Generation of branched-chain fatty acids through lipoate-dependent metabolism facilitates intracellular growth of Listeria monocytogenes.

scientific article published on 30 January 2009

Generation of branched-chain fatty acids through lipoate-dependent metabolism facilitates intracellular growth of Listeria monocytogenes. is …
instance of (P31):
scholarly articleQ13442814

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P356DOI10.1128/JB.01179-08
P932PMC publication ID2655518
P698PubMed publication ID19181817

P50authorMary O'riordanQ42663794
Lisa M. ColosiQ57226802
P2093author name stringWalter Weber
Kristie Keeney
P2860cites workMetabolic enzymes of mycobacteria linked to antioxidant defense by a thioredoxin-like proteinQ27637390
Scavenging of the cofactor lipoate is essential for the survival of the malaria parasite Plasmodium falciparumQ27973718
beta-oxidation of fatty acids in mitochondria, peroxisomes, and bacteria: a century of continued progressQ41018645
Development of an improved chemically defined minimal medium for Listeria monocytogenesQ41872934
Catabolite repression and virulence gene expression in Listeria monocytogenesQ45009456
Precursor and temperature modulation of fatty acid composition and growth of Listeria monocytogenes cold-sensitive mutants with transposon-interrupted branched-chain alpha-keto acid dehydrogenaseQ45256217
Antimicrobial susceptibility of nisin resistant Listeria monocytogenes of dairy originQ46705651
Fatty Acid-requiring Mutant of Bacillus subtilis Defective in Branched Chain α-Keto Acid DehydrogenaseQ53724593
Stereoselectivity in the 2-methylbutyrate incorporation into anteiso fatty acids in Bacillus subtilis mutantsQ70384967
Carbon-source regulation of virulence gene expression in Listeria monocytogenesQ73168960
A chemically defined minimal medium for the optimal culture of ListeriaQ73177333
Swinging arms and swinging domains in multifunctional enzymes: catalytic machines for multistep reactionsQ28145029
Transcriptional Adaptation of Mycobacterium tuberculosis within Macrophages: Insights into the Phagosomal EnvironmentQ28487339
2,3-butanediol synthesis and the emergence of the Vibrio cholerae El Tor biotype.Q30357184
Identification of Listeria monocytogenes genes contributing to intracellular replication by expression profiling and mutant screeningQ33230551
Regulation of the prfA transcriptional activator of Listeria monocytogenes: multiple promoter elements contribute to intracellular growth and cell-to-cell spreadQ33600385
Intracytoplasmic growth and virulence of Listeria monocytogenes auxotrophic mutants.Q33607802
Hpt, a bacterial homolog of the microsomal glucose- 6-phosphate translocase, mediates rapid intracellular proliferation in ListeriaQ33898004
Development of a competitive index assay to evaluate the virulence of Listeria monocytogenes actA mutants during primary and secondary infection of miceQ34009138
Identification of Listeria monocytogenes genes expressed in response to growth at low temperatureQ34052130
CcpC-dependent regulation of citB and lmo0847 in Listeria monocytogenesQ34233354
Delivery of a viral antigen to the class I processing and presentation pathway by Listeria monocytogenes.Q34325992
The pharmacology of the antioxidant lipoic acidQ34447239
13C isotopologue perturbation studies of Listeria monocytogenes carbon metabolism and its modulation by the virulence regulator PrfAQ34478962
Role of hemolysin for the intracellular growth of Listeria monocytogenesQ34554011
Apicoplast fatty acid synthesis is essential for organelle biogenesis and parasite survival in Toxoplasma gondiiQ35016560
Revisiting the host as a growth mediumQ35046832
Role of branched-chain fatty acids in pH stress tolerance in Listeria monocytogenes.Q35642029
Bacterial infection as assessed by in vivo gene expressionQ35966527
Plasmodium falciparum possesses organelle-specific alpha-keto acid dehydrogenase complexes and lipoylation pathways.Q36295285
LplA1-dependent utilization of host lipoyl peptides enables Listeria cytosolic growth and virulence.Q36631559
Formate acts as a diffusible signal to induce Salmonella invasionQ36747272
Citrate Cycle and Related Metabolism ofListeria monocytogenesQ36773499
Glycerol metabolism and PrfA activity in Listeria monocytogenesQ36804436
Isolation of Listeria monocytogenes from vegetationQ36846994
The epidemiology of human listeriosisQ36919585
Listeriolysin O: a phagosome-specific lysinQ36919588
Insertional inactivation of branched-chain alpha-keto acid dehydrogenase in Staphylococcus aureus leads to decreased branched-chain membrane fatty acid content and increased susceptibility to certain stressesQ36933165
Iso- and anteiso-fatty acids in bacteria: biosynthesis, function, and taxonomic significanceQ37057052
Survival of Listeria monocytogenes in soilQ37459127
Sucrose metabolism contributes to in vivo fitness of Streptococcus pneumoniaeQ37465601
Growth, virulence, and immunogenicity of Listeria monocytogenes aro mutantsQ37523969
Lipoic acid metabolism in Escherichia coli: the lplA and lipB genes define redundant pathways for ligation of lipoyl groups to apoproteinQ39835059
Carbon metabolism of Listeria monocytogenes growing inside macrophagesQ39961284
Intracellular gene expression profile of Listeria monocytogenesQ40326332
Listeria intracellular growth and virulence require host-derived lipoic acidQ40625311
Isoprene formation in Bacillus subtilis: a barometer of central carbon assimilation in a bioreactor?Q40699844
P433issue7
P407language of work or nameEnglishQ1860
P921main subjectfatty acidQ61476
Listeria monocytogenesQ292015
P304page(s)2187-2196
P577publication date2009-01-30
P1433published inJournal of BacteriologyQ478419
P1476titleGeneration of branched-chain fatty acids through lipoate-dependent metabolism facilitates intracellular growth of Listeria monocytogenes
P478volume191

Reverse relations

cites work (P2860)
Q34201466A complex lipoate utilization pathway in Listeria monocytogenes.
Q28488929A lipA (yutB) mutant, encoding lipoic acid synthase, provides insight into the interplay between branched-chain and unsaturated fatty acid biosynthesis in Bacillus subtilis
Q34290837Branched-chain fatty acids promote Listeria monocytogenes intracellular infection and virulence.
Q37746934Carbon metabolism of intracellular bacterial pathogens and possible links to virulence
Q36276434Fatty acids regulate stress resistance and virulence factor production for Listeria monocytogenes
Q33909117Lipoic acid metabolism in microbial pathogens.
Q33575678Listeria monocytogenes CtaP is a multifunctional cysteine transport-associated protein required for bacterial pathogenesis
Q92655866Metabolism of the Gram-Positive Bacterial Pathogen Listeria monocytogenes
Q36341677Optimizing the balance between host and environmental survival skills: lessons learned from Listeria monocytogenes
Q40495790Staphylococcus aureus SufT: an essential iron-sulphur cluster assembly factor in cells experiencing a high-demand for lipoic acid.
Q58747269Transient Nutrient Deprivation Promotes Macropinocytosis-Dependent Intracellular Bacterial Community Development

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