Literature DB >> 17891922

Proteome and immunome of pathogenic Leptospira spp. revealed by 2DE and 2DE-immunoblotting with immune serum.

Yuwaporn Sakolvaree1, Santi Maneewatch, Surasak Jiemsup, Buppa Klaysing, Pongsri Tongtawe, Potjanee Srimanote, Patcharin Saengjaruk, Sirinuch Banyen, Pramuan Tapchaisri, Manas Chonsa-nguan, Wanpen Chaicumpa.   

Abstract

In this study, proteomes of two pathogenic Leptospira spp., namely L. interrogans, serogroup Icterohaemorrhagiae, serovar Copenhageni and L. borgpetersenii, serogroup Tarassovi, serovar Tarassovi, were revealed by using two dimensional gel electrophoresis (2DE)-based-proteomics. Bacterial cells were disrupted in a lysis buffer containing 30 mM Tris, 2 M thiourea, 7 M urea, 4% CHAPS, 2% IPG buffer pH 3-10 and protease inhibitors and then subjected to sonication in order to solubilize as much as possible the bacterial proteins. The 2DE-separated components of both Leptospira homogenates were blotted individually onto membranes and antigenic components (immunomes) were revealed by probing the blots with immune serum of a mouse readily immunized with the homogenate of L. interrogans, serogroup Icterohaemorrhagiae, serovar Copenhageni. The immunogenic proteins of the two pathogenic Leptospira spp. could be grouped into 10 groups. These are: 1) proteins involved in the bacterial transcription and translation including beta subunit transcription anti-termination protein of DNA polymerase III, elongation factors Tu and Ts, and tRNA (guanine-N1)-methyltransferase; 2) proteins functioning as enzymes for metabolisms and nutrient acquisition including acetyl-Co-A acetyltransferase, putative glutamine synthetase, glyceraldehyde-3-phospahte dehydrogenase, NifU-like protein, 3-oxoacyl-(acyl-carrier-protein) reductase, oxidoreductase, sphingomyelinase C precursor, spermidine synthase, beta subunit of succinyl-CoA synthetase, and succinate dehydrogenase iron-sulfur subunit; 3) proteins/enzymes necessary for energy and electron transfer, i.e. electron transfer flavoprotein, and proton-translocating transhydrogenase; 4) enzymes for degradation of misfolded proteins, i.e. ATP-dependent Clp protease; 5) molecular chaperone, i.e. 60 kDa chaperonin; 6) signal transduction system, i.e. response regulator; 7) protein involved in immune evasion in host, i.e. peroxiredoxin; 8) cell structure proteins including MreB (cytoskeletal) and flagellin/ periplasmic flagellin; 9) lipoproteins/outer membrane proteins: LipL32, LipL41, LipL45 and OmpL1; and 10) various hypothetical proteins. Many immunogenic proteins are common to both Leptospira spp. These proteins not only are the diagnostic targets but also have potential as candidates of a broad spectrum leptospirosis vaccine especially the surface exposed components which should be vulnerable to the host immune effector factors.

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Year:  2007        PMID: 17891922

Source DB:  PubMed          Journal:  Asian Pac J Allergy Immunol        ISSN: 0125-877X            Impact factor:   2.310


  12 in total

1.  Methylation and in vivo expression of the surface-exposed Leptospira interrogans outer-membrane protein OmpL32.

Authors:  Azad Eshghi; Marija Pinne; David A Haake; Richard L Zuerner; Ami Frank; Caroline E Cameron
Journal:  Microbiology       Date:  2011-12-15       Impact factor: 2.777

2.  Identification of novel vaccine candidates against Acinetobacter baumannii using reverse vaccinology.

Authors:  Ming-Hsien Chiang; Wang-Chou Sung; Shu-Pei Lien; Ying-Zih Chen; Annie Fei-yun Lo; Jui-Hsin Huang; Shu-Chen Kuo; Pele Chong
Journal:  Hum Vaccin Immunother       Date:  2015       Impact factor: 3.452

3.  Pathogenic Leptospira interrogans exoproteins are primarily involved in heterotrophic processes.

Authors:  Azad Eshghi; Elisa Pappalardo; Svenja Hester; Benjamin Thomas; Gabriela Pretre; Mathieu Picardeau
Journal:  Infect Immun       Date:  2015-05-18       Impact factor: 3.441

4.  Analysis of multiple Leptospira interrogans serovar Canicola vaccine proteomes and identification of LipL32 as a biomarker for potency.

Authors:  P C Humphryes; M E Weeks; A Gielbert; G Thomson; N G Coldham
Journal:  Clin Vaccine Immunol       Date:  2012-02-08

5.  Francisella tularensis infection-derived monoclonal antibodies provide detection, protection, and therapy.

Authors:  Anne G Savitt; Patricio Mena-Taboada; Gloria Monsalve; Jorge L Benach
Journal:  Clin Vaccine Immunol       Date:  2009-01-28

6.  Proteome analysis of Leptospira interrogans virulent strain.

Authors:  Monica L Vieira; Daniel C Pimenta; Zenaide M de Morais; Silvio A Vasconcellos; Ana L T O Nascimento
Journal:  Open Microbiol J       Date:  2009-05-07

7.  Extracellular proteome analysis of Leptospira interrogans serovar Lai.

Authors:  Lingbing Zeng; Yunyi Zhang; Yongzhang Zhu; Haidi Yin; Xuran Zhuang; Weinan Zhu; Xiaokui Guo; Jinhong Qin
Journal:  OMICS       Date:  2013-07-29

8.  Global proteome analysis of Leptospira interrogans.

Authors:  Azad Eshghi; Paul A Cullen; Laura Cowen; Richard L Zuerner; Caroline E Cameron
Journal:  J Proteome Res       Date:  2009-10       Impact factor: 4.466

9.  Characterisation of the Proteome of Leptospira interrogans Serovar Canicola as a Resource for the Identification of Common Serovar Immunogenic Proteins.

Authors:  P C Humphryes; M E Weeks; N G Coldham
Journal:  Int J Proteomics       Date:  2014-05-27

10.  Ophiophagus hannah venom: proteome, components bound by Naja kaouthia antivenin and neutralization by N. kaouthia neurotoxin-specific human ScFv.

Authors:  Witchuda Danpaiboon; Onrapak Reamtong; Nitat Sookrung; Watee Seesuay; Yuwaporn Sakolvaree; Jeeraphong Thanongsaksrikul; Fonthip Dong-din-on; Potjanee Srimanote; Kanyarat Thueng-in; Wanpen Chaicumpa
Journal:  Toxins (Basel)       Date:  2014-05-13       Impact factor: 4.546

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