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Published on: January 4, 2018
Induction of heat shock proteins may combat insulin resistance
1Natural Alternatives International, 1185 Linda Vista Dr., San Marcos, CA 92078, USA. mccarty@pantox.com
Abstract:
The molecular mechanism responsible for obesity-associated insulin resistance has been partially clarified: increased fatty acid levels in muscle fibers promote diacylglycerol synthesis, which activates certain isoforms of protein kinase C (PKC). This in turn triggers a kinase cascade which activates both IkappaB kinase-beta (IKK-beta) and c-Jun N-terminal kinase (JNK), each of which can phosphorylate a key serine residue in IRS-1, rendering it a poor substrate for the activated insulin receptor. Heat shock proteins Hsp27 and Hsp72 have the potential to prevent the activation of IKK-beta and JNK, respectively; this suggests that induction of heat shock proteins may blunt the adverse impact of fat overexposure on insulin function. Indeed, bimoclomol--a heat shock protein co-inducer being developed for treatment of diabetic neuropathy--and lipoic acid--suspected to be a heat shock protein inducer--have each demonstrated favorable effects on the insulin sensitivity of obese rodents, and parenteral lipoic acid is reported to improve the insulin sensitivity of type 2 diabetics. Moreover, there is reason to believe that heat shock protein induction may have a favorable impact on the microvascular complications of diabetes, and on the increased risk for macrovascular disease associated with diabetes and insulin resistance syndrome. Heat shock protein induction may also have potential for preventing or treating neurodegenerative disorders, controlling inflammation, and possibly even slowing the aging process. The possible complementarity of bimoclomol and lipoic acid for heat shock protein induction should be assessed, and further efforts to identify well-tolerated agents active in this regard are warranted.
Insights
Heat shock proteins may improve insulin sensitivity by preventing key signaling pathway disruptions caused by excess fatty acids. Inducing these proteins could offer therapeutic benefits for obesity and diabetes complications.
Area of Science:
- Molecular Biology
- Metabolic Disease Research
Background:
- Obesity-associated insulin resistance involves increased fatty acids activating protein kinase C (PKC), leading to IKK-beta and JNK activation.
- Activated IKK-beta and JNK phosphorylate IRS-1, impairing insulin receptor signaling.
Purpose of the Study:
- To explore the potential of heat shock proteins (Hsp27, Hsp72) in mitigating obesity-induced insulin resistance.
- To investigate the therapeutic implications of heat shock protein induction for metabolic and other chronic diseases.
Main Methods:
- The study discusses the molecular mechanisms involving protein kinase C (PKC), IkappaB kinase-beta (IKK-beta), c-Jun N-terminal kinase (JNK), and insulin receptor substrate-1 (IRS-1).
- It reviews evidence from studies using heat shock protein co-inducers like bimoclomol and lipoic acid in obese rodents and type 2 diabetics.
Main Results:
- Heat shock proteins Hsp27 and Hsp72 can inhibit IKK-beta and JNK activation, respectively.
- Bimoclomol and lipoic acid have shown positive effects on insulin sensitivity in preclinical models and human studies.
- Heat shock protein induction may benefit diabetic microvascular and macrovascular complications.
Conclusions:
- Heat shock protein induction presents a promising therapeutic strategy for insulin resistance and related conditions.
- Further research into heat shock protein inducers like bimoclomol and lipoic acid is warranted for various chronic diseases, including neurodegeneration and aging.
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