Sesamin suppresses advanced glycation end products induced microglial reactivity using BV2 microglial cell line as a model.

Brain Res Bull

Thailand Excellence Center for Tissue Engineering and Stem Cells, Department of Biochemistry, Faculty of Medicine, Chiang Mai University, Chiang Mai, 50200, Thailand. Electronic address:

Published: July 2021

AI Article Synopsis

  • * Advanced glycation end products (AGEs) from high blood sugar can induce harmful microglial activity, which contributes to brain injury in diabetic patients.
  • * The study shows that sesamin, found in sesame oil, may reduce inflammation in microglia caused by AGEs by inhibiting specific signaling pathways, suggesting it could serve as a potential treatment to mitigate neuroinflammation related to T2DM and AD.

Article Abstract

Neuroinflammation-mediated microglial reactivity is a major process, which explains the increased risk of Alzheimer's disease (AD) development in patients with Type 2 diabetes mellitus (T2DM). Advanced glycation end products (AGEs), formed by hyperglycemic condition in diabetes, is characterized as an intermediary of brain injury with diabetes through induction of microglial reactivity. Here, we explored the effect of AGEs on microglial reactivity using BV2 as a model. The NF-κB, p38 and JNK pathways were found to be important mechanism in AGEs-induced BV2 microglial reactivity. NF-κB inhibitor (BAY-11-7082), p38 inhibitor (SB203580) and JNK inhibitor (SP600125) exhibited the potential inhibition of AGEs-induced NO production. We also found that the sesamin, a major lignan found in sesame seed oils, exerts an anti-inflammatory effect under AGEs-induced microglial reactivity via suppressing the phosphorylation of NF-κB, p38 and JNK pathways. Moreover, sesamin also ameliorated AGEs-induced-receptor for advanced glycation end products (RAGE) expression. Taken together, sesamin may be a promising phytochemical compound to delay inflammatory progress by AGEs microglia function. Similarly, inhibition of AGEs-induced microglial reactivity might be potential therapeutic targets of neuroinflammation-based mechanisms in T2DM link progressive AD.

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Source
http://dx.doi.org/10.1016/j.brainresbull.2021.04.012DOI Listing

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