Cell-accurate optical mapping across the entire developing heart.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 29286002.
- Also identified by DOI 10.7554/eLife.28307 and PMC identifier 5747520.
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Abstract
Organogenesis depends on orchestrated interactions between individual cells and morphogenetically relevant cues at the tissue level. This is true for the heart, whose function critically relies on well-ordered communication between neighboring cells, which is established and fine-tuned during embryonic development. For an integrated understanding of the development of structure and function, we need to move from isolated snap-shot observations of either microscopic or macroscopic parameters to simultaneous and, ideally continuous, cell-to-organ scale imaging. We introduce cell-accurate three-dimensional Ca<sup>2+</sup>-mapping of all cells in the entire electro-mechanically uncoupled heart during the looping stage of live embryonic zebrafish, using high-speed light sheet microscopy and tailored image processing and analysis. We show how myocardial region-specific heterogeneity in cell function emerges during early development and how structural patterning goes hand-in-hand with functional maturation of the entire heart. Our method opens the way to systematic, scale-bridging, <i>in vivo</i> studies of vertebrate organogenesis by cell-accurate structure-function mapping across entire organs.
Medical subject headings
- Heart
- Imaging, Three-Dimensional
- Intravital Microscopy
- Optical Imaging
- Zebrafish