Engineering Proteins via Peptide Backbone Mutagenesis: The Effects of Thioamide Linkages on the Folding and Stability of Short Peptides
Thesis advisor: Jianmin Gao === The development of proteins/peptides as therapeutic agents has emerged as a promising area for drug design. Due to increased antibiotic resistance, search for novel antibiotics has become a primary area of interest within the pharmaceutical industry. Antimicrobial pep...
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ndltd-BOSTON-oai-dlib.bc.edu-bc-ir_1017832019-05-10T07:34:09Z Engineering Proteins via Peptide Backbone Mutagenesis: The Effects of Thioamide Linkages on the Folding and Stability of Short Peptides Demick, Kristen Ann Thesis advisor: Jianmin Gao Text thesis 2009 Boston College English electronic application/pdf The development of proteins/peptides as therapeutic agents has emerged as a promising area for drug design. Due to increased antibiotic resistance, search for novel antibiotics has become a primary area of interest within the pharmaceutical industry. Antimicrobial peptides have been a significantly desirable model due to their innate cytolytic effects and favorable interaction with the membranes of bacterial cells within the host. Thioxylated analogues of biologically active peptides have shown increased enzymatic stability and increased selectivity and potency. Thioamide linkages have thus been installed in a variety of short peptides, replacing the backbone amide linkage, in order to study the effects on peptide conformation and stability. Several bioanalytical tools were used in the analysis including circular dichroism spectroscopy, NMR, size-exclusion high performance liquid chromatography, and fluorescence. The mutation was well-accommodated within several systems, including Trpzip 4 and gramicidin A, and proved to have comparable, and in several cases, enhanced stability in comparison to the wild-type peptides. Backbone Folding Peptide Protein Thioamide Copyright is held by the author, with all rights reserved, unless otherwise noted. Thesis (MS) — Boston College, 2009. Submitted to: Boston College. Graduate School of Arts and Sciences. Discipline: Chemistry. 108358 http://hdl.handle.net/2345/724 |
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Backbone Folding Peptide Protein Thioamide |
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Backbone Folding Peptide Protein Thioamide Demick, Kristen Ann Engineering Proteins via Peptide Backbone Mutagenesis: The Effects of Thioamide Linkages on the Folding and Stability of Short Peptides |
description |
Thesis advisor: Jianmin Gao === The development of proteins/peptides as therapeutic agents has emerged as a promising area for drug design. Due to increased antibiotic resistance, search for novel antibiotics has become a primary area of interest within the pharmaceutical industry. Antimicrobial peptides have been a significantly desirable model due to their innate cytolytic effects and favorable interaction with the membranes of bacterial cells within the host. Thioxylated analogues of biologically active peptides have shown increased enzymatic stability and increased selectivity and potency. Thioamide linkages have thus been installed in a variety of short peptides, replacing the backbone amide linkage, in order to study the effects on peptide conformation and stability. Several bioanalytical tools were used in the analysis including circular dichroism spectroscopy, NMR, size-exclusion high performance liquid chromatography, and fluorescence. The mutation was well-accommodated within several systems, including Trpzip 4 and gramicidin A, and proved to have comparable, and in several cases, enhanced stability in comparison to the wild-type peptides. === Thesis (MS) — Boston College, 2009. === Submitted to: Boston College. Graduate School of Arts and Sciences. === Discipline: Chemistry. |
author |
Demick, Kristen Ann |
author_facet |
Demick, Kristen Ann |
author_sort |
Demick, Kristen Ann |
title |
Engineering Proteins via Peptide Backbone Mutagenesis: The Effects of Thioamide Linkages on the Folding and Stability of Short Peptides |
title_short |
Engineering Proteins via Peptide Backbone Mutagenesis: The Effects of Thioamide Linkages on the Folding and Stability of Short Peptides |
title_full |
Engineering Proteins via Peptide Backbone Mutagenesis: The Effects of Thioamide Linkages on the Folding and Stability of Short Peptides |
title_fullStr |
Engineering Proteins via Peptide Backbone Mutagenesis: The Effects of Thioamide Linkages on the Folding and Stability of Short Peptides |
title_full_unstemmed |
Engineering Proteins via Peptide Backbone Mutagenesis: The Effects of Thioamide Linkages on the Folding and Stability of Short Peptides |
title_sort |
engineering proteins via peptide backbone mutagenesis: the effects of thioamide linkages on the folding and stability of short peptides |
publisher |
Boston College |
publishDate |
2009 |
url |
http://hdl.handle.net/2345/724 |
work_keys_str_mv |
AT demickkristenann engineeringproteinsviapeptidebackbonemutagenesistheeffectsofthioamidelinkagesonthefoldingandstabilityofshortpeptides |
_version_ |
1719078753801338880 |