Literature DB >> 14764111

Production of phthiocerol dimycocerosates protects Mycobacterium tuberculosis from the cidal activity of reactive nitrogen intermediates produced by macrophages and modulates the early immune response to infection.

Cécile Rousseau1, Nathalie Winter, Elisabeth Pivert, Yann Bordat, Olivier Neyrolles, Patrick Avé, Michel Huerre, Brigitte Gicquel, Mary Jackson.   

Abstract

The growth of Mycobacterium tuberculosis mutants unable to synthesize phthiocerol dimycocerosates (DIMs) was recently shown to be impaired in mouse lungs. However, the precise role of these molecules in the course of infection remained to be determined. Here, we provide evidence that the attenuation of a DIM-deficient strain takes place during the acute phase of infection in both lungs and spleen of mice, and that this attenuation results in part from the increased sensitivity of the mutant to the cidal activity of reactive nitrogen intermediates released by activated macrophages. We also show that the DIM-deficient mutant, the growth and survival of which were not impaired within resting macrophages and dendritic cells, induced these cells to secrete more tumour necrosis factor (TNF)-alpha and interleukin (IL)-6 than the wild-type strain. Although purified DIM molecules by themselves had no effect on the activation of macrophages and dendritic cells in vitro, we found that the proper localization of DIMs in the cell envelope of M. tuberculosis is critical to their biological effects. Thus, our findings suggest that DIM production contributes to the initial growth of M. tuberculosis by protecting it from the nitric oxide-dependent killing of macrophages and modulating the early immune response to infection.

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Year:  2004        PMID: 14764111     DOI: 10.1046/j.1462-5822.2004.00368.x

Source DB:  PubMed          Journal:  Cell Microbiol        ISSN: 1462-5814            Impact factor:   3.715


  83 in total

1.  Domain structure of virulence-associated response regulator PhoP of Mycobacterium tuberculosis: role of the linker region in regulator-promoter interaction(s).

Authors:  Anuj Pathak; Rajni Goyal; Akesh Sinha; Dibyendu Sarkar
Journal:  J Biol Chem       Date:  2010-09-02       Impact factor: 5.157

2.  Comparative metabolic profiling of mce1 operon mutant vs wild-type Mycobacterium tuberculosis strains.

Authors:  Adriano Queiroz; Daniel Medina-Cleghorn; Olivera Marjanovic; Daniel K Nomura; Lee W Riley
Journal:  Pathog Dis       Date:  2015-08-28       Impact factor: 3.166

3.  Diacyltransferase Activity and Chain Length Specificity of Mycobacterium tuberculosis PapA5 in the Synthesis of Alkyl β-Diol Lipids.

Authors:  Megan H Touchette; Gopal R Bommineni; Richard J Delle Bovi; John E Gadbery; Carrie D Nicora; Anil K Shukla; Jennifer E Kyle; Thomas O Metz; Dwight W Martin; Nicole S Sampson; W Todd Miller; Peter J Tonge; Jessica C Seeliger
Journal:  Biochemistry       Date:  2015-08-24       Impact factor: 3.162

4.  LppX is a lipoprotein required for the translocation of phthiocerol dimycocerosates to the surface of Mycobacterium tuberculosis.

Authors:  Gerlind Sulzenbacher; Stéphane Canaan; Yann Bordat; Olivier Neyrolles; Gustavo Stadthagen; Véronique Roig-Zamboni; Jean Rauzier; Damien Maurin; Françoise Laval; Mamadou Daffé; Christian Cambillau; Brigitte Gicquel; Yves Bourne; Mary Jackson
Journal:  EMBO J       Date:  2006-03-16       Impact factor: 11.598

Review 5.  Revisiting the host as a growth medium.

Authors:  Stacie A Brown; Kelli L Palmer; Marvin Whiteley
Journal:  Nat Rev Microbiol       Date:  2008-09       Impact factor: 60.633

6.  Capsular glucan and intracellular glycogen of Mycobacterium tuberculosis: biosynthesis and impact on the persistence in mice.

Authors:  Tounkang Sambou; Premkumar Dinadayala; Gustavo Stadthagen; Nathalie Barilone; Yann Bordat; Patricia Constant; Florence Levillain; Olivier Neyrolles; Brigitte Gicquel; Anne Lemassu; Mamadou Daffé; Mary Jackson
Journal:  Mol Microbiol       Date:  2008-09-18       Impact factor: 3.501

7.  Characterization of phthiocerol and phthiodiolone dimycocerosate esters of M. tuberculosis by multiple-stage linear ion-trap MS.

Authors:  Kelly N Flentie; Christina L Stallings; John Turk; Adriaan J Minnaard; Fong-Fu Hsu
Journal:  J Lipid Res       Date:  2015-11-16       Impact factor: 5.922

8.  A sulfated metabolite produced by stf3 negatively regulates the virulence of Mycobacterium tuberculosis.

Authors:  Joseph D Mougous; Ryan H Senaratne; Christopher J Petzold; Madhulika Jain; Dong H Lee; Michael W Schelle; Michael D Leavell; Jeffery S Cox; Julie A Leary; Lee W Riley; Carolyn R Bertozzi
Journal:  Proc Natl Acad Sci U S A       Date:  2006-03-06       Impact factor: 11.205

9.  The genetic requirements for fast and slow growth in mycobacteria.

Authors:  Dany J V Beste; Mateus Espasa; Bhushan Bonde; Andrzej M Kierzek; Graham R Stewart; Johnjoe McFadden
Journal:  PLoS One       Date:  2009-04-28       Impact factor: 3.240

10.  Mycobacterium tuberculosis WhiB3 maintains redox homeostasis by regulating virulence lipid anabolism to modulate macrophage response.

Authors:  Amit Singh; David K Crossman; Deborah Mai; Loni Guidry; Martin I Voskuil; Matthew B Renfrow; Adrie J C Steyn
Journal:  PLoS Pathog       Date:  2009-08-14       Impact factor: 6.823

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