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Ubiquitin Conjugation by the N-end Rule Pathway and MRNAs for Its Components Increase in Muscles of Diabetic Rats

Overview
Journal J Clin Invest
Specialty General Medicine
Date 1999 Nov 24
PMID 10562303
Citations 52
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Abstract

Insulin deficiency (e.g., in acute diabetes or fasting) is associated with enhanced protein breakdown in skeletal muscle leading to muscle wasting. Because recent studies have suggested that this increased proteolysis is due to activation of the ubiquitin-proteasome (Ub-proteasome) pathway, we investigated whether diabetes is associated with an increased rate of Ub conjugation to muscle protein. Muscle extracts from streptozotocin-induced insulin-deficient rats contained greater amounts of Ub-conjugated proteins than extracts from control animals and also 40-50% greater rates of conjugation of (125)I-Ub to endogenous muscle proteins. This enhanced Ub-conjugation occurred mainly through the N-end rule pathway that involves E2(14k) and E3alpha. A specific substrate of this pathway, alpha-lactalbumin, was ubiquitinated faster in the diabetic extracts, and a dominant negative form of E2(14k) inhibited this increase in ubiquitination rates. Both E2(14k) and E3alpha were shown to be rate-limiting for Ub conjugation because adding small amounts of either to extracts stimulated Ub conjugation. Furthermore, mRNA for E2(14k) and E3alpha (but not E1) were elevated 2-fold in muscles from diabetic rats, although no significant increase in E2(14k) and E3alpha content could be detected by immunoblot or activity assays. The simplest interpretation of these results is that small increases in both E2(14k) and E3alpha in muscles of insulin-deficient animals together accelerate Ub conjugation and protein degradation by the N-end rule pathway, the same pathway activated in cancer cachexia, sepsis, and hyperthyroidism.

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References
1.
Dardevet D, Sornet C, Taillandier D, Savary I, Attaix D, Grizard J . Sensitivity and protein turnover response to glucocorticoids are different in skeletal muscle from adult and old rats. Lack of regulation of the ubiquitin-proteasome proteolytic pathway in aging. J Clin Invest. 1995; 96(5):2113-9. PMC: 185859. DOI: 10.1172/JCI118264. View

2.
Pepato M, Migliorini R, GOLDBERG A, Kettelhut I . Role of different proteolytic pathways in degradation of muscle protein from streptozotocin-diabetic rats. Am J Physiol. 1996; 271(2 Pt 1):E340-7. DOI: 10.1152/ajpendo.1996.271.2.E340. View

3.
Medina R, Wing S, GOLDBERG A . Increase in levels of polyubiquitin and proteasome mRNA in skeletal muscle during starvation and denervation atrophy. Biochem J. 1995; 307 ( Pt 3):631-7. PMC: 1136697. DOI: 10.1042/bj3070631. View

4.
Solomon V, GOLDBERG A . Importance of the ATP-ubiquitin-proteasome pathway in the degradation of soluble and myofibrillar proteins in rabbit muscle extracts. J Biol Chem. 1996; 271(43):26690-7. DOI: 10.1074/jbc.271.43.26690. View

5.
Temparis S, Asensi M, Taillandier D, Aurousseau E, Larbaud D, Obled A . Increased ATP-ubiquitin-dependent proteolysis in skeletal muscles of tumor-bearing rats. Cancer Res. 1994; 54(21):5568-73. View