cAMP-activated Nr4a1 expression requires ERK activity and is modulated by MAPK phosphatase-1 in MA-10 Leydig cells
暂无分享,去创建一个
[1] C. Paz,et al. Modulation of albumin-induced endoplasmic reticulum stress in renal proximal tubule cells by upregulation of mapk phosphatase-1. , 2013, Chemico-biological interactions.
[2] C. Paz,et al. MAPK phosphatase-2 (MKP-2) is induced by hCG and plays a role in the regulation of CYP11A1 expression in MA-10 Leydig cells. , 2013, Endocrinology.
[3] S. Keyse,et al. Dual-specificity MAP kinase phosphatases (MKPs) , 2013, The FEBS journal.
[4] A. Navratil,et al. ERK signaling, but not c-Raf, is required for gonadotropin-releasing hormone (GnRH)-induced regulation of Nur77 in pituitary gonadotropes. , 2012, Endocrinology.
[5] C. Paz,et al. MAPK phosphatase-1 (MKP-1) expression is up-regulated by hCG/cAMP and modulates steroidogenesis in MA-10 Leydig cells. , 2011, Endocrinology.
[6] D. Stocco,et al. The Role of Specific Mitogen-Activated Protein Kinase Signaling Cascades in the Regulation of Steroidogenesis , 2011, Journal of signal transduction.
[7] J. Chambard,et al. ERK and cell death: Mechanisms of ERK‐induced cell death – apoptosis, autophagy and senescence , 2010, The FEBS journal.
[8] Zhongmei Zhou,et al. KLF5 Promotes Breast Cell Survival Partially through Fibroblast Growth Factor-binding Protein 1-pERK-mediated Dual Specificity MKP-1 Protein Phosphorylation and Stabilization* , 2009, The Journal of Biological Chemistry.
[9] J. Tremblay,et al. cAMP-induced expression of the orphan nuclear receptor Nur77 in MA-10 Leydig cells involves a CaMKI pathway. , 2008, Journal of andrology.
[10] J. Tremblay,et al. The orphan nuclear receptor NUR77 regulates hormone-induced StAR transcription in Leydig cells through cooperation with Ca2+/calmodulin-dependent protein kinase I. , 2008, Molecular endocrinology.
[11] Eric Chevet,et al. Mitogen-Activated Protein (MAP) Kinase/MAP Kinase Phosphatase Regulation: Roles in Cell Growth, Death, and Cancer , 2008, Pharmacological Reviews.
[12] D. Lévesque,et al. Extracellular signal‐regulated kinases (ERK) and protein kinase C (PKC) activities are involved in the modulation of Nur77 and Nor‐1 expression by dopaminergic drugs , 2008, Journal of neurochemistry.
[13] A. F. Castillo,et al. New enzymes involved in the mechanism of action of epidermal growth factor in a clonal strain of Leydig tumor cells. , 2008, Endocrinology.
[14] Kazuya Yamada,et al. Regulation of NGFI‐B/Nur77 gene expression in the rat ovary and in leydig tumor cells MA‐10 , 2008, Molecular reproduction and development.
[15] S. Galli,et al. A Mitochondrial Kinase Complex Is Essential to Mediate an ERK1/2-Dependent Phosphorylation of a Key Regulatory Protein in Steroid Biosynthesis , 2008, PloS one.
[16] Wei Chen,et al. Differential regulation and properties of MAPKs , 2007, Oncogene.
[17] Yun-Wei Lin,et al. Cooperation of ERK and SCFSkp2 for MKP-1 Destruction Provides a Positive Feedback Regulation of Proliferating Signaling* , 2006, Journal of Biological Chemistry.
[18] M. Ascoli,et al. The lutropin/choriogonadotropin receptor-induced phosphorylation of the extracellular signal-regulated kinases in leydig cells is mediated by a protein kinase a-dependent activation of ras. , 2003, Molecular endocrinology.
[19] C. Paz,et al. Adrenocorticotropin induces mitogen-activated protein kinase phosphatase 1 in Y1 mouse adrenocortical tumor cells. , 2003, Endocrinology.
[20] Florian Holsboer,et al. Activation and induction of NUR77/NURR1 in corticotrophs by CRH/cAMP: involvement of calcium, protein kinase A, and MAPK pathways. , 2002, Molecular endocrinology.
[21] L. Lau,et al. A Calcium/Calmodulin-dependent Activation of ERK1/2 Mediates JunD Phosphorylation and Induction of nur77 and20α-hsd Genes by Prostaglandin F2α in Ovarian Cells* , 2002, The Journal of Biological Chemistry.
[22] B. Schimmer,et al. The regulation of MAPKs in Y1 mouse adrenocortical tumor cells. , 2001, Endocrinology.
[23] Peter M. Jones,et al. ERKs Regulate Cyclic AMP-induced Steroid Synthesis through Transcription of the Steroidogenic Acute Regulatory (StAR) Gene* , 2001, The Journal of Biological Chemistry.
[24] J. Pouysségur,et al. Reduced MAP kinase phosphatase-1 degradation after p42/p44MAPK-dependent phosphorylation. , 1999, Science.
[25] H. Watari,et al. Phosphorylation of Steroidogenic Acute Regulatory Protein (StAR) Modulates Its Steroidogenic Activity* , 1997, The Journal of Biological Chemistry.
[26] D. Stocco,et al. Role of the steroidogenic acute regulatory protein (StAR) in steroidogenesis. , 1996, Biochemical pharmacology.
[27] J. Milbrandt,et al. Adrenocortical function and regulation of the steroid 21-hydroxylase gene in NGFI-B-deficient mice , 1995, Molecular and cellular biology.
[28] S. King,et al. The purification, cloning, and expression of a novel luteinizing hormone-induced mitochondrial protein in MA-10 mouse Leydig tumor cells. Characterization of the steroidogenic acute regulatory protein (StAR). , 1994, The Journal of biological chemistry.
[29] L. Lau,et al. Endocrine and neurogenic regulation of the orphan nuclear receptors Nur77 and Nurr-1 in the adrenal glands , 1994, Molecular and cellular biology.
[30] M. Ascoli. Effects of hypocholesterolemia and chronic hormonal stimulation on sterol and steroid metabolism in a Leydig cell tumor. , 1981, Journal of lipid research.
[31] K. Catt,et al. Adenosine 3′,5′‐monophosphate‐dependent protein kinase of leydig cells: In vitro activation and relationship to gonadotropin action upon cyclic AMP and steroidogenesis , 1976, FEBS letters.
[32] L. Lau,et al. A calcium/calmodulin-dependent activation of ERK1/2 mediates JunD phosphorylation and induction of nur77 and 20alpha-hsd genes by prostaglandin F2alpha in ovarian cells. , 2002, The Journal of biological chemistry.
[33] G. Muscat,et al. Review Nuclear Receptor Signaling | The Open Access Journal of the Nuclear Receptor Signaling Atlas The NR4A subgroup: immediate early response genes with pleiotropic physiological roles , 2022 .
[34] X. Tong,et al. Transforming Growth Factor- (cid:1) 1 Impairs Endothelin-1-Mediated Contraction of Brain Vessels by Inducing Mitogen-Activated Protein (MAP) Kinase Phosphatase-1 and Inhibiting p38 MAP Kinase , 2022 .