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Modulation of amyloid fibrillation of bovine β-lactoglobulin by selective methionine oxidation

Deposition of oxidation-modified proteins during normal aging and oxidative stress are directly associated with systemic amyloidoses. Methionine (Met) is believed to be one of the most readily oxidisable amino acid residues of protein. Bovine beta-lactoglobulin (β-lg), a model globular whey protein,...

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Autores principales: Maity, Sanhita, Sepay, Nayim, Pal, Sampa, Sardar, Subrata, Parvej, Hasan, Pal, Swarnali, Chakraborty, Jishnu, Pradhan, Anirban, Halder, Umesh Chandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8695858/
https://www.ncbi.nlm.nih.gov/pubmed/35423661
http://dx.doi.org/10.1039/d0ra09060c
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author Maity, Sanhita
Sepay, Nayim
Pal, Sampa
Sardar, Subrata
Parvej, Hasan
Pal, Swarnali
Chakraborty, Jishnu
Pradhan, Anirban
Halder, Umesh Chandra
author_facet Maity, Sanhita
Sepay, Nayim
Pal, Sampa
Sardar, Subrata
Parvej, Hasan
Pal, Swarnali
Chakraborty, Jishnu
Pradhan, Anirban
Halder, Umesh Chandra
author_sort Maity, Sanhita
collection PubMed
description Deposition of oxidation-modified proteins during normal aging and oxidative stress are directly associated with systemic amyloidoses. Methionine (Met) is believed to be one of the most readily oxidisable amino acid residues of protein. Bovine beta-lactoglobulin (β-lg), a model globular whey protein, has been presented as a subsequent paradigm for studies on protein aggregation and amyloid formation. Herein, we investigated the effect of t-butyl hydroperoxide (tBHP)-induced oxidation on structure, compactness and fibrillation propensity of β-lg at physiological pH. Notably, whey protein modification, specifically Met residues, plays an important role in the dairy industry during milk processing and lowering nutritional value and ultimately affecting their technological properties. Several bio-physical studies revealed enhanced structural flexibility and aggregation propensity of oxidised β-lg in a temperature dependent manner. A molecular docking study is used to predict possible interactions with tBHP and infers selective oxidation of methionine residues at 7, 24 and 107 positions. From our studies, it can be corroborated that specific orientations of Met residues directs the formation of a partially unfolded state susceptible to fibrillation with possible different cytotoxic effects. Our studies have greater implications in deciphering the underlying mechanism of different whey proteins encountering oxidative stress. Our findings are also important to elucidate the understanding of oxidation induced amyloid fibrillation of protein which may constitute a new route to pave the way for a modulatory role of oxidatively stressed proteins in neurological disorders.
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spelling pubmed-86958582022-04-13 Modulation of amyloid fibrillation of bovine β-lactoglobulin by selective methionine oxidation Maity, Sanhita Sepay, Nayim Pal, Sampa Sardar, Subrata Parvej, Hasan Pal, Swarnali Chakraborty, Jishnu Pradhan, Anirban Halder, Umesh Chandra RSC Adv Chemistry Deposition of oxidation-modified proteins during normal aging and oxidative stress are directly associated with systemic amyloidoses. Methionine (Met) is believed to be one of the most readily oxidisable amino acid residues of protein. Bovine beta-lactoglobulin (β-lg), a model globular whey protein, has been presented as a subsequent paradigm for studies on protein aggregation and amyloid formation. Herein, we investigated the effect of t-butyl hydroperoxide (tBHP)-induced oxidation on structure, compactness and fibrillation propensity of β-lg at physiological pH. Notably, whey protein modification, specifically Met residues, plays an important role in the dairy industry during milk processing and lowering nutritional value and ultimately affecting their technological properties. Several bio-physical studies revealed enhanced structural flexibility and aggregation propensity of oxidised β-lg in a temperature dependent manner. A molecular docking study is used to predict possible interactions with tBHP and infers selective oxidation of methionine residues at 7, 24 and 107 positions. From our studies, it can be corroborated that specific orientations of Met residues directs the formation of a partially unfolded state susceptible to fibrillation with possible different cytotoxic effects. Our studies have greater implications in deciphering the underlying mechanism of different whey proteins encountering oxidative stress. Our findings are also important to elucidate the understanding of oxidation induced amyloid fibrillation of protein which may constitute a new route to pave the way for a modulatory role of oxidatively stressed proteins in neurological disorders. The Royal Society of Chemistry 2021-03-17 /pmc/articles/PMC8695858/ /pubmed/35423661 http://dx.doi.org/10.1039/d0ra09060c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Maity, Sanhita
Sepay, Nayim
Pal, Sampa
Sardar, Subrata
Parvej, Hasan
Pal, Swarnali
Chakraborty, Jishnu
Pradhan, Anirban
Halder, Umesh Chandra
Modulation of amyloid fibrillation of bovine β-lactoglobulin by selective methionine oxidation
title Modulation of amyloid fibrillation of bovine β-lactoglobulin by selective methionine oxidation
title_full Modulation of amyloid fibrillation of bovine β-lactoglobulin by selective methionine oxidation
title_fullStr Modulation of amyloid fibrillation of bovine β-lactoglobulin by selective methionine oxidation
title_full_unstemmed Modulation of amyloid fibrillation of bovine β-lactoglobulin by selective methionine oxidation
title_short Modulation of amyloid fibrillation of bovine β-lactoglobulin by selective methionine oxidation
title_sort modulation of amyloid fibrillation of bovine β-lactoglobulin by selective methionine oxidation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8695858/
https://www.ncbi.nlm.nih.gov/pubmed/35423661
http://dx.doi.org/10.1039/d0ra09060c
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