Literature DB >> 10207916

Acid tolerance in root nodule bacteria.

A R Glenn1, W G Reeve, R P Tiwari, M J Dilworth.   

Abstract

Biological nitrogen fixation, especially via the legume Rhizobium symbiosis, is important for world agriculture. The productivity of legume crops and pastures is significantly affected by soil acidity; in some cases it is the prokaryotic partner that is pH sensitive. Growth of Rhizobium is adversely affected by low pH, especially in the 'acid stress zone'. Rhizobia exhibit an adaptive acid tolerance response (ATR) that is influenced by calcium concentration. Using Tn5-mutagenesis, gusA fusions and 'proteome' analysis, we have identified a range of genes that are essential for growth at low pH (such as actA, actP, exoR, actR and actS). At least three regulatory systems exist. The two-component sensor-regulator system, actSR, is essential for induction of the adaptive ATR. Two other regulatory circuits exist that are independent of ActR. One system involves the low pH-induced regulator gene, phrR, which may control other low pH-regulated genes. The other circuit, involving a regulator that is yet unidentified, controls the expression of a pH-regulated structural gene (lpiA). We have used pH-responsive gusA fusions to identify acid-inducible genes (such as lpiA), and then attempted to identify the regulators of these genes. The emerging picture is of a relatively complex set of systems that respond to external pH.

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Year:  1999        PMID: 10207916

Source DB:  PubMed          Journal:  Novartis Found Symp        ISSN: 1528-2511


  8 in total

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Journal:  IUBMB Life       Date:  2009-10       Impact factor: 3.885

2.  The role of sigma factor RpoH1 in the pH stress response of Sinorhizobium meliloti.

Authors:  Daniella K C de Lucena; Alfred Pühler; Stefan Weidner
Journal:  BMC Microbiol       Date:  2010-10-18       Impact factor: 3.605

3.  Novel two-component regulatory system involved in biofilm formation and acid resistance in Streptococcus mutans.

Authors:  Yung-Hua Li; Peter C Y Lau; Nan Tang; Gunnel Svensäter; Richard P Ellen; Dennis G Cvitkovitch
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4.  A highly conserved protein of unknown function is required by Sinorhizobium meliloti for symbiosis and environmental stress protection.

Authors:  Bryan W Davies; Graham C Walker
Journal:  J Bacteriol       Date:  2007-11-30       Impact factor: 3.490

5.  A consolidated analysis of the physiologic and molecular responses induced under acid stress in the legume-symbiont model-soil bacterium Sinorhizobium meliloti.

Authors:  W O Draghi; M F Del Papa; C Hellweg; S A Watt; T F Watt; A Barsch; M J Lozano; A Lagares; M E Salas; J L López; F J Albicoro; J F Nilsson; G A Torres Tejerizo; M F Luna; M Pistorio; J L Boiardi; A Pühler; S Weidner; K Niehaus; A Lagares
Journal:  Sci Rep       Date:  2016-07-11       Impact factor: 4.379

6.  High-quality permanent draft genome sequence of Bradyrhizobium sp. strain WSM1743 - an effective microsymbiont of an Indigofera sp. growing in Australia.

Authors:  Leila Eshraghi; Sofie E De Meyer; Rui Tian; Rekha Seshadri; Natalia Ivanova; Amrita Pati; Victor Markowitz; Tanja Woyke; Nikos C Kyrpides; Ravi Tiwari; Ron Yates; John Howieson; Wayne Reeve
Journal:  Stand Genomic Sci       Date:  2015-10-26

7.  Surface Properties of Wild-Type Rhizobium leguminosarum bv. trifolii Strain 24.2 and Its Derivatives with Different Extracellular Polysaccharide Content.

Authors:  Jolanta Cieśla; Magdalena Kopycińska; Małgorzata Łukowska; Andrzej Bieganowski; Monika Janczarek
Journal:  PLoS One       Date:  2016-10-19       Impact factor: 3.240

8.  The time course of the transcriptomic response of Sinorhizobium meliloti 1021 following a shift to acidic pH.

Authors:  Christoph Hellweg; Alfred Pühler; Stefan Weidner
Journal:  BMC Microbiol       Date:  2009-02-15       Impact factor: 3.605

  8 in total

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