Literature DB >> 26173459

ASK1 mediates the teratogenicity of diabetes in the developing heart by inducing ER stress and inhibiting critical factors essential for cardiac development.

Fang Wang1, Yanqing Wu1, Michael J Quon2, Xuezheng Li1, Peixin Yang3.   

Abstract

Maternal diabetes in mice induces heart defects similar to those observed in human diabetic pregnancies. Diabetes enhances apoptosis and suppresses cell proliferation in the developing heart, yet the underlying mechanism remains elusive. Apoptosis signal-regulating kinase 1 (ASK1) activates the proapoptotic c-Jun NH2-terminal kinase 1/2 (JNK1/2) leading to apoptosis, suggesting a possible role of ASK1 in diabetes-induced heart defects. We aimed to investigate whether ASK1 is activated in the heart and whether deleting the Ask1 gene blocks diabetes-induced adverse events and heart defect formation. The ASK1-JNK1/2 pathway was activated by diabetes. Deleting Ask1 gene significantly reduced the rate of heart defects, including ventricular septal defects (VSDs) and persistent truncus arteriosus (PTA). Additionally, Ask1 deletion diminished diabetes-induced JNK1/2 phosphorylation and its downstream transcription factors and endoplasmic reticulum (ER) stress markers. Consistent with this, caspase activation and apoptosis were blunted. Ask1 deletion blocked the increase in cell cycle inhibitors (p21 and p27) and the decrease in cyclin D1 and D3 and reversed diabetes-repressed cell proliferation. Ask1 deletion also restored the expression of BMP4, NKX2.5, and GATA5, Smad1/5/8 phosphorylation, whose mutations or deletion result in reduced cell proliferation, VSD, and PTA formation. We conclude that ASK1 may mediate the teratogenicity of diabetes through activating the JNK1/2-ER stress pathway and inhibiting cell cycle progression, thereby impeding the cardiogenesis pathways essential for ventricular septation and outflow tract development.
Copyright © 2015 the American Physiological Society.

Entities:  

Keywords:  apoptosis; apoptosis signal-regulating kinase 1; endoplasmic reticulum stress; heart defects; maternal diabetes

Mesh:

Substances:

Year:  2015        PMID: 26173459      PMCID: PMC4556884          DOI: 10.1152/ajpendo.00121.2015

Source DB:  PubMed          Journal:  Am J Physiol Endocrinol Metab        ISSN: 0193-1849            Impact factor:   4.310


  61 in total

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Authors:  Emmanuèle C Délot; Matthew E Bahamonde; Manxu Zhao; Karen M Lyons
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Authors:  Fang Wang; Yanqing Wu; Hui Gu; E Albert Reece; Shengyun Fang; Rinat Gabbay-Benziv; Graham Aberdeen; Peixin Yang
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10.  Cellular Stress, Excessive Apoptosis, and the Effect of Metformin in a Mouse Model of Type 2 Diabetic Embryopathy.

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  25 in total

1.  Maternal diabetes triggers DNA damage and DNA damage response in neurulation stage embryos through oxidative stress.

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Review 3.  New development of the yolk sac theory in diabetic embryopathy: molecular mechanism and link to structural birth defects.

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4.  microRNA expression profiling and functional annotation analysis of their targets modulated by oxidative stress during embryonic heart development in diabetic mice.

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5.  The green tea polyphenol EGCG alleviates maternal diabetes-induced neural tube defects by inhibiting DNA hypermethylation.

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6.  Superoxide dismutase 2 overexpression alleviates maternal diabetes-induced neural tube defects, restores mitochondrial function and suppresses cellular stress in diabetic embryopathy.

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9.  MiR-17 Downregulation by High Glucose Stabilizes Thioredoxin-Interacting Protein and Removes Thioredoxin Inhibition on ASK1 Leading to Apoptosis.

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Review 10.  The current status and future of cardiac stem/progenitor cell therapy for congenital heart defects from diabetic pregnancy.

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Journal:  Pediatr Res       Date:  2017-11-15       Impact factor: 3.756

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