Molecular characteristics of three thymosin-repeat proteins from Marsupenaeus japonicus and their responses to WSSV infection
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  • 作者:Jinyou Ma ; Lingwei Ruan ; Xun Xu ; Zhaoming Gao
  • 关键词:β ; thymosin ; thymosin ; repeat proteins ; white spot syndrome virus (WSSV) ; Marsupenaeus japonicus
  • 刊名:Acta Oceanologica Sinica
  • 出版年:2016
  • 出版时间:April 2016
  • 年:2016
  • 卷:35
  • 期:4
  • 页码:44-50
  • 全文大小:450 KB
  • 参考文献:Bollini S, Riley P R, Smart N. 2015. Thymosin β4: multiple functions in protection, repair and regeneration of the mammalian heart. Expert Opinion on Biological Therapy, 15(S1): 163–174CrossRef
    Boquet I, Boujemaa R, Carlier M F, et al. 2000. Ciboulot regulates actin assembly during Drosophila brain metamorphosis. Cell, 102(6): 797–808CrossRef
    Chen Dandan, He Nanhai, Xu Xun. 2008. Mj-DWD, a double WAP domain-containing protein with antiviral relevance in Marsupenaeus japonicus. Fish & Shellfish Immunology, 25(6): 775–781CrossRef
    Choi H M, Lee Y A, Yang H I, et al. 2011. Increased levels of thymosin β4 in synovial fluid of patients with rheumatoid arthritis: association of thymosin β4 with other factors that are involved in inflammation and bone erosion in joints. International Journal of Rheumatic Diseases, 14(4): 320–324CrossRef
    Crow T, Xue-Bian J J. 2000. Identification of a 24 kDa phosphoprotein associated with an intermediate stage of memory in Hermissenda. Journal of Neuroscience, 20(10): RC74
    Dettin M, Ghezzo F, Conconi M T, et al. 2011. In vitro and in vivo proangiogenic effects of thymosin-β4-derived peptides. Cellular Immunology, 271(2): 299–307CrossRef
    Gai Yunchao, Zhao Jianmin, Song Linsheng, et al. 2009. Two thymosinrepeated molecules with structural and functional diversity coexist in Chinese mitten crab Eriocheir sinensis. Development & Comparative Immunology, 33(7): 867–876CrossRef
    He Nanhai, Liu Haipeng, Xu Xun. 2004. Identification of genes involved in the response of haemocytes of Penaeus japonicus by suppression subtractive hybridization (SSH) following microbial challenge. Fish & Shellfish Immunology, 17(2): 121–128CrossRef
    Herrmann D, Hatta M, Hoffmeister-Ullerich S A H. 2005. Thypedin, the multi copy precursor for the hydra peptide pedin, is a β-thymosin repeat-like domain containing protein. Mechanisms of Development, 122(11): 1183–1193CrossRef
    Huff T, Müller C S G, Otto A M, et al. 2001. β-thymosins, small acidic peptides with multiple functions. The International Journal of Biochemistry & Cell Biology, 33(3): 205–220CrossRef
    Kasthuri S R, Premachandra H K A, Umasuthan N, et al. 2013. Structural characterization and expression analysis of a betathymosin homologue (Tβ) in disk abalone, Haliotis discus discus. Gene, 527(1): 376–383CrossRef
    Klein J J, Goldstein A L, White A. 1965. Enhancement of in vivo incorporation of labeled precursors into DNA and total protein of mouse lymph nodes after administration of thymic extracts. Proceedings of the National Academy of Sciences of the United States of America, 53(4): 812–817CrossRef
    Liu Haipeng, Söderhäll K, Jiravanichpaisal P. 2009. Antiviral immunity in crustaceans. Fish & Shellfish Immunology, 27(2): 79–88CrossRef
    Livak K J, Schmittgen T D. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2–C T method. Methods, 25(4): 402–408CrossRef
    Lv Shumin, Cheng Gang, Zhou Ying, et al. 2013. Thymosin beta4 induces angiogenesis through Notch signaling in endothelial cells. Molecular and Cellullar Biochemistry, 381(1–2): 283–290CrossRef
    Nam B H, Seo J K, Lee M J, et al. 2015. Functional analysis of Pacific oyster (Crassostrea gigas) β-thymosin: focus on antimicrobial activity. Fish & Shellfish Immunology, 45(1): 167–174CrossRef
    Romanova E V, Roth M J, Rubakhin S S, et al. 2006. Identification and characterization of homologues of vertebrate β-Thymosin in the marine mollusk Aplysia californica. Journal of Mass Spectrometry, 41(8): 1030–1040CrossRef
    Saelee N, Noonin C, Nupan B, et al. 2013. β-thymosins and hemocyte homeostasis in a crustacean. PLoS One, 8(4): e60974CrossRef
    Safer D, Chowrashi P K. 1997. β-Thymosins from marine invertebrates: primary structure and interaction with actin. Cell Motility and Cytoskeleton, 38(2): 163–171CrossRef
    Sánchez-Paz A. 2010. White spot syndrome virus: an overview on an emergent concern. Veterinary Research, 41(6): 43CrossRef
