Date of Award
Spring 6-13-2026
Document Type
Undergraduate Honors Thesis
Degree Name
B.S. in Biological Sciences
Organizational Unit
College of Natural Science and Mathematics, Biological Sciences
First Advisor
Mira Pronobis
Second Advisor
Schuyler Van Engelenburg
Copyright Statement / License for Reuse

All Rights Reserved.
Keywords
Moesin, VASP, β-catenin, Proximity labeling, Heart regeneration
Abstract
With cardiovascular disease remaining as the leading cause of mortality worldwide, it is largely due to the limited regenerative capacity of the human heart. However, zebrafish (Danio rerio) can fully regenerate cardiac tissue following injury, providing a valuable model for studying the mechanisms of heart repair. To investigate these mechanisms, we used proteomics methods in the past. Proximity labeling is a technique that identifies proteins based on their physical proximity to a protein of interest. It can be applied in organisms and in living cells (Roux et al., 2012; Cho et al., 2020). We used proximity labeling to characterize protein networks involved in heart regeneration. Β-catenin was chosen as bait protein because of its role in Wnt signaling and cell adhesion, leading to the identification of associated cytoskeletal and adhesion-related proteins. This study has shown that β-catenin-associated protein networks enriched in cytoskeletal and adhesion-related proteins can regenerate. My study aims to investigate the subcellular dynamics of two protein candidates, Moesin and vasodilator-stimulated phosphoprotein (VASP), during zebrafish heart regeneration. The Immunofluorescence showed that Moesin expression was significantly increased in the cardiomyocyte-rich regions following the injury, with signals appearing more localized in punctate structures. However, VASP showed a non-significant decrease in both cardiomyocyte and vascular regions. Neither protein exhibited significant changes in blood vessels. At the cardiomyocyte-endothelial cell (CM-EC) interface, Moesin signal was more prominent in injured hearts, whereas VASP remained unchanged. All the findings suggest that cytoskeletal remodeling during zebrafish heart regeneration is highly selective and may involve differential regulation of β-catenin-associated proteins. Moesin plays a role in the structural reorganization of cardiomyocytes during regeneration, while VASP appears to be less dynamically regulated. Understanding how these protein levels change may provide insight into the mechanisms that could be targeted in order to enhance cardiac repair in humans in the future.
Copyright Date
5-4-2026
Publication Statement
Copyright is held by the author. User is responsible for all copyright compliance.
Rights Holder
Allen Rutman
Provenance
Received from Author
File Format
application/pdf
Language
English (eng)
Extent
35 pgs
File Size
980 KB
Recommended Citation
Rutman, Allen, "Differential Roles of Moesin and VASP in β-catenin-Associated Networks During Zebrafish Heart Regeneration" (2026). Undergraduate Theses, Capstones, and Recitals. 76.
https://digitalcommons.du.edu/undergraduate_theses/76
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Animal Experimentation and Research Commons, Biology Commons, Cardiology Commons, Medical Biochemistry Commons