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Published on: October 7, 2016
The rostro-caudal position of cardiac myocytes affect their fate
V Patwardhan1, S Fernandez, M Montgomery
1Department of Anatomy and Cell Biology, Temple University, Philadelphia, Pennsylvania 19140, USA.
Insights
Early chick embryo cells destined for the heart change their fate when their position is altered. This study reveals how cell location influences cardiac myocyte development.
Area of Science:
- Developmental biology
- Cardiovascular research
- Embryology
Background:
- Cardiac myocyte precursors are established early in chick embryogenesis.
- These cells maintain a rostro-caudal distribution from the primitive streak to the developing heart.
Purpose of the Study:
- To investigate how altering the longitudinal position of cardiac precursor cells affects their diversification.
- To understand the role of cell location in cardiac myocyte fate determination.
Main Methods:
- Surgical manipulation of anterior lateral plate mesoderm and endoderm in chick embryos (stages 4-8).
- Rotation of tissue by 180 degrees along the longitudinal axis.
- Analysis of myocyte diversification using lineage-specific markers.
Main Results:
- Altering the rostro-caudal position of precursor cells before stage 6 changed their normal diversification into atrial and ventricular myocytes.
- The orientation of the overlying ectoderm did not impact cardiac morphogenesis or cell fate determination.
Conclusions:
- Cellular position along the rostro-caudal axis is a critical factor in cardiac myocyte fate specification during embryogenesis.
- This positional information influences the diversification of cardiac precursor cells into specific myocyte types.
Abstract:
During chick embryogenesis, cells destined to form cardiac myocytes are located within the primitive streak at stage 3 in the same relative anterior-posterior distribution as in the prelooped heart. The most rostral cells contribute to the extreme anterior pole of the heart, the bulbus cordis, and the most caudal to the extreme posterior end, the sinoatrial region. After gastrulation, these cells commit to the myocyte lineage and, retaining their relative positions, migrate to the anterior lateral plate. From stages 5 to 10 they diversify into atrial and ventricular myocytes, with the former located posteriorly and the latter, anteriorly. To determine the effect of a change in the rostro-caudal position of these cells on their diversification, anterior lateral plate mesoderm and the underlying endoderm were cut and rotated 180 degrees along the longitudinal axis, at stages 4-8. The subsequent diversification of these precursor cells into atrial and ventricular myocytes was examined using lineage-specific markers. Our results showed that altering location along the longitudinal axis through stage 6 changed the normal fate of a precursor cell. The orientation of the overlying ectoderm did not alter normal morphogenesis or determination of fate.
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