Proteasome inhibition in skeletal muscle cells unmasks metabolic derangements in type 2 diabetes

Author:

Al-Khalili Lubna1,de Castro Barbosa Thais2,Östling Jörgen3,Massart Julie1,Cuesta Pablo Garrido14,Osler Megan E.1,Katayama Mutsumi1,Nyström Ann-Christin3,Oscarsson Jan3,Zierath Juleen R.12

Affiliation:

1. Department of Molecular Medicine and Surgery, Karolinska Institutet, Stockholm, Sweden;

2. Department of Physiology and Pharmacology, Karolinska Institutet, Stockholm, Sweden;

3. AstraZeneca Research and Development, Mölndal, Sweden; and

4. Department of Functional Biology, Physiology Area, University of Oviedo, Oviedo, Spain

Abstract

Two-dimensional difference gel electrophoresis (2-D DIGE)-based proteome analysis has revealed intrinsic insulin resistance in myotubes derived from type 2 diabetic patients. Using 2-D DIGE-based proteome analysis, we identified a subset of insulin-resistant proteins involved in protein turnover in skeletal muscle of type 2 diabetic patients, suggesting aberrant regulation of the protein homeostasis maintenance system underlying metabolic disease. We then validated the role of the ubiquitin-proteasome system (UPS) in myotubes to investigate whether impaired proteasome function may lead to metabolic arrest or insulin resistance. Myotubes derived from muscle biopsies obtained from people with normal glucose tolerance (NGT) or type 2 diabetes were exposed to the proteasome inhibitor bortezomib (BZ; Velcade) without or with insulin. BZ exposure increased protein carbonylation and lactate production yet impaired protein synthesis and UPS function in myotubes from type 2 diabetic patients, marking the existence of an insulin-resistant signature that was retained in cultured myotubes. In conclusion, BZ treatment further exacerbates insulin resistance and unmasks intrinsic features of metabolic disease in myotubes derived from type 2 diabetic patients. Our results highlight the existence of a confounding inherent abnormality in cellular protein dynamics in metabolic disease, which is uncovered through concurrent inhibition of the proteasome system.

Publisher

American Physiological Society

Subject

Cell Biology,Physiology

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