Literature DB >> 22248643

Serial passage of a street rabies virus in mouse neuroblastoma cells resulted in attenuation: potential role of the additional N-glycosylation of a viral glycoprotein in the reduced pathogenicity of street rabies virus.

Kentaro Yamada1, Chun-Ho Park, Kazuko Noguchi, Daisuke Kojima, Tatsuya Kubo, Naoyuki Komiya, Takashi Matsumoto, Marcelo Takahiro Mitui, Kamruddin Ahmed, Kinjiro Morimoto, Satoshi Inoue, Akira Nishizono.   

Abstract

Street rabies viruses are field isolates known to be highly neurotropic. However, the viral elements related to their pathogenicity have yet to be identified at the nucleotide or amino acid level. Here, through 30 passages in mouse neuroblastoma NA cells, we have established an attenuated variant of street rabies virus strain 1088, originating from a rabid woodchuck followed by 2 passages in the brains of suckling mice. The variant, 1088-N30, was well adapted to NA cells and highly attenuated in adult mice after intramuscular (i.m.) but not intracerebral (i.c.) inoculations. 1088-N30 had seven nucleotide substitutions, and the R196S mutation of the G protein led to an additional N-glycosylation. Street viruses usually possess one or two N-glycosylation sites on the G protein, 1088 has two, while an additional N-glycosylation site is observed in laboratory-adapted strains. We also established a cloned variant 1088-N4#14 by limiting dilution. Apart from the R196S mutation, 1088-N4#14 possessed only one amino acid substitution in the P protein, which is found in several field isolates. 1088-N4#14 also efficiently replicated in NA cells and was attenuated in adult mice after i.m. inoculations, although it was more pathogenic than 1088-N30. The spread of 1088-N30 in the brain was highly restricted after i.m. inoculations, although the pattern of 1088-N4#14's spread was intermediate between that of the parental 1088 and 1088-N30. Meanwhile, both variants strongly induced humoral immune responses in mice compared to 1088. Our results indicate that the additional N-glycosylation is likely related to the reduced pathogenicity. Taken together, we propose that the number of N-glycosylation sites in the G protein is one of the determinants of the pathogenicity of street rabies viruses.
Copyright © 2012 Elsevier B.V. All rights reserved.

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Year:  2012        PMID: 22248643     DOI: 10.1016/j.virusres.2012.01.002

Source DB:  PubMed          Journal:  Virus Res        ISSN: 0168-1702            Impact factor:   3.303


  16 in total

1.  Involvement of the rabies virus phosphoprotein gene in neuroinvasiveness.

Authors:  Satoko Yamaoka; Naoto Ito; Seii Ohka; Shohei Kaneda; Hiroko Nakamura; Takahiro Agari; Tatsunori Masatani; Keisuke Nakagawa; Kazuma Okada; Kota Okadera; Hiromichi Mitake; Teruo Fujii; Makoto Sugiyama
Journal:  J Virol       Date:  2013-09-11       Impact factor: 5.103

2.  The Amino Acid at Position 95 in the Matrix Protein of Rabies Virus Is Involved in Antiviral Stress Granule Formation in Infected Cells.

Authors:  Isshu Kojima; Koji Onomoto; Wenjie Zuo; Makoto Ozawa; Kosuke Okuya; Kiyotada Naitou; Fumiki Izumi; Misuzu Okajima; Takuro Fujiwara; Naoto Ito; Mitsutoshi Yoneyama; Kentaro Yamada; Akira Nishizono; Makoto Sugiyama; Takashi Fujita; Tatsunori Masatani
Journal:  J Virol       Date:  2022-09-07       Impact factor: 6.549

3.  Differential Host Immune Responses after Infection with Wild-Type or Lab-Attenuated Rabies Viruses in Dogs.

Authors:  Clement W Gnanadurai; Yang Yang; Ying Huang; Zhenguang Li; Christina M Leyson; Tanya L Cooper; Simon R Platt; Stephen B Harvey; Douglas C Hooper; Milosz Faber; Zhen F Fu
Journal:  PLoS Negl Trop Dis       Date:  2015-08-20

4.  λ-Carrageenan P32 Is a Potent Inhibitor of Rabies Virus Infection.

Authors:  Zhaochen Luo; Dayong Tian; Ming Zhou; Wenjie Xiao; Yachun Zhang; Mingming Li; Baokun Sui; Wei Wang; Huashi Guan; Huanchun Chen; Zhen F Fu; Ling Zhao
Journal:  PLoS One       Date:  2015-10-14       Impact factor: 3.240

5.  Passive carriage of rabies virus by dendritic cells.

Authors:  Kazuyo Senba; Takashi Matsumoto; Kentaro Yamada; Seiji Shiota; Hidekatsu Iha; Yukari Date; Motoaki Ohtsubo; Akira Nishizono
Journal:  Springerplus       Date:  2013-08-29

6.  Efficacy of Favipiravir (T-705) in Rabies Postexposure Prophylaxis.

Authors:  Kentaro Yamada; Kazuko Noguchi; Takashi Komeno; Yousuke Furuta; Akira Nishizono
Journal:  J Infect Dis       Date:  2015-12-09       Impact factor: 5.226

Review 7.  Rabies Control and Treatment: From Prophylaxis to Strategies with Curative Potential.

Authors:  Shimao Zhu; Caiping Guo
Journal:  Viruses       Date:  2016-10-28       Impact factor: 5.048

8.  Arctic-like rabies virus, Bangladesh.

Authors:  Khondoker Mahbuba Jamil; Kamruddin Ahmed; Moazzem Hossain; Takashi Matsumoto; Mohammad Azmat Ali; Sohrab Hossain; Shakhawat Hossain; Aminul Islam; Mohammad Nasiruddin; Akira Nishizono
Journal:  Emerg Infect Dis       Date:  2012-12       Impact factor: 6.883

9.  Validation of serum apolipoprotein A1 in rabies virus-infected mice as a biomarker for the preclinical diagnosis of rabies.

Authors:  Kentaro Yamada; Koji Kuribayashi; Naotaka Inomata; Kazuko Noguchi; Kazunori Kimitsuki; Catalino S Demetria; Nobuo Saito; Satoshi Inoue; Chun-Ho Park; Ryo Kaimori; Motoi Suzuki; Mariko Saito-Obata; Yasuhiko Kamiya; Daria L Manalo; Beatriz P Quiambao; Akira Nishizono
Journal:  Microbiol Immunol       Date:  2021-08-03       Impact factor: 2.962

10.  The adaptation of a CTN-1 rabies virus strain to high-titered growth in chick embryo cells for vaccine development.

Authors:  Caiping Guo; Chunhua Wang; Shan Luo; Shimao Zhu; Hui Li; Yongdi Liu; Lanzhen Zhou; Pei Zhang; Xin Zhang; Yujiang Ding; Weirong Huang; Kaiyong Wu; Yanpeng Zhang; Weihua Rong; Hua Tian
Journal:  Virol J       Date:  2014-05-12       Impact factor: 4.099

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