Publication: A right-handed signalling pathway drives heart looping in vertebrates.
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Identifiers
Date
2017-09-07
Authors
Ocaña, Oscar H
Coskun, Hakan
Minguillon, Carolina
Murawala, Prayag
Tanaka, Elly M
Galceran, Joan
Muñoz-Chapuli, Ramon
Nieto, M Angela
Advisors
Journal Title
Journal ISSN
Volume Title
Publisher
Nature Publishing Group
Abstract
Most animals show external bilateral symmetry, which hinders the observation of multiple internal left-right (L/R) asymmetries that are fundamental to organ packaging and function. In vertebrates, left identity is mediated by the left-specific Nodal-Pitx2 axis that is repressed on the right-hand side by the epithelial-mesenchymal transition (EMT) inducer Snail1 (refs 3, 4). Despite some existing evidence, it remains unclear whether an equivalent instructive pathway provides right-hand-specific information to the embryo. Here we show that, in zebrafish, BMP mediates the L/R asymmetric activation of another EMT inducer, Prrx1a, in the lateral plate mesoderm with higher levels on the right. Prrx1a drives L/R differential cell movements towards the midline, leading to a leftward displacement of the cardiac posterior pole through an actomyosin-dependent mechanism. Downregulation of Prrx1a prevents heart looping and leads to mesocardia. Two parallel and mutually repressed pathways, respectively driven by Nodal and BMP on the left and right lateral plate mesoderm, converge on the asymmetric activation of the transcription factors Pitx2 and Prrx1, which integrate left and right information to govern heart morphogenesis. This mechanism is conserved in the chicken embryo, and in the mouse SNAIL1 acts in a similar manner to Prrx1a in zebrafish and PRRX1 in the chick. Thus, a differential L/R EMT produces asymmetric cell movements and forces, more prominent from the right, that drive heart laterality in vertebrates.
Description
MeSH Terms
Actomyosin
Animals
Cell Movement
Chick Embryo
Epithelial-Mesenchymal Transition
Female
Heart
Homeodomain Proteins
Mesoderm
Mice
Morphogenesis
Myocardium
Signal Transduction
Snail Family Transcription Factors
Transcription Factors
Zebrafish
Zebrafish Proteins
Animals
Cell Movement
Chick Embryo
Epithelial-Mesenchymal Transition
Female
Heart
Homeodomain Proteins
Mesoderm
Mice
Morphogenesis
Myocardium
Signal Transduction
Snail Family Transcription Factors
Transcription Factors
Zebrafish
Zebrafish Proteins
DeCS Terms
Asimetría izquierda‑derecha
Morfogénesis cardíaca
Transición epitelio‑mesénquima
Proteínas Nodal
Proteínas morfogenéticas óseas
Embrión de pez cebra
Morfogénesis cardíaca
Transición epitelio‑mesénquima
Proteínas Nodal
Proteínas morfogenéticas óseas
Embrión de pez cebra
CIE Terms
Keywords
Centro Andaluz de Nanomedicina y Biotecnología (BIONAND), Left‑right asymmetry, Heart morphogenesis, Epithelial‑mesenchymal transition, Nodal signaling, BMP signaling, Zebrafish embryo
Citation
Ocaña OH, Coskun H, Minguillón C, Murawala P, Tanaka EM, Galcerán J, et al. A right-handed signalling pathway drives heart looping in vertebrates. Nature. 2017 Sep 6;549(7670):86-90.






