Literature DB >> 11171552

The molecular chaperone system and other anti-stress mechanisms in archaea.

A J Macario1, E Conway De Macario.   

Abstract

This article presents a brief review of stressors, their cellular and intracellular targets, stress proteins, molecular chaperones, and other anti-stress mechanisms. New data are reported on cochaperones and multicellular structures in archaea. The molecular chaperoning systems of bacteria and eukaryotes have been studied for many years and are relatively well known in terms of their components and mechanisms of action, although many details remain to be elucidated and almost certainly other components will be discovered in the future. By comparison, the molecular chaperoning system of archaea is still unexplored. Since archaea have some molecular genetic and physiologic features similar to those of bacteria and some resembling those of eukaryotes, extrapolation from what is known of organisms from these two phylogenetic domains to archaeal species is unwarranted. For example, the components of the molecular chaperone machine, Hsp70(DnaK), Hsp40(DnaJ), and GrpE, in the archaeal species that have it, are closely related to bacterial counterparts, whereas the archaeal chaperonins are like the eukaryotic equivalents. Furthermore, many archaeal species lack the chaperone machine, in contrast to bacteria and eukaryotes that have it without any known exception. A search for the cochaperones trigger factor, Hop, Hip, BAG-1, and NAC in archaeal genomes demonstrated no conserved equivalents, but two families of archaeal molecules were identified that might be related to NAC and Hop, respectively. Multicellular structures with a single species such as packet and lamina are formed by Methanosarcina species, among which the best studied is M. mazeii. Multispecies multicellular structures are formed by a variety of archaeal organisms, which are either flat (biofilm) or globular (granule) and constitute a functional association or consortium. Details of morphology, formation, and internal organization are described for representative examples of multicellular structures. These may be seen as the result of primitive histogenesis reflecting primeval mechanisms of differentiation-development that might have evolved driven by environmental stressors. Cells in these complex threedimensional arrangements are not only positioned so they can interact with each other for more efficient functioning as in a tissue or organ, but are also protected from stressors. Single cells lacking the protective shield of other cells packed together with intercellular connective material, which is typical of multicellular structures, are directly exposed to environmental stressors and, thus, are at a disadvantage from the evolutionary standpoint. It seems reasonable to argue that differentiation-development leading to histogenesis might have arisen in primeval times as a consequence of the harsh conditions that primitive life forms had to endure, and that the ability to form tissue-like structures was a primary characteristic that ensured positive selection.

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Year:  2001        PMID: 11171552     DOI: 10.2741/macario

Source DB:  PubMed          Journal:  Front Biosci        ISSN: 1093-4715


  13 in total

1.  The genome of M. acetivorans reveals extensive metabolic and physiological diversity.

Authors:  James E Galagan; Chad Nusbaum; Alice Roy; Matthew G Endrizzi; Pendexter Macdonald; Will FitzHugh; Sarah Calvo; Reinhard Engels; Serge Smirnov; Deven Atnoor; Adam Brown; Nicole Allen; Jerome Naylor; Nicole Stange-Thomann; Kurt DeArellano; Robin Johnson; Lauren Linton; Paul McEwan; Kevin McKernan; Jessica Talamas; Andrea Tirrell; Wenjuan Ye; Andrew Zimmer; Robert D Barber; Isaac Cann; David E Graham; David A Grahame; Adam M Guss; Reiner Hedderich; Cheryl Ingram-Smith; H Craig Kuettner; Joseph A Krzycki; John A Leigh; Weixi Li; Jinfeng Liu; Biswarup Mukhopadhyay; John N Reeve; Kerry Smith; Timothy A Springer; Lowell A Umayam; Owen White; Robert H White; Everly Conway de Macario; James G Ferry; Ken F Jarrell; Hua Jing; Alberto J L Macario; Ian Paulsen; Matthew Pritchett; Kevin R Sowers; Ronald V Swanson; Steven H Zinder; Eric Lander; William W Metcalf; Bruce Birren
Journal:  Genome Res       Date:  2002-04       Impact factor: 9.043

Review 2.  Alpha-crystallin-type heat shock proteins: socializing minichaperones in the context of a multichaperone network.

Authors:  Franz Narberhaus
Journal:  Microbiol Mol Biol Rev       Date:  2002-03       Impact factor: 11.056

3.  Heat shock response by the hyperthermophilic archaeon Pyrococcus furiosus.

Authors:  Keith R Shockley; Donald E Ward; Swapnil R Chhabra; Shannon B Conners; Clemente I Montero; Robert M Kelly
Journal:  Appl Environ Microbiol       Date:  2003-04       Impact factor: 4.792

4.  Chlamydomonas reinhardtii genome project. A guide to the generation and use of the cDNA information.

Authors:  Jeff Shrager; Charles Hauser; Chiung-Wen Chang; Elizabeth H Harris; John Davies; Jeff McDermott; Raquel Tamse; Zhaodou Zhang; Arthur R Grossman
Journal:  Plant Physiol       Date:  2003-02       Impact factor: 8.340

Review 5.  Molecular chaperones and heat shock proteins in atherosclerosis.

Authors:  Qingbo Xu; Bernhard Metzler; Marjan Jahangiri; Kaushik Mandal
Journal:  Am J Physiol Heart Circ Physiol       Date:  2011-11-04       Impact factor: 4.733

6.  Archaeal-like chaperonins in bacteria.

Authors:  Stephen M Techtmann; Frank T Robb
Journal:  Proc Natl Acad Sci U S A       Date:  2010-11-05       Impact factor: 11.205

7.  The Sso7d protein of Sulfolobus solfataricus: in vitro relationship among different activities.

Authors:  Annamaria Guagliardi; Laura Cerchia; Mosè Rossi
Journal:  Archaea       Date:  2002-09       Impact factor: 3.273

8.  Evolution of a protein-folding machine: genomic and evolutionary analyses reveal three lineages of the archaeal hsp70(dnaK) gene.

Authors:  Alberto J L Macario; Luciano Brocchieri; Avinash R Shenoy; Everly Conway de Macario
Journal:  J Mol Evol       Date:  2006-06-20       Impact factor: 2.395

Review 9.  Multiple chaperonins in bacteria--novel functions and non-canonical behaviors.

Authors:  C M Santosh Kumar; Shekhar C Mande; Gaurang Mahajan
Journal:  Cell Stress Chaperones       Date:  2015-05-20       Impact factor: 3.667

Review 10.  Myxobacteria: Moving, Killing, Feeding, and Surviving Together.

Authors:  José Muñoz-Dorado; Francisco J Marcos-Torres; Elena García-Bravo; Aurelio Moraleda-Muñoz; Juana Pérez
Journal:  Front Microbiol       Date:  2016-05-26       Impact factor: 5.640

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