# Regulation of cardiac chamber morphology in zebrafish

> **NIH NIH F32** · UNIVERSITY OF CALIFORNIA, SAN DIEGO · 2022 · $71,734

## Abstract

PROJECT SUMMARY
 During early stages of heart development, the linear heart tube (LHT) expands to create cardiac
chambers with characteristic curvatures: a convex outer curvature (OC) and a concave inner curvature (IC).
This stereotypical chamber shape facilitates the effective function of the embryonic heart, and errors in
chamber morphogenesis are frequently associated with congenital heart disease. During my postdoctoral
studies, I aspire to elucidate essential cellular and molecular mechanisms that regulate chamber curvature
morphogenesis, using zebrafish as a model organism. At the cellular level, we have previously shown that
regional changes in cardiomyocyte (CM) morphologies underlie curvature formation: as the ventricle emerges,
the apical surface of OC cells becomes large and elongated, whereas the apical surface of IC cells remains
relatively small and circular, similar to cells of the primitive LHT. However, the subcellular mechanisms that
regulate these cell behaviors remain elusive. My preliminary studies add a new dimension to our model for
curvature formation: whereas OC cells remain relatively flat, similar to cells of the LHT, IC cells extend along
their apicobasal (AB) axis. Coupled with this difference in AB length, I find distinct F-actin organization in each
curvature: whereas F-actin is enriched in the basal domain of OC cells, it expands apically in IC cells,
suggesting a link between actin dynamics and patterns of cell shape change. Consistent with this, I have found
that inhibition of actin polymerization disrupts curvature-specific CM shapes. Synthesizing my data with prior
studies, I hypothesize that ventricular curvature formation involves 1) IC cell acquisition of cuboidal morphology
2) OC cell acquisition of squamous morphology, and 3) patterned reorganization of F-actin in these regions.
 Here, I propose to test each tenet of this model. First, I will establish the connection between F-actin
organization and curvature-specific cell shape changes by examining regional actin dynamics and individual
cell dimensions throughout chamber emergence. In addition, I will test whether the acquisition of curvature-
specific traits is dependent on the function of Tbx5, an established regulator of chamber emergence. Second, I
will extend my preliminary studies to determine what types of actin dynamics (polymerization,
depolymerization, and branching) are required for the attainment of OC and IC cell morphologies. Additionally,
I will test whether actin dynamics act cell autonomously to influence CM shapes in the OC and IC. Finally, I will
identify potential regulators of patterned F-actin organization using a single-cell RNA-sequencing approach to
compare expression profiles of OC and IC cells. Intriguingly, our initial datasets already highlight actin
regulators and other cell biologically relevant genes that are differentially expressed in putative OC and IC
cells. Altogether, this work is likely to provide a new model for how...

## Key facts

- **NIH application ID:** 10470318
- **Project number:** 5F32HL147435-03
- **Recipient organization:** UNIVERSITY OF CALIFORNIA, SAN DIEGO
- **Principal Investigator:** Dena Marie Leerberg
- **Activity code:** F32 (R01, R21, SBIR, etc.)
- **Funding institute:** NIH
- **Fiscal year:** 2022
- **Award amount:** $71,734
- **Award type:** 5
- **Project period:** 2020-08-01 → 2023-07-31

## Primary source

NIH RePORTER: https://reporter.nih.gov/project-details/10470318

## Citation

> US National Institutes of Health, RePORTER application 10470318, Regulation of cardiac chamber morphology in zebrafish (5F32HL147435-03). Retrieved via AI Analytics 2026-05-24 from https://api.ai-analytics.org/grant/nih/10470318. Licensed CC0.

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