ASK1 mediates the teratogenicity of diabetes in the developing heart by inducing ER stress and inhibiting critical factors essential for cardiac development.
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M. Quon | F. Wang | Peixin Yang | Xuezheng Li | Yanqing Wu
[1] F. Wang,et al. Advances in revealing the molecular targets downstream of oxidative stress-induced proapoptotic kinase signaling in diabetic embryopathy. , 2015, American journal of obstetrics and gynecology.
[2] F. Wang,et al. Curcumin ameliorates high glucose-induced neural tube defects by suppressing cellular stress and apoptosis. , 2015, American journal of obstetrics and gynecology.
[3] E. A. Reece,et al. Decoding the oxidative stress hypothesis in diabetic embryopathy through proapoptotic kinase signaling. , 2015, American journal of obstetrics and gynecology.
[4] F. Wang,et al. Oxidative stress is responsible for maternal diabetes-impaired transforming growth factor beta signaling in the developing mouse heart. , 2015, American journal of obstetrics and gynecology.
[5] E. A. Reece,et al. Birth defects in pregestational diabetes: Defect range, glycemic threshold and pathogenesis. , 2015, World journal of diabetes.
[6] Peixin Yang,et al. The miR-322-TRAF3 circuit mediates the pro-apoptotic effect of high glucose on neural stem cells. , 2015, Toxicological sciences : an official journal of the Society of Toxicology.
[7] M. Quon,et al. Cellular Stress, Excessive Apoptosis, and the Effect of Metformin in a Mouse Model of Type 2 Diabetic Embryopathy , 2015, Diabetes.
[8] S. Fang,et al. Ask1 Gene Deletion Blocks Maternal Diabetes–Induced Endoplasmic Reticulum Stress in the Developing Embryo by Disrupting the Unfolded Protein Response Signalosome , 2014, Diabetes.
[9] R. Temsah,et al. Cyclin D2 is a GATA4 cofactor in cardiogenesis , 2014, Proceedings of the National Academy of Sciences.
[10] H. R. Zielke,et al. Maternal Hyperglycemia Activates an ASK1–FoxO3a–Caspase 8 Pathway That Leads to Embryonic Neural Tube Defects , 2013, Science Signaling.
[11] G. Semenza,et al. Increased susceptibility of HIF-1α heterozygous-null mice to cardiovascular malformations associated with maternal diabetes. , 2013, Journal of molecular and cellular cardiology.
[12] Peixin Yang,et al. c-Jun NH2-Terminal Kinase 1/2 and Endoplasmic Reticulum Stress as Interdependent and Reciprocal Causation in Diabetic Embryopathy , 2013, Diabetes.
[13] M. Hinds,et al. Hyperglycemia Slows Embryonic Growth and Suppresses Cell Cycle via Cyclin D1 and p21 , 2012, Diabetes.
[14] Michael T. McManus,et al. IRE1α Cleaves Select microRNAs During ER Stress to Derepress Translation of Proapoptotic Caspase-2 , 2012, Science.
[15] R. Temsah,et al. Cyclin D2 rescues size and function of GATA4 haplo-insufficient hearts. , 2012, American journal of physiology. Heart and circulatory physiology.
[16] E. A. Reece,et al. Oxidative Stress–Induced JNK1/2 Activation Triggers Proapoptotic Signaling and Apoptosis That Leads to Diabetic Embryopathy , 2012, Diabetes.
[17] R. Paulson,et al. Hypoxia Regulates BMP4 Expression in the Murine Spleen during the Recovery from Acute Anemia , 2010, PloS one.
[18] J. Molkentin,et al. ASK1 Regulates Cardiomyocyte Death but Not Hypertrophy in Transgenic Mice , 2009, Circulation research.
[19] A. G. Gittenberger-de Groot,et al. Specific Local Cardiovascular Changes of Nɛ-(Carboxymethyl)lysine, Vascular Endothelial Growth Factor, and Smad2 in the Developing Embryos Coincide With Maternal Diabetes–Induced Congenital Heart Defects , 2009, Diabetes.
