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M2 Polarization and Inhibition of Host Cell Glycolysis Contributes Intracellular Survival of Salmonella Strains in Chicken Macrophage HD-11 Cells.
He, Haiqi; Genovese, Kenneth J; Arsenault, Ryan J; Swaggerty, Christina L; Johnson, Casey N; Byrd, J Allen; Kogut, Michael H.
Afiliação
  • He H; Southern Plains Agricultural Research Center, USDA-ARS, College Station, TX 77845, USA.
  • Genovese KJ; Southern Plains Agricultural Research Center, USDA-ARS, College Station, TX 77845, USA.
  • Arsenault RJ; Department of Animal and Food Sciences, University of Delaware, Newark, DE 19716, USA.
  • Swaggerty CL; Southern Plains Agricultural Research Center, USDA-ARS, College Station, TX 77845, USA.
  • Johnson CN; Southern Plains Agricultural Research Center, USDA-ARS, College Station, TX 77845, USA.
  • Byrd JA; Southern Plains Agricultural Research Center, USDA-ARS, College Station, TX 77845, USA.
  • Kogut MH; Southern Plains Agricultural Research Center, USDA-ARS, College Station, TX 77845, USA.
Microorganisms ; 11(7)2023 Jul 19.
Article em En | MEDLINE | ID: mdl-37513010
ABSTRACT
Salmonella enterica is a group of facultative, gram-negative bacteria. Recently, new evidence indicated that Salmonella could reprogram the host metabolism to increase energy or metabolites available for intracellular replication. In this study, using a chicken-specific kinomic immunometabolism peptide array analysis, we found that infection by S. Enteritidis induced significant phosphorylation changes in many key proteins of the glycolytic pathway in chicken macrophage HD-11 cells, indicating a shift in glycolysis caused by Salmonella infection. Nitric oxide production and changes of glycolysis and mitochondrial oxidative phosphorylation (OXPHOS) represented by extracellular acidification rate (ECAR) and oxygen consumption rate (OCR), respectively, were measured in chicken macrophages infected with three Salmonella strains (S. Enteritidis, S. Heidelberg, and S. Senftenberg). The infection reduced glycolysis and enhanced OXPHOS in chicken macrophages as indicated by changes of ECAR and OCR. Salmonella strains differentially affected macrophage polarization and glycolysis. Among three strains tested, S. Enteritidis was most effective in downregulating glycolysis and promoting M2 polarization as measured by ECAR, ORC, and NO production; while S. Senftenberg did not alter glycolysis and may promote M1 polarization. Our results suggested that downregulation of host cell glycolysis and increase of M2 polarization of macrophages may contribute to increased intracellular survival of S. Enteritidis.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article