Glycation-Induced Structural Alteration in Biomolecules

Hyperglycaemia leads to an accumulation of harmful substances in the body due to a process known as glycation. In this process, carbonyl groups of sugars interact with the amino groups of other biomolecules, ultimately resulting in the formation of advanced glycation end products. These products hav...

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Main Authors: Dinesh Kumar, Ahmad Ali
Format: Article
Language:English
Published: MDPI AG 2024-04-01
Series:Proceedings
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Online Access:https://www.mdpi.com/2504-3900/103/1/31
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author Dinesh Kumar
Ahmad Ali
author_facet Dinesh Kumar
Ahmad Ali
author_sort Dinesh Kumar
collection DOAJ
description Hyperglycaemia leads to an accumulation of harmful substances in the body due to a process known as glycation. In this process, carbonyl groups of sugars interact with the amino groups of other biomolecules, ultimately resulting in the formation of advanced glycation end products. These products have been implicated in various pathophysiological conditions like diabetes, Parkinson’s, Alzheimer’s, cataracts, etc. Although the exact mechanism by which AGEs bring about changes in the structure of biomolecules is not known, it is assumed that cross-linking, aggregation, oxidation, and precipitation of proteins are some probable processes that are responsible for the structural and functional changes in biomolecules. In our study, we have used glucose and BSA as the in vitro model system to study the structural alterations they produce and the reversal of these alterations induced by natural products. A range of spectroscopic and electrophoretic tools were used to assess the alteration in BSA structure. The amounts of glycation products were also quantified by colourimetric and spectrofluorometric methods. The results indicate that glucose induces severe changes in the conformation of BSA and the presence of thymoquinone suppresses these alterations. Similarly, a significant amount of glycation products were generated in the in vitro system and were inhibited by the natural product. It can be concluded that glucose brings about conformational changes in proteins and causes the accumulation of glycation products during sustained hyperglycaemia.
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spelling doaj-art-74e9441b668e4d8f91ad7a6bdfd792302025-08-20T03:44:04ZengMDPI AGProceedings2504-39002024-04-0110313110.3390/proceedings2024103031Glycation-Induced Structural Alteration in BiomoleculesDinesh Kumar0Ahmad Ali1Department of Life Sciences, University of Mumbai Vidyanagari, Mumbai 400098, IndiaDepartment of Life Sciences, University of Mumbai Vidyanagari, Mumbai 400098, IndiaHyperglycaemia leads to an accumulation of harmful substances in the body due to a process known as glycation. In this process, carbonyl groups of sugars interact with the amino groups of other biomolecules, ultimately resulting in the formation of advanced glycation end products. These products have been implicated in various pathophysiological conditions like diabetes, Parkinson’s, Alzheimer’s, cataracts, etc. Although the exact mechanism by which AGEs bring about changes in the structure of biomolecules is not known, it is assumed that cross-linking, aggregation, oxidation, and precipitation of proteins are some probable processes that are responsible for the structural and functional changes in biomolecules. In our study, we have used glucose and BSA as the in vitro model system to study the structural alterations they produce and the reversal of these alterations induced by natural products. A range of spectroscopic and electrophoretic tools were used to assess the alteration in BSA structure. The amounts of glycation products were also quantified by colourimetric and spectrofluorometric methods. The results indicate that glucose induces severe changes in the conformation of BSA and the presence of thymoquinone suppresses these alterations. Similarly, a significant amount of glycation products were generated in the in vitro system and were inhibited by the natural product. It can be concluded that glucose brings about conformational changes in proteins and causes the accumulation of glycation products during sustained hyperglycaemia.https://www.mdpi.com/2504-3900/103/1/31glycationaggregationthymoquinoneBSA
spellingShingle Dinesh Kumar
Ahmad Ali
Glycation-Induced Structural Alteration in Biomolecules
Proceedings
glycation
aggregation
thymoquinone
BSA
title Glycation-Induced Structural Alteration in Biomolecules
title_full Glycation-Induced Structural Alteration in Biomolecules
title_fullStr Glycation-Induced Structural Alteration in Biomolecules
title_full_unstemmed Glycation-Induced Structural Alteration in Biomolecules
title_short Glycation-Induced Structural Alteration in Biomolecules
title_sort glycation induced structural alteration in biomolecules
topic glycation
aggregation
thymoquinone
BSA
url https://www.mdpi.com/2504-3900/103/1/31
work_keys_str_mv AT dineshkumar glycationinducedstructuralalterationinbiomolecules
AT ahmadali glycationinducedstructuralalterationinbiomolecules