Insulin-like growth factor I (IGF-I) and growth hormone (GH) exert their anabolic actions by increasing protein synthesis, but only IGF-I has been reported to impede protein breakdown. Using a model of myofibrillar catabolism produced by dexamethasone (Dex) we have reported that IGF-I down-regulates Dex-induced mRNAs for Ubiquitin (Ub) and Ub-conjugating enzymes (E2) in skeletal muscle, whereas GH had no significant effect. In the present study, we used the same model to determine whether IGF-I (0.35 mg/100 g BW) and/or GH (0.3 mg/100 g BW) have effects on proteasome subunit mRNAs in skeletal muscles of rats treated with Dex (0.5 mg/100 g BW) for 3 days. Dex caused significant increases in C-2, -3, and -8 proteasome subunit mRNAs (6.0-, 4.0-, and 6.6-fold increases, respectively). Injections of IGF-I in Dex-treated animals caused significant suppression of transcripts for C-2, -3, and -8 (32%, 42%, and 40%, respectively). GH restored the serum IGF-I levels in Dex treated animals, but caused further increases in proteasome subunit mRNAs (C-2, 35%; C-3, 34.5%; C-8, 33%; C-6, 42%; C-5, 32%; C-9, 37%). Administration of IGF-I in the Dex/GH-treated animals decreased the mRNAs of proteasome subunits in a manner and degree similar to those observed in the Dex/IGF-I group. Surprisingly, injection of GH alone in normal animals increased proteasome subunit mRNAs in skeletal muscle (C-2, 85%; C-3, 109%; C-8, 91%). This effect of GH on proteasome subunit mRNAs was also observed in liver. These findings suggest, therefore, that suppression of Dex-induced expression of proteasome subunit mRNAs in skeletal muscle is one of the mechanisms by which IGF-I exerts its antiproteolytic activity in catabolic states. On the other hand, the biological function of GH in regulating proteasome subunits needs further investigation.

Download full-text PDF

Source
http://dx.doi.org/10.1016/s1096-6374(02)00116-8DOI Listing

Publication Analysis

Top Keywords

proteasome subunit
24
subunit mrnas
24
skeletal muscle
16
mrnas skeletal
12
insulin-like growth
8
growth factor
8
growth hormone
8
igf-i
8
mrnas
8
proteasome
8

Similar Publications

Background: Microglia are the brain resident immune cells that function as immune surveillance and engulf and clear damage-associated molecular patterns (DAMPs), such as misfolded and oligomeric tau (TO) relevant Alzheimer's disease (AD) and prevent nuclear factor-kB (NF-kB) mediated immune-activation. IκBα is an endogenous inhibitor of the NF-kB subunit p50-p65/c-Rel protein complex. IkBα's association is precisely regulated in microglia to prevent excessive NF-kB activation and neuroinflammation, which is one of the hallmarks of AD.

View Article and Find Full Text PDF

Developing Topics.

Alzheimers Dement

December 2024

University of California, San Francisco, San Francisco, CA, USA.

Background: An optimized 6 amino acid peptide (NLSYYT; herein YΦ) derived from the C-terminus of h19S proteasome activator Rpt5 has been shown to activate the 20S proteasome and promote tau degradation. Further analysis of this peptide has identified the highly conserved leucine in position 5 (P5) as a key part of the 20S activation mechanism to drive degradation of tau monomers in the absence of proteasome activator complexes.

Method: Recombinant peptides were used to identify key amino acids required for binding and activating the h20S proteasome.

View Article and Find Full Text PDF

Limb-girdle muscular dystrophy type 2E/R4 (LGMD2E/R4) is a rare disease that currently has no cure. It is caused by defects in the gene, mainly missense mutations, which cause the impairment of the sarcoglycan complex, membrane fragility, and progressive muscle degeneration. Here, we studied the fate of some β-sarcoglycan (β-SG) missense mutants, confirming that, like α-SG missense mutants, they are targeted for degradation through the ubiquitin-proteasome system.

View Article and Find Full Text PDF

Mechanisms of Cbl-Mediated Ubiquitination of Proteins in T and Natural Killer Cells and Effects on Immune Cell Functions.

Life (Basel)

December 2024

The Shraga Segal Department of Microbiology, Immunology and Genetics, Faculty of Health Sciences, Ben Gurion University of the Negev, P.O. Box 653, Beer Sheva 84105, Israel.

Post-translational ubiquitination is an essential mechanism for the regulation of protein stability and function, which contributes to the regulation of the immune system. Cbl, an E3 ubiquitin ligase, is particularly well-characterized in the context of T and NK cell signaling, where it serves as a key regulator of receptor downstream signaling events and as a modulator of cell activation. Cbl promotes the proteasomal degradation of TCR/CD3 subunits as well as the protein kinases Fyn and Lck in T cells.

View Article and Find Full Text PDF

Hypoxia-inducible factors (HIFs) are essential transcription factors that orchestrate cellular responses to oxygen deprivation. HIF-1α, as an unstable subunit of HIF-1, is usually hydroxylated by prolyl hydroxylase domain enzymes under normoxic conditions, leading to ubiquitination and proteasomal degradation, thereby keeping low levels. Instead of hypoxia, sometimes even in normoxia, HIF-1α translocates into the nucleus, dimerizes with HIF-1β to generate HIF-1, and then activates genes involved in adaptive responses such as angiogenesis, metabolic reprogramming, and cellular survival, which presents new challenges and insights into its role in cellular processes.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!