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Quantifying In Situ Structural Stabilities of Human Blood Plasma Proteins Using a Novel Iodination Protein Stability Assay

[Image: see text] Many of the diseases that plague society today are driven by a loss of protein quality. One method to quantify protein quality is to measure the protein folding stability (PFS). Here, we present a novel mass spectrometry (MS)-based approach for PFS measurement, iodination protein s...

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Autores principales: Lin, Hsien-Jung L., James, Isabella, Hyer, Chad D., Haderlie, Connor T., Zackrison, Michael J., Bateman, Tyler M., Berg, Monica, Park, Ji-Sun, Daley, S. Anisha, Zuniga Pina, Nathan R., Tseng, Yi-Jie J., Moody, James D., Price, John C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9724711/
https://www.ncbi.nlm.nih.gov/pubmed/36356215
http://dx.doi.org/10.1021/acs.jproteome.2c00323
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author Lin, Hsien-Jung L.
James, Isabella
Hyer, Chad D.
Haderlie, Connor T.
Zackrison, Michael J.
Bateman, Tyler M.
Berg, Monica
Park, Ji-Sun
Daley, S. Anisha
Zuniga Pina, Nathan R.
Tseng, Yi-Jie J.
Moody, James D.
Price, John C.
author_facet Lin, Hsien-Jung L.
James, Isabella
Hyer, Chad D.
Haderlie, Connor T.
Zackrison, Michael J.
Bateman, Tyler M.
Berg, Monica
Park, Ji-Sun
Daley, S. Anisha
Zuniga Pina, Nathan R.
Tseng, Yi-Jie J.
Moody, James D.
Price, John C.
author_sort Lin, Hsien-Jung L.
collection PubMed
description [Image: see text] Many of the diseases that plague society today are driven by a loss of protein quality. One method to quantify protein quality is to measure the protein folding stability (PFS). Here, we present a novel mass spectrometry (MS)-based approach for PFS measurement, iodination protein stability assay (IPSA). IPSA quantifies the PFS by tracking the surface-accessibility differences of tyrosine, histidine, methionine, and cysteine under denaturing conditions. Relative to current methods, IPSA increases protein coverage and granularity to track the PFS changes of a protein along its sequence. To our knowledge, this study is the first time the PFS of human serum proteins has been measured in the context of the blood serum (in situ). We show that IPSA can quantify the PFS differences between different transferrin iron-binding states in near in vivo conditions. We also show that the direction of the denaturation curve reflects the in vivo surface accessibility of the amino acid residue and reproducibly reports a residue-specific PFS. Along with IPSA, we introduce an analysis tool C(half) that provides a simple workflow to calculate the residue-specific PFS. The introduction of IPSA increases the potential to use protein structural stability as a structural quality metric in understanding the etiology and progression of human disease. Data is openly available at Chorusproject.org (project ID 1771).
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spelling pubmed-97247112023-11-10 Quantifying In Situ Structural Stabilities of Human Blood Plasma Proteins Using a Novel Iodination Protein Stability Assay Lin, Hsien-Jung L. James, Isabella Hyer, Chad D. Haderlie, Connor T. Zackrison, Michael J. Bateman, Tyler M. Berg, Monica Park, Ji-Sun Daley, S. Anisha Zuniga Pina, Nathan R. Tseng, Yi-Jie J. Moody, James D. Price, John C. J Proteome Res [Image: see text] Many of the diseases that plague society today are driven by a loss of protein quality. One method to quantify protein quality is to measure the protein folding stability (PFS). Here, we present a novel mass spectrometry (MS)-based approach for PFS measurement, iodination protein stability assay (IPSA). IPSA quantifies the PFS by tracking the surface-accessibility differences of tyrosine, histidine, methionine, and cysteine under denaturing conditions. Relative to current methods, IPSA increases protein coverage and granularity to track the PFS changes of a protein along its sequence. To our knowledge, this study is the first time the PFS of human serum proteins has been measured in the context of the blood serum (in situ). We show that IPSA can quantify the PFS differences between different transferrin iron-binding states in near in vivo conditions. We also show that the direction of the denaturation curve reflects the in vivo surface accessibility of the amino acid residue and reproducibly reports a residue-specific PFS. Along with IPSA, we introduce an analysis tool C(half) that provides a simple workflow to calculate the residue-specific PFS. The introduction of IPSA increases the potential to use protein structural stability as a structural quality metric in understanding the etiology and progression of human disease. Data is openly available at Chorusproject.org (project ID 1771). American Chemical Society 2022-11-10 2022-12-02 /pmc/articles/PMC9724711/ /pubmed/36356215 http://dx.doi.org/10.1021/acs.jproteome.2c00323 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Lin, Hsien-Jung L.
James, Isabella
Hyer, Chad D.
Haderlie, Connor T.
Zackrison, Michael J.
Bateman, Tyler M.
Berg, Monica
Park, Ji-Sun
Daley, S. Anisha
Zuniga Pina, Nathan R.
Tseng, Yi-Jie J.
Moody, James D.
Price, John C.
Quantifying In Situ Structural Stabilities of Human Blood Plasma Proteins Using a Novel Iodination Protein Stability Assay
title Quantifying In Situ Structural Stabilities of Human Blood Plasma Proteins Using a Novel Iodination Protein Stability Assay
title_full Quantifying In Situ Structural Stabilities of Human Blood Plasma Proteins Using a Novel Iodination Protein Stability Assay
title_fullStr Quantifying In Situ Structural Stabilities of Human Blood Plasma Proteins Using a Novel Iodination Protein Stability Assay
title_full_unstemmed Quantifying In Situ Structural Stabilities of Human Blood Plasma Proteins Using a Novel Iodination Protein Stability Assay
title_short Quantifying In Situ Structural Stabilities of Human Blood Plasma Proteins Using a Novel Iodination Protein Stability Assay
title_sort quantifying in situ structural stabilities of human blood plasma proteins using a novel iodination protein stability assay
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9724711/
https://www.ncbi.nlm.nih.gov/pubmed/36356215
http://dx.doi.org/10.1021/acs.jproteome.2c00323
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