Comparative genomics reveals broad genetic diversity, extensive recombination and nascent ecological adaptation in Micrococcus luteus. [PDF]
Li Y, Sun ZZ, Rong JC, Xie BB.
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Identification of New Chromosomal Loci Involved in com Genes Expression and Natural Transformation in the Actinobacterial Model Organism Micrococcus luteus. [PDF]
Torasso Kasem EJ +5 more
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Cell density and single-cell heterogeneity reveal distinct competence induction dynamics in the high-GC Gram-positive Micrococcus luteus. [PDF]
Lichev A, Angelov A, Liebl W.
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Synergistic In Vitro Antimicrobial Activity of Pomegranate Rind Extract and Zinc (II) against Micrococcus luteus under Planktonic and Biofilm Conditions. [PDF]
Celiksoy V +4 more
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Metabolic Processes Preserved as Biosignatures in Iron-Oxidizing Microorganisms: Implications for Biosignature Detection on Mars [PDF]
Iron-oxidizing bacteria occupy a distinct environmental niche. These chemolithoautotrophic organisms require very little oxygen (when neutrophilic) or outcompete oxygen for access to Fe(II) (when acidophilic).
Emerson, David +3 more
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A skin isolate of <i>Micrococcus luteus</i> negates the <i>Staphylococcus aureus-</i>induced release of type 2 cytokines from keratinocytes. [PDF]
Elias AE +4 more
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Proteomics and transcriptomic analysis of Micrococcus luteus strain AS2 under arsenite stress and its potential role in arsenic removal. [PDF]
Sher S, Rehman A.
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Biogenic synthesis of PbS nanoparticles by Micrococcus luteus and their application in high-performance photodetectors. [PDF]
Tarkas H +7 more
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Ribonucleic Acid Polymerase from Micrococcus luteus
Patricia A. Straat, Paul O.P. Ts'o
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Characterization of <i>Micrococcus luteus</i> Lipidome Containing Novel Lipid Families by Multiple Stage Linear Ion-Trap with High Resolution Mass Spectrometry. [PDF]
Kleiboeker BA, Hsu FF.
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