4.3 Review

The neural crest in cardiac congenital anomalies

期刊

DIFFERENTIATION
卷 84, 期 1, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.diff.2012.04.005

关键词

Cardiac neural crest; Aortic arch arteries; Persistent truncus arteriosus; Congentital heart defects; DiGeorge syndrome; Second heart field

资金

  1. NIH NRSA [HD070631-01]
  2. George and Jean Brumley, Jr. Neonatal-Perinatal Research Institute of Duke University
  3. AHA [AHA0830464N, BGIA7370008]
  4. NIH [HL084413]

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This review discusses the function of neural crest as they relate to cardiovascular defects. The cardiac neural crest cells are a subpopulation of cranial neural crest discovered nearly 30 years ago by ablation of premigratory neural crest. The cardiac neural crest cells are necessary for normal cardiovascular development. We begin with a description of the crest cells in normal development, including their function in remodeling the pharyngeal arch arteries, outflow tract septation, valvulogenesis, and development of the cardiac conduction system. The cells are also responsible for modulating signaling in the caudal pharynx, including the second heart field. Many of the molecular pathways that are known to influence specification, migration, patterning and final targeting of the cardiac neural crest cells are reviewed. The cardiac neural crest cells play a critical role in the pathogenesis of various human cardiocraniofacial syndromes such as DiGeorge, Velocardiofacial, CHARGE, Fetal Alcohol, Alagille, LEOPARD, and Noonan syndromes, as well as Retinoic Acid Embryopathy. The loss of neural crest cells or their dysfunction may not always directly cause abnormal cardiovascular development, but are involved secondarily because crest cells represent a major component in the complex tissue interactions in the head, pharynx and outflow tract. Thus many of the human syndromes linking defects in the heart, face and brain can be better understood when considered within the context of a single cardiocraniofacial developmental module with the neural crest being a key cell type that interconnects the regions. (C) 2012 International Society of Differentiation. Published by Elsevier B.V. All rights reserved.

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