Independently paced Ca2+ oscillations in progenitor and differentiated cells in an ex vivo epithelial organ

Author:

Kim Anna A.123ORCID,Nguyen Amanda24,Marchetti Marco5,Du XinXin6,Montell Denise J.4,Pruitt Beth L.24ORCID,O'Brien Lucy Erin17ORCID

Affiliation:

1. Stanford University School of Medicine 1 Department of Molecular and Cellular Physiology , , Stanford, CA 94305 , USA

2. University of California 2 Departments of Mechanical Engineering and Biomolecular Science and Engineering , , Santa Barbara, CA 93106 , USA

3. Uppsala University, 75103 Uppsala 3 Department of Materials Science and Engineering , , Sweden

4. University of California 4 Department of Molecular, Cellular, and Developmental Biology , , Santa Barbara, CA 93106 , USA

5. Huntsman Cancer Institute, University of Utah 5 Department of Oncological Sciences , , Salt Lake City, UT 84112 , USA

6. Center for Computational Biology, Flatiron Institute 6 , New York, NY 10010 , USA

7. Chan-Zuckerberg Biohub 7 , San Francisco, CA 94158 , USA

Abstract

ABSTRACT Cytosolic Ca2+ is a highly dynamic, tightly regulated and broadly conserved cellular signal. Ca2+ dynamics have been studied widely in cellular monocultures, yet organs in vivo comprise heterogeneous populations of stem and differentiated cells. Here, we examine Ca2+ dynamics in the adult Drosophila intestine, a self-renewing epithelial organ in which stem cells continuously produce daughters that differentiate into either enteroendocrine cells or enterocytes. Live imaging of whole organs ex vivo reveals that stem-cell daughters adopt strikingly distinct patterns of Ca2+ oscillations after differentiation: enteroendocrine cells exhibit single-cell Ca2+ oscillations, whereas enterocytes exhibit rhythmic, long-range Ca2+ waves. These multicellular waves do not propagate through immature progenitors (stem cells and enteroblasts), of which the oscillation frequency is approximately half that of enteroendocrine cells. Organ-scale inhibition of gap junctions eliminates Ca2+ oscillations in all cell types – even, intriguingly, in progenitor and enteroendocrine cells that are surrounded only by enterocytes. Our findings establish that cells adopt fate-specific modes of Ca2+ dynamics as they terminally differentiate and reveal that the oscillatory dynamics of different cell types in a single, coherent epithelium are paced independently.

Funder

National Institutes of Health

National Science Foundation

Division of Civil, Mechanical and Manufacturing Innovation

Stanford Bio-X

Vetenskapsrådet

Chan Zuckerberg Biohub

Publisher

The Company of Biologists

Subject

Cell Biology

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