Protein Post Translational Modifications in Human Diseases: Bacterial Glycosylation Profiling by Peptide Microarray / Protein Phosphorylation Analysis in High Risk Neuroblastoma
abstract: ABSTRACT Post Translational Modifications (PTMs) are a series of chemical modifications with the capacity to expand the structural and functional repertoire of proteins. PTMs can regulate protein-protein interaction, localization, protein turn-over, the active state of the protein, a...
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ndltd-asu.edu-item-258852018-06-22T03:05:26Z Protein Post Translational Modifications in Human Diseases: Bacterial Glycosylation Profiling by Peptide Microarray / Protein Phosphorylation Analysis in High Risk Neuroblastoma abstract: ABSTRACT Post Translational Modifications (PTMs) are a series of chemical modifications with the capacity to expand the structural and functional repertoire of proteins. PTMs can regulate protein-protein interaction, localization, protein turn-over, the active state of the protein, and much more. This can dramatically affect cell processes as relevant as gene expression, cell-cell recognition, and cell signaling. Along these lines, this Ph.D. thesis examines the role of two of the most important PTMs: glycosylation and phosphorylation. In chapters 2, 3 and 4, a 10,000 peptide microarray is used to analyze the glycan variations in a series lipopolysaccharides (LPS) from Gram negative bacteria. This research was the first to demonstrate that using a small subset of random sequence peptides, it was possible to identify a small subset with the capacity to bind to the LPS of bacteria. These peptides bound to LPS not only in the solid surface of the array but also in solution as demonstrated with surface plasmon resonance (SPR), isothermal titration calorimetry (ITC) and flow cytometry. Interestingly, some of the LPS binding peptides also exhibit antimicrobial activity, a property that is also analyzed in this work. In chapters 5 and 6, the role of protein phosphorylation, another PTM, is analyzed in the context of human cancer. High risk neuroblastoma, a very aggressive pediatric cancer, was studied with emphasis on the phosphorylations of two selected oncoproteins: the transcription factor NMYC and the adaptor protein ShcC. Both proteins were isolated from high risk neuroblastoma cells, and a targeted-directed tandem mass spectrometry (LC-MS/MS) methodology was used to identify the phosphorylation sites in each protein. Using this method dramatically improved the phosphorylation site detection and increased the number of sites detected up to 250% in comparison with previous studies. Several of the novel identified sites were located in functional domain of the proteins and that some of them are homologous to known active sites in other proteins of the same family. The chapter concludes with a computational prediction of the kinases that potentially phosphorylate those sites and a series of assays to show this phosphorylation occurred in vitro. Dissertation/Thesis Morales Betanzos, Carlos Alberto (Author) LaBaer, Joshua (Advisor) Allen, James (Committee member) Ghirlanda, Giovanna (Committee member) Arizona State University (Publisher) Biochemistry Molecular biology Glycosylation Lipopolysaccharides Neuroblastoma Phosphorylation Post Translational Modifications Proteomics eng 281 pages Doctoral Dissertation Biochemistry 2014 Doctoral Dissertation http://hdl.handle.net/2286/R.I.25885 http://rightsstatements.org/vocab/InC/1.0/ All Rights Reserved 2014 |
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NDLTD |
language |
English |
format |
Doctoral Thesis |
sources |
NDLTD |
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Biochemistry Molecular biology Glycosylation Lipopolysaccharides Neuroblastoma Phosphorylation Post Translational Modifications Proteomics |
spellingShingle |
Biochemistry Molecular biology Glycosylation Lipopolysaccharides Neuroblastoma Phosphorylation Post Translational Modifications Proteomics Protein Post Translational Modifications in Human Diseases: Bacterial Glycosylation Profiling by Peptide Microarray / Protein Phosphorylation Analysis in High Risk Neuroblastoma |
description |
abstract: ABSTRACT
Post Translational Modifications (PTMs) are a series of chemical modifications with the capacity to expand the structural and functional repertoire of proteins. PTMs can regulate protein-protein interaction, localization, protein turn-over, the active state of the protein, and much more. This can dramatically affect cell processes as relevant as gene expression, cell-cell recognition, and cell signaling. Along these lines, this Ph.D. thesis examines the role of two of the most important PTMs: glycosylation and phosphorylation.
In chapters 2, 3 and 4, a 10,000 peptide microarray is used to analyze the glycan variations in a series lipopolysaccharides (LPS) from Gram negative bacteria. This research was the first to demonstrate that using a small subset of random sequence peptides, it was possible to identify a small subset with the capacity to bind to the LPS of bacteria. These peptides bound to LPS not only in the solid surface of the array but also in solution as demonstrated with surface plasmon resonance (SPR), isothermal titration calorimetry (ITC) and flow cytometry. Interestingly, some of the LPS binding peptides also exhibit antimicrobial activity, a property that is also analyzed in this work.
In chapters 5 and 6, the role of protein phosphorylation, another PTM, is analyzed in the context of human cancer. High risk neuroblastoma, a very aggressive pediatric cancer, was studied with emphasis on the phosphorylations of two selected oncoproteins: the transcription factor NMYC and the adaptor protein ShcC. Both proteins were isolated from high risk neuroblastoma cells, and a targeted-directed tandem mass spectrometry (LC-MS/MS) methodology was used to identify the phosphorylation sites in each protein. Using this method dramatically improved the phosphorylation site detection and increased the number of sites detected up to 250% in comparison with previous studies. Several of the novel identified sites were located in functional domain of the proteins and that some of them are homologous to known active sites in other proteins of the same family. The chapter concludes with a computational prediction of the kinases that potentially phosphorylate those sites and a series of assays to show this phosphorylation occurred in vitro. === Dissertation/Thesis === Doctoral Dissertation Biochemistry 2014 |
author2 |
Morales Betanzos, Carlos Alberto (Author) |
author_facet |
Morales Betanzos, Carlos Alberto (Author) |
title |
Protein Post Translational Modifications in Human Diseases: Bacterial Glycosylation Profiling by Peptide Microarray / Protein Phosphorylation Analysis in High Risk Neuroblastoma |
title_short |
Protein Post Translational Modifications in Human Diseases: Bacterial Glycosylation Profiling by Peptide Microarray / Protein Phosphorylation Analysis in High Risk Neuroblastoma |
title_full |
Protein Post Translational Modifications in Human Diseases: Bacterial Glycosylation Profiling by Peptide Microarray / Protein Phosphorylation Analysis in High Risk Neuroblastoma |
title_fullStr |
Protein Post Translational Modifications in Human Diseases: Bacterial Glycosylation Profiling by Peptide Microarray / Protein Phosphorylation Analysis in High Risk Neuroblastoma |
title_full_unstemmed |
Protein Post Translational Modifications in Human Diseases: Bacterial Glycosylation Profiling by Peptide Microarray / Protein Phosphorylation Analysis in High Risk Neuroblastoma |
title_sort |
protein post translational modifications in human diseases: bacterial glycosylation profiling by peptide microarray / protein phosphorylation analysis in high risk neuroblastoma |
publishDate |
2014 |
url |
http://hdl.handle.net/2286/R.I.25885 |
_version_ |
1718700504367759360 |