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TP53INP1 deficiency maintains murine B lymphopoiesis in aged bone marrow through redox-controlled IL-7R/STAT5 signaling
by
Zidi, Bochra
, N’guessan, Prudence
, Seillier, Marion
, Vandevelde, Amelle
, Poplineau, Mathilde
, Pouyet, Laurent
, Vincent-Fabert, Christelle
, Carrier, Alice
, Mancini, Stéphane J. C.
, Guittard, Geoffrey
, Duprez, Estelle
in
Aging
/ Aging - physiology
/ Animals
/ B-Lymphocytes - metabolism
/ B-Lymphocytes - physiology
/ Biological Sciences
/ Bone marrow
/ Bone Marrow - metabolism
/ Bone Marrow - physiology
/ Cell activation
/ Cellular Biology
/ Clonal deletion
/ Contraction
/ Genotype & phenotype
/ Hematopoietic stem cells
/ Homeostasis
/ Immune system
/ Immunology
/ Immunosenescence
/ Life Sciences
/ Lymphocytes B
/ Lymphopoiesis
/ Lymphopoiesis - physiology
/ Male
/ Medical Sciences
/ Mice
/ Mice, Inbred C57BL
/ Nuclear Proteins - deficiency
/ Oxidation-Reduction
/ Oxidative Stress
/ Pax5 protein
/ Phenotypes
/ Receptors, Interleukin-7 - metabolism
/ Rodents
/ Signal Transduction
/ Stat5 protein
/ STAT5 Transcription Factor - metabolism
/ Stem cell transplantation
/ Stem cells
2019
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TP53INP1 deficiency maintains murine B lymphopoiesis in aged bone marrow through redox-controlled IL-7R/STAT5 signaling
by
Zidi, Bochra
, N’guessan, Prudence
, Seillier, Marion
, Vandevelde, Amelle
, Poplineau, Mathilde
, Pouyet, Laurent
, Vincent-Fabert, Christelle
, Carrier, Alice
, Mancini, Stéphane J. C.
, Guittard, Geoffrey
, Duprez, Estelle
in
Aging
/ Aging - physiology
/ Animals
/ B-Lymphocytes - metabolism
/ B-Lymphocytes - physiology
/ Biological Sciences
/ Bone marrow
/ Bone Marrow - metabolism
/ Bone Marrow - physiology
/ Cell activation
/ Cellular Biology
/ Clonal deletion
/ Contraction
/ Genotype & phenotype
/ Hematopoietic stem cells
/ Homeostasis
/ Immune system
/ Immunology
/ Immunosenescence
/ Life Sciences
/ Lymphocytes B
/ Lymphopoiesis
/ Lymphopoiesis - physiology
/ Male
/ Medical Sciences
/ Mice
/ Mice, Inbred C57BL
/ Nuclear Proteins - deficiency
/ Oxidation-Reduction
/ Oxidative Stress
/ Pax5 protein
/ Phenotypes
/ Receptors, Interleukin-7 - metabolism
/ Rodents
/ Signal Transduction
/ Stat5 protein
/ STAT5 Transcription Factor - metabolism
/ Stem cell transplantation
/ Stem cells
2019
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TP53INP1 deficiency maintains murine B lymphopoiesis in aged bone marrow through redox-controlled IL-7R/STAT5 signaling
by
Zidi, Bochra
, N’guessan, Prudence
, Seillier, Marion
, Vandevelde, Amelle
, Poplineau, Mathilde
, Pouyet, Laurent
, Vincent-Fabert, Christelle
, Carrier, Alice
, Mancini, Stéphane J. C.
, Guittard, Geoffrey
, Duprez, Estelle
in
Aging
/ Aging - physiology
/ Animals
/ B-Lymphocytes - metabolism
/ B-Lymphocytes - physiology
/ Biological Sciences
/ Bone marrow
/ Bone Marrow - metabolism
/ Bone Marrow - physiology
/ Cell activation
/ Cellular Biology
/ Clonal deletion
/ Contraction
/ Genotype & phenotype
/ Hematopoietic stem cells
/ Homeostasis
/ Immune system
/ Immunology
/ Immunosenescence
/ Life Sciences
/ Lymphocytes B
/ Lymphopoiesis
/ Lymphopoiesis - physiology
/ Male
/ Medical Sciences
/ Mice
/ Mice, Inbred C57BL
/ Nuclear Proteins - deficiency
/ Oxidation-Reduction
/ Oxidative Stress
/ Pax5 protein
/ Phenotypes
/ Receptors, Interleukin-7 - metabolism
/ Rodents
/ Signal Transduction
/ Stat5 protein
/ STAT5 Transcription Factor - metabolism
/ Stem cell transplantation
/ Stem cells
2019
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TP53INP1 deficiency maintains murine B lymphopoiesis in aged bone marrow through redox-controlled IL-7R/STAT5 signaling
Journal Article
TP53INP1 deficiency maintains murine B lymphopoiesis in aged bone marrow through redox-controlled IL-7R/STAT5 signaling
2019
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Overview
Bone marrow (BM) produces all blood and immune cells deriving from hematopoietic stem cells (HSCs). The decrease of immune cell production during aging is one of the features of immunosenescence. The impact of redox dysregulation in BM aging is still poorly understood. Here we use TP53INP1-deficient (KO) mice endowed with chronic oxidative stress to assess the influence of aging-associated redox alterations in BM homeostasis. We show that TP53INP1 deletion has no impact on aging-related accumulation of HSCs. In contrast, the aging-related contraction of the lymphoid compartment is mitigated in TP53INP1 KO mice. B cells that accumulate in old KO BM are differentiating cells that can mature into functional B cells. Importantly, this phenotype results from B cell-intrinsic events associated with defective redox control. Finally, we show that oxidative stress in aged TP53INP1-deficient mice maintains STAT5 expression and activation in early B cells, driving high Pax5 expression, which provides a molecular mechanism for maintenance of B cell development upon aging.
Publisher
National Academy of Sciences
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