UWSpace is currently experiencing technical difficulties resulting from its recent migration to a new version of its software. These technical issues are not affecting the submission and browse features of the site. UWaterloo community members may continue submitting items to UWSpace. We apologize for the inconvenience, and are actively working to resolve these technical issues.
 

Optimizing protein S-acylation detection in autophagy

dc.contributor.authorLiao, Meng Qi
dc.date.accessioned2021-06-04T13:14:22Z
dc.date.available2022-06-05T04:50:06Z
dc.date.issued2021-06-04
dc.date.submitted2021-05-03
dc.description.abstractS-acylation, sometimes referred to as S-palmitoylation or simply palmitoylation, is a posttranslational protein modification involving the covalent addition of a fatty acid to cysteine residues. Since the first characterization of protein palmitoylation over 40 years ago, this modification has been implicated in a variety of cellular processes, particularly membrane targeting, protein localization, and regulation of protein-protein interactions. These processes are essential in autophagy, a membrane-dependent cellular recycling and degradation mechanism to remove damaged organelles and toxic proteins. Due to its unique reversibility among lipid modifications as well its regulatory roles in membrane-dependent processes essential to autophagy, palmitoylation has recently began to be explored in the context of autophagy. Despite increasing evidence pointing to a regulatory role of palmitoylation in autophagy, methods for the detection of palmitoylated proteins specifically under autophagic conditions have not been a focus for development and optimization. The aim of this thesis project was to optimize detection methods of palmitoylated proteins during autophagy. In this regard, we combined existing techniques of chemical autophagy induction, metabolic labeling with bio-orthogonal fatty acid analogs that are detectable with click chemistry, as well as affinity purification for the detection and identification of palmitoylated proteins during autophagy. First, we tested several new commercial products and established a working protocol for the click chemistry assay. We then demonstrated that delivery of detectable alkynyl fatty acids into cells during metabolic labeling can be considerably improved with the use of delipidated media and saponification of fatty acids. Cellular incorporation of the 18-carbon alkynyl stearate, the most commonly used fatty acid analog, was shown to be improved the most through saponification and incubation with fatty acid free bovine serum albumin (BSA), leading to greater availability of the fatty acid label and significantly enhanced overall palmitoylation signal. In addition, saponification of fatty acids prior to addition to cell culture can protect cells from lipotoxicity and activation of stress pathways induced by the direct addition of fatty acids. Next, we tested two approaches to enrich and purify palmitoylated proteins following click chemistry linkage of an affinity probe. In addition, we determined optimal treatment times of autophagy induction using rapamycin to induce the most robust autophagic flux. Finally, we demonstrated low throughput confirmation and characterization of palmitoylation in two proteins of interest, the small VCP-interacting protein and the spike protein of the SARS-CoV2 virus, via immunoprecipitation and click chemistry detection. The established methods and findings of this study provide important foundations to identify palmitoylation targets and characterize pathways of palmitoylation regulation during autophagy, which ultimately will provide valuable insight on the molecular mechanisms of a wide range of diseases from cancer to neurodegeneration.en
dc.identifier.urihttp://hdl.handle.net/10012/17089
dc.language.isoenen
dc.pendingfalse
dc.publisherUniversity of Waterlooen
dc.subjectpalmitoylationen
dc.subjectS-acylationen
dc.subjectautophagyen
dc.subjectfatty acidsen
dc.subjectclick chemistryen
dc.titleOptimizing protein S-acylation detection in autophagyen
dc.typeMaster Thesisen
uws-etd.degreeMaster of Scienceen
uws-etd.degree.departmentBiologyen
uws-etd.degree.disciplineBiologyen
uws-etd.degree.grantorUniversity of Waterlooen
uws-etd.embargo.terms1 yearen
uws.contributor.advisorMartin, Dale
uws.contributor.affiliation1Faculty of Scienceen
uws.peerReviewStatusUnrevieweden
uws.published.cityWaterlooen
uws.published.countryCanadaen
uws.published.provinceOntarioen
uws.scholarLevelGraduateen
uws.typeOfResourceTexten

Files

Original bundle
Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
Liao_MengQi.pdf
Size:
6.49 MB
Format:
Adobe Portable Document Format
Description:
License bundle
Now showing 1 - 1 of 1
No Thumbnail Available
Name:
license.txt
Size:
6.4 KB
Format:
Item-specific license agreed upon to submission
Description:

Collections