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Published on: June 25, 2018
Arsenic disrupts neuronal insulin signaling through increasing free PI3K-p85 and decreasing PI3K activity
Churaibhon Wisessaowapak1, Piyajit Watcharasit2, Jutamaad Satayavivad2
1Laboratory of Pharmacology, Chulabhorn Research Institute, 54 Kamphaeng Phet 6 Rd, Bangkok, 10210, Thailand; Environmental Toxicology Program, Chulabhorn Graduate Institute, 54 Kamphaeng Phet 6 Rd, Bangkok, 10210, Thailand.
Abstract:
Previously, we reported that prolonged arsenic exposure impaired neuronal insulin signaling. Here we have further identified novel molecular mechanisms underlying neuronal insulin signaling impairment by arsenic. Arsenic treatment altered insulin dose-response curve and reduced maximum insulin response in differentiated human neuroblastoma SH-SY5Y cells, suggesting that arsenic hindered neuronal insulin signaling in a non-competitive like manner. Mechanistically, arsenic suppressed insulin receptor (IR) kinase activity, as witnessed by a decreased insulin-activated autophosphorylation of IR at Y1150/1151. Arsenic decreased the level of insulin receptor substrate 1 (IRS1) but increased the protein ratio between PI3K regulatory subunit, p85, and PI3K catalytic subunit, p110. Interestingly, co-immunoprecipitation demonstrated that arsenic did not alter a level of PI3K-p110/PI3K-p85 complex while increased PI3K-p85 levels in a PI3K-p110 depletion supernatant resulted from PI3K-p110 immunoprecipitation. These results indicated that arsenic increased PI3K-p85 which was free from PI3K-p110 binding. In addition, arsenic significantly increased interaction between IRS1 and PI3K-p85 but not PI3K-p110, suggesting that there may be a fraction of free PI3K-p85 interacting with IRS1. In vitro PI3K activity demonstrated that arsenic lowered PI3K activity in both basal and insulin-stimulated conditions. These results suggested that the increase in free PI3K-p85 by arsenic might compete with PI3K heterodimer for the same IRS1 binding site, in turn blocking the activation of its catalytic subunit, PI3K-p110. Taken together, our results provide additional insights into mechanisms underlying the impairment of neuronal insulin signaling by arsenic through the reduction of IR autophosphorylation, the increase in free PI3K-p85, and the impeding of PI3K activity.
Insights
Arsenic exposure impairs neuronal insulin signaling by disrupting insulin receptor activity and increasing free PI3K-p85, which blocks downstream signaling. This study reveals key molecular mechanisms of arsenic
Area of Science:
- Neuroscience
- Toxicology
- Molecular Biology
Background:
- Prolonged arsenic exposure is known to impair neuronal insulin signaling.
- Understanding the precise molecular mechanisms is crucial for addressing arsenic's neurotoxic effects.
- Neuronal insulin signaling plays a vital role in brain function and metabolic regulation.
Purpose of the Study:
- To elucidate novel molecular mechanisms by which arsenic impairs neuronal insulin signaling.
- To investigate the effects of arsenic on key components of the insulin signaling pathway in neurons.
Main Methods:
- Differentiated human neuroblastoma SH-SY5Y cells were used to study arsenic's effects.
- Insulin dose-response curves and Western blotting were employed to assess signaling.
- Co-immunoprecipitation and in vitro kinase assays were performed to analyze protein interactions and enzyme activity.
Main Results:
- Arsenic altered insulin dose-response and reduced maximum insulin response, indicating non-competitive-like hindrance.
- Arsenic suppressed insulin receptor (IR) kinase activity by decreasing autophosphorylation.
- Arsenic increased free PI3K-p85, enhanced IRS1-PI3K-p85 interaction, and reduced PI3K activity, potentially by competing for IRS1 binding sites.
Conclusions:
- Arsenic impairs neuronal insulin signaling through reduced IR autophosphorylation and increased free PI3K-p85.
- The accumulation of free PI3K-p85 impedes PI3K activity by interfering with IRS1 binding.
- These findings provide a deeper mechanistic understanding of arsenic-induced neurotoxicity via insulin signaling disruption.
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