol Cell Biol       Date:  1997-04       Impact factor: 5.126

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Authors:  Caroline I Sellin; Nathalie Davoust; Vanessa Guillaume; Dominique Baas; Marie-Françoise Belin; Robin Buckland; T Fabian Wild; Branka Horvat
Journal:  J Virol       Date:  2006-07       Impact factor: 5.103

Review 4.  The cellular receptor for measles virus--elusive no more.

Authors:  Y Yanagi
Journal:  Rev Med Virol       Date:  2001 May-Jun       Impact factor: 6.989

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Authors:  M S Shaila; D Shamaki; M A Forsyth; A Diallo; L Goatley; R P Kitching; T Barrett
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Authors:  G Aversa; C C Chang; J M Carballido; B G Cocks; J E de Vries
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Authors:  E P Gibbs; W P Taylor; M J Lawman; J Bryant
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10.  [Attenuation of a strain of rinderpest virus: potential homologous live vaccine].

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  6 in total

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