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dc.contributor.authorGhosh, Wriddhiman
dc.contributor.authorMallick, Somnath
dc.contributor.authorDasgupta, Sujoy Kumar
dc.date.accessioned2012-11-26T05:30:21Z
dc.date.available2012-11-26T05:30:21Z
dc.date.issued2009-07
dc.identifierFOR ACCESS / DOWNLOAD PROBLEM -- PLEASE CONTACT LIBRARIAN, BOSE INSTITUTE, akc@bic.boseinst.ernet.inen_US
dc.identifier.citationGhosh W, Mallick S and Das Gupta S K (2009) Origin of the Sox multienzyme complex system in ancient thermophilic bacteria and coevolution of its constituent proteins, Res Microbiol, 160, 409- 20.en_US
dc.identifier.issn0923-2508
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dc.identifier.urihttp://www.scopus.com/record/display.url?eid=2-s2.0-69249208397&origin=resultslist&sort=plf-f&src=s&st1=Origin+of+the+Sox+multienzyme+complex+system+in+ancient+thermophilic+bacteria+and+coevolution+of+its+constituent+proteins&sid=rSZ9Iz5Zdt_U-C7caHHZGOe%3a110&sot=b&sdt=b&sl=136&s=TITLE-ABS-KEY%28Origin+of+the+Sox+multienzyme+complex+system+in+ancient+thermophilic+bacteria+and+coevolution+of+its+constituent+proteins%29&relpos=0&relpos=0&searchTerm=TITLE-ABS-KEY%28Origin%20of%20the%20Sox%20multienzyme%20complex%20system%20in%20ancient%20thermophilic%20bacteria%20and%20coevolution%20of%20its%20constituent%20proteins%29en_US
dc.descriptionDOI: 10.1016/j.resmic.2009.07.003en_US
dc.description.abstractThe multienzyme complex SoxXABYZ(CD)(2), characteristic of facultatively chemolithotrophic Alphaproteobacteria, oxidizes both sulfone and sulfane sulfur species directly to sulfate, while a truncated SoxXABYZ oxidizes only sulfone sulfur in species of Chromatiaceae and Chlorobi. Here we phylogenctically analyzed SoxXA, SoxYZ and SoxCD sequences, correlated the results with earlier SoxB-based data, and postulated that the system originated in putatively common ancestors of Aquificae and Epsilonproteobacteria, and evolved through extensive horizontal gene transfer, accompanied by gain and/or loss of constituents by different lineages. However, in several Sox systems, particularly those from Alphaproteobacteria (and also Chromatiaceae and Chlorobi), there has been no extra gain or loss of constituents and all their proteins have similar evolutionary paths. This implies that the components of these systems have coevolved parallel to each other without any shuffling with other divergent systems. This, however, holds good only for those Sox systems, which render sulfur oxidation functions equivalent to the typical alphaproteobacterial process. We postulate that coevolution of all the proteins is essential for the typical modular function of Sox. Conversely, mosaic Sox systems (where constituents have disparate phylogenetic paths) are either nonfunctional or with activities deviated from typical systems. Monomeric Sox subunits of the mosaic systems, however, possess almost all the motifs and conserved domains critical for their designated activity and heterodimer formation. So what could be the basis of the functional discrepancies of the mosaic Sox systems? It appears that their discretely evolved heterodimers cannot interact among themselves in the same way as ideally envisaged in the modular Sox system, which in turn, may in some cases lead to novel adventitious reactions.en_US
dc.description.sponsorshipBurdwan University Bose Institute Council for Scientific and Industrial Research (Govt. of India)en_US
dc.language.isoenen_US
dc.publisherELSEVIER SCIENCE BVen_US
dc.subjectSox multienzyme complexen_US
dc.subjectCoevolution of proteinsen_US
dc.subjectOrigin of sox systemen_US
dc.subjectWOS:000270162300007en_US
dc.titleOrigin of the Sox multienzyme complex system in ancient thermophilic bacteria and coevolution of its constituent proteinsen_US
dc.title.alternativeResearch in Microbiologyen_US
dc.typeArticleen_US


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