[20] U. Eriksson,et al. Decreased Cardiac Glutathione Peroxidase Levels and Enhanced Mandibular Apoptosis in Malformed Embryos of Diabetic Rats , 2008, Diabetes.
[21] B. Black,et al. BMP4 is required in the anterior heart field and its derivatives for endocardial cushion remodeling, outflow tract septation, and semilunar valve development , 2008, Developmental dynamics : an official publication of the American Association of Anatomists.
[22] S. Kong,et al. GATA4 Is a Direct Transcriptional Activator of Cyclin D2 and Cdk4 and Is Required for Cardiomyocyte Proliferation in Anterior Heart Field-Derived Myocardium , 2008, Molecular and Cellular Biology.
[23] M. Loeken,et al. Oxidative stress during diabetic pregnancy disrupts cardiac neural crest migration and causes outflow tract defects. , 2008, Birth defects research. Part A, Clinical and molecular teratology.
[24] V. Sumbayev,et al. HIF-1alpha protein is an essential factor for protection of myeloid cells against LPS-induced depletion of ATP and apoptosis that supports Toll-like receptor 4-mediated production of IL-6. , 2008, Molecular immunology.
[25] Y. Taniyama,et al. HIF-1α Signaling Upstream of NKX2.5 Is Required for Cardiac Development in Xenopus* , 2008, Journal of Biological Chemistry.
[26] E. A. Reece,et al. Activation of oxidative stress signaling that is implicated in apoptosis with a mouse model of diabetic embryopathy. , 2008, American journal of obstetrics and gynecology.
[27] Srinivasan Dinesh Kumar,et al. Maternal diabetes induces congenital heart defects in mice by altering the expression of genes involved in cardiovascular development , 2007, Cardiovascular Diabetology.
[28] Jeffrey A. Feinstein,et al. Noninherited Risk Factors and Congenital Cardiovascular Defects: Current Knowledge , 2007, Pediatrics.
[29] Jeffrey A. Feinstein,et al. Noninherited Risk Factors and Congenital Cardiovascular Defects: Current Knowledge: A Scientific Statement From the American Heart Association Council on Cardiovascular Disease in the Young , 2007, Circulation.
[30] E. A. Reece,et al. Involvement of c-Jun N-terminal kinases activation in diabetic embryopathy. , 2007, Biochemical and biophysical research communications.
[31] D. Srivastava,et al. Genetic basis for congenital heart defects: current knowledge: a scientific statement from the American Heart Association Congenital Cardiac Defects Committee, Council on Cardiovascular Disease in the Young: endorsed by the American Academy of Pediatrics. , 2007, Circulation.
[32] J. Haendeler. Thioredoxin-1 and posttranslational modifications. , 2006, Antioxidants & redox signaling.
[33] C. O'connell,et al. Fetal and Neonatal Outcomes of Diabetic Pregnancies , 2006, Obstetrics and gynecology.
[34] A. G. Gittenberger-de Groot,et al. Disturbed morphogenesis of cardiac outflow tract and increased rate of aortic arch anomalies in the offspring of diabetic rats. , 2004, Birth defects research. Part A, Clinical and molecular teratology.
[35] Guofei Zhou,et al. Ser/Thr Protein Phosphatase 5 Inactivates Hypoxia-induced Activation of an Apoptosis Signal-regulating Kinase 1/MKK-4/JNK Signaling Cascade* , 2004, Journal of Biological Chemistry.
[36] K. Akashi,et al. Mouse Development and Cell Proliferation in the Absence of D-Cyclins , 2004, Cell.
[37] R. Schwartz,et al. Bmp4 signaling is required for outflow-tract septation and branchial-arch artery remodeling. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[38] Michiko Watanabe,et al. Fas ligand gene transfer to the embryonic heart induces programmed cell death and outflow tract defects. , 2004, Developmental biology.
