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Effect of Pholiota nameko Polysaccharides Inhibiting Methylglyoxal-Induced Glycation Damage In Vitro.


ABSTRACT: Advanced glycation end products (AGEs) can induce oxidative stress and inflammation. AGEs are major risk factors for the development of many aging-related diseases, such as cancer and diabetes. In this study, Pholiota nameko polysaccharides (PNPs) were prepared from water extract of P. nameko via graded alcohol precipitation (40%, 60%, and 80% v/v). We explored the in vitro antiglycation ability of the PNPs and inhibition of methylglyoxal (MG)-induced Hs68 cell damage. In a bovine serum albumin (BSA) glycation system, PNPs significantly inhibited the formation of Amadori products. Fluorescence spectrophotometry revealed that the PNPs trapped MG and reduced MG-induced changes in functional groups (carbonyl and ε-NH2) in the BSA. Pretreating Hs68 cells with PNPs enhanced the cell survival rate and protected against MG-induced cell damage. This was due to decreased intracellular ROS content. PNPs thus mitigate skin cell damage and oxidative stress resulting from glycation stress, making them a potential raw material for antiaging-related skincare products.

SUBMITTER: Lin H 

PROVIDER: S-EPMC8533542 | biostudies-literature | 2021 Oct

REPOSITORIES: biostudies-literature

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Effect of <i>Pholiota nameko</i> Polysaccharides Inhibiting Methylglyoxal-Induced Glycation Damage In Vitro.

Lin His H   Lin Ting-Yun TY   Lin Jer-An JA   Cheng Kuan-Chen KC   Santoso Shella Permatasari SP   Chou Chun-Hsu CH   Hsieh Chang-Wei CW   Hsieh Chang-Wei CW  

Antioxidants (Basel, Switzerland) 20211010 10


Advanced glycation end products (AGEs) can induce oxidative stress and inflammation. AGEs are major risk factors for the development of many aging-related diseases, such as cancer and diabetes. In this study, <i>Pholiota nameko</i> polysaccharides (PNPs) were prepared from water extract of <i>P. nameko</i> via graded alcohol precipitation (40%, 60%, and 80% <i>v</i>/<i>v</i>). We explored the in vitro antiglycation ability of the PNPs and inhibition of methylglyoxal (MG)-induced Hs68 cell damage  ...[more]

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