    Shi Xiuzhen, Shi Lijie, Zhao Yanran, et al. 2015. β-Thymosins participate in antiviral immunity of red swamp crayfish (Procambarus clarkii). Developmental & Comparative Immunology, 51(2): 213–225CrossRef
    Sosne G, Qiu Ping, Kurpakus-Wheater M, et al. 2010. Thymosin β4 and corneal wound healing: visions of the future. Annals of New York Academy of Sciences, 1194. 190–198CrossRef
    Sun Yumiao, Li Fuhua, Chi Yanhong, et al. 2013. Enhanced resistance of marine shrimp Exopalamon carincauda Holthuis to WSSV by injecting live VP28-recombinant bacteria. Acta Oceanologica Sinica, 32(2): 52–58CrossRef
    Tamura K, Dudley J, Nei M, et al. 2007. MEGA4: molecular evolutionary genetics analysis (MEGA) software version 4.0. Molecular Biology and Evolution, 24(8): 1596–1599CrossRef
    Vancompernolle K, Vandekerckhove J, Bubb M R, et al. 1991. The interfaces of actin and Acanthamoeba actobindin. Identification of a new actin-binding motif. Journal of Biological Chemistry, 266(23): 15427–15431
    Van Troys M, Ono K, Dewitte D, et al. 2004. Tetra thymosinbeta is required for actin dynamics in Caenorhabditis elegans and acts via functionally different actin-binding repeats. Molecular Biology of the Cell, 15(10): 4735–4748CrossRef
    Wang Wei, He Jun, Yang Feng, et al. 1999. Detection of prawn white spot baculovirus by polymerase chain reaction. Acta Oceanologica Sinica, 18(4): 591–598
    Wen Rong, Li Fuhua, Li Shihao, et al. 2014. Function of Shrimp STAT during WSSV infection. Fish & Shellfish Immunology, 38(2): 354–360CrossRef
    Wu Liuji, Wu Xinzhong. 2009. Molecular cloning and expression analysis of a β-Thymosin homologue from a gastropod abalone, Haliotis diversicolor supertexta. Fish & Shellfish Immunology, 27(2): 379–382CrossRef
    Xiao Zhanggang, Shen Jing, Feng Hong, et al. 2015. Characterization of two thymosins as immune-related genes in common carp (Cyprinus carpio L.). Developmental & Comparative Immunology, 50(1): 29–37CrossRef
    Yang Feng, He Jun, Lin Xionghui, et al. 2001. Complete genome sequence of the shrimp white spot bacilliform virus. Journal of Virology, 75(23): 11811–11820CrossRef
    Zhu Tingting, Park H C, Son K M, et al. 2014. Effects of thymosin β4 on wound healing of rat palatal mucosa. International Journal of Molecular Medicine, 34(3): 816–821
  • 作者单位:Jinyou Ma (1) (2) (3)
    Lingwei Ruan (2) (3)
    Xun Xu (2) (3)
    Zhaoming Gao (2) (3)

    1. College of Animal Sciences, Henan Institute of Science and Technology, Xinxiang, 453003, China
    2. State Key Laboratory Breeding Base of Marine Genetic Resources, Xiamen, 361005, China
    3. Key Laboratory of Marine Genetic Resources of State Oceanic Administration, Third Institute of Oceanography, State Oceanic Administration, Xiamen, 361005, China
  • 刊物主题:Oceanography; Climatology; Ecology; Engineering Fluid Dynamics; Marine & Freshwater Sciences; Environmental Chemistry;
  • 出版者:Springer Berlin Heidelberg
  • ISSN:1869-1099
文摘
β-thymosins, a family of highly conserved peptides, play a vital role in wound-healing, angiogenesis, antimicrobial process and antiviral immunity. Three novel β-thymosin-repeat proteins, named mjthm4, mjthm3 and mjthm2, were cloned from Marsupenaeus japonicus using expressed sequence tags (EST) from suppression subtractive hybridization. The mjthm4, mjthm3 and mjthm2 cDNAs possessed open reading frames that encoded 166, 128 and 90 amino acid residue polypeptides and contained four, three and two β-thymosin actin binding modules, respectively. Blast analysis demonstrated that mjthm4, mjthm3 and mjthm2 shared high homology with known invertebrate multi-repeat β-thymosins. These proteins are ubiquitously expressed in all of the examined tissues, and the transcriptional levels were highest in the intestine. Further investigation revealed that mjthm4, mjthm3 and mjthm2 were remarkably up-regulated 6 h after WSSV infection. Moreover, while mjthm4 transcriptional levels displayed no changes, mjthm3 and mjthm2 levels decreased in the virus-resistant shrimps. The results indicate that mjthm4, mjthm3 and mjthm2 are novel multi-repeat β-thymosin homologues, have a close relationship with WSSV infection, and might contribute to a better understanding of host defense and/or virus invasion interactions in shrimps.

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