Basement Membranes Link Together and Stretch to Withstand Mechanical Forces

dc.contributor.advisor

Sherwood, David R

dc.contributor.author

Gianakas, Claire

dc.date.accessioned

2023-03-28T21:42:02Z

dc.date.available

2023-07-27T08:17:17Z

dc.date.issued

2022

dc.department

Pharmacology

dc.description.abstract

Basement membranes (BMs) are thin, dense sheets of extracellular matrix that surround most animal tissues and provide structural support. While the role of BMs in the structural support of tissues is well established, how these matrices can structurally support tissues while accommodating dynamic tissue function is not well understood. Using C. elegans, a powerful model organism that allows for live imaging, genetic analysis, and rapid screening, I was able to utilize endogenous knock-in fluorescent proteins, conditional RNAi, optogenetics, and quantitative live imaging to investigate how BM components contribute to the BM’s ability to withstand mechanical load in various circumstances. In Chapter 1, I discuss the known roles of BM, introduce BM proteins of interest, explore gaps in our understanding of BM’s function in withstanding mechanical force, and expand upon the utility of C. elegans as a model system to investigate these questions. In Chapter 2, I show that BM-to-BM linkages can function to resist the mechanical forces involved in egg-laying. In Chapter 3, I explore how BM stretches to accommodate dynamic tissue movement. In Chapter 4, I discuss future directions and the implications of these findings and in Chapter 5 I summarize my conclusions.

dc.identifier.uri

https://hdl.handle.net/10161/26827

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Biology

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Developmental biology

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Cellular biology

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Basement membrane

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Basement membrane stretching

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Extracellular matrix

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Hemicentin

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Tissue adhesion

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Type IV collagen

dc.title

Basement Membranes Link Together and Stretch to Withstand Mechanical Forces

dc.type

Dissertation

duke.embargo.months

4

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