[39] P. Chang,et al. Urinary 8-OHdG: a marker of oxidative stress to DNA and a risk factor for cancer, atherosclerosis and diabetics. , 2004, Clinica chimica acta; international journal of clinical chemistry.
[40] C. Wren,et al. Cardiovascular malformations in infants of diabetic mothers , 2003, Heart.
[41] Jonathan C. Cohen,et al. GATA4 mutations cause human congenital heart defects and reveal an interaction with TBX5 , 2003, Nature.
[42] K. Lyons,et al. BMP signaling is required for septation of the outflow tract of the mammalian heart , 2003, Development.
[43] K. Leveno,et al. Maternal Diabetes Mellitus and Infant Malformations , 2002, Obstetrics and gynecology.
[44] J. Fassett,et al. Differential regulation of cyclins D1 and D3 in hepatocyte proliferation , 2002, Hepatology.
[45] Kiyoshi Inoue,et al. ASK1 is essential for endoplasmic reticulum stress-induced neuronal cell death triggered by expanded polyglutamine repeats. , 2002, Genes & development.
[46] H. Ichijo,et al. Activation of apoptosis signal‐regulating kinase 1 by the stress‐induced activating phosphorylation of pre‐formed oligomer , 2002, Journal of cellular physiology.
[47] C. Loffredo,et al. Maternal diabetes: an independent risk factor for major cardiovascular malformations with increased mortality of affected infants. , 2001, Teratology.
[48] M. Collins,et al. Diabetic embryopathy in C57BL/6J mice. Altered fetal sex ratio and impact of the splotch allele. , 2001, Diabetes.
[49] T Takahashi,et al. ASK1 is required for sustained activations of JNK/p38 MAP kinases and apoptosis , 2001, EMBO reports.
[50] V. Hiilesmaa,et al. Glycaemic control during early pregnancy and fetal malformations in women with Type I diabetes mellitus , 2000, Diabetologia.
[51] A. G. Gittenberger-de Groot,et al. Malformations in offspring of diabetic rats: morphometric analysis of neural crest-derived organs and effects of maternal vitamin E treatment. , 2000, Teratology.
[52] B. Rosner,et al. Serum markers of oxidative stress and severity of diabetic retinopathy. , 2000, Diabetes care.
[53] J. Seidman,et al. Congenital heart disease caused by mutations in the transcription factor NKX2-5. , 1998, Science.
[54] Kohei Miyazono,et al. Mammalian thioredoxin is a direct inhibitor of apoptosis signal‐regulating kinase (ASK) 1 , 1998, The EMBO journal.
[55] J. Seidman,et al. Mutations in human TBX5 [corrected] cause limb and cardiac malformation in Holt-Oram syndrome. , 1997, Nature genetics.
[56] R. Kucherlapati,et al. Mutations in human cause limb and cardiac malformation in Holt-Oram syndrome , 1997, Nature Genetics.
[57] E. Reece,et al. Synchronization of the factors critical for diabetic teratogenesis: an in vitro model. , 1996, American journal of obstetrics and gynecology.
[58] P. Raskin,et al. Early pregnancy glycosylated hemoglobin, severity of diabetes, and fetal malformations. , 1989, American journal of obstetrics and gynecology.
[59] J. Soeldner,et al. First-trimester hemoglobin A1 and risk for major malformation and spontaneous abortion in diabetic pregnancy. , 1989, Teratology.
[60] V. Devita,et al. Streptozotocin for malignant insulinomas and carcinoid tumor. Report of eight cases and review of the literature. , 1973, Archives of internal medicine.
[61] K. Teramo,et al. Human Fetal Insulin Metabolism Early in Gestation: Response to Acute Elevation of the Fetal Glucose Concentration and Placental Transfer of Human Insulin-I-131 , 1969, Diabetes.
[62] M. Buse,et al. The role of the human placenta in the transfer and metabolism of insulin. , 1962, The Journal of clinical investigation.