Induction of heat shock proteins may combat insulin resistance

Mark F McCarty1

  • 1Natural Alternatives International, 1185 Linda Vista Dr., San Marcos, CA 92078, USA. mccarty@pantox.com

Medical Hypotheses
|November 29, 2005
PubMed

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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