| Literature DB >> 25644636 |
Chae Jin Lim1, Jung Eun Jeon2, Se Kyoo Jeong2, Seok Jeong Yoon3, Seon Deok Kwon3, Jina Lim3, Keedon Park3, Dae Yong Kim4, Jeong Keun Ahn5, Bong-Woo Kim6.
Abstract
Based on the potential beneficial effects of growth hormone releasing peptide (GHRP)-6 on muscle functions, a newly synthesized GHRP-6-biotin conjugate was tested on cultured myoblast cells. Increased expression of myogenic marker proteins was observed in GHRP-6-biotin conjugate-treated cells. Additionally, increased expression levels of insulin-like growth factor-1 and collagen type I were observed. Furthermore, GHRP-6-biotin conjugate-treated cells showed increased metabolic activity, as indicated by increased concentrations of energy metabolites, such as ATP and lactate, and increased enzymatic activity of lactate dehydrogenase and creatine kinase. Finally, binding protein analysis suggested few candidate proteins, including desmin, actin, and zinc finger protein 691 as potential targets for GHRP6-biotin conjugate action. These results suggest that the newly synthesized GHRP-6-biotin conjugate has myogenic stimulating activity through, at least in part, by stimulating collagen type I synthesis and several key proteins. Practical applications of the GHRP-6-biotin conjugate could include improving muscle condition.Entities:
Mesh:
Substances:
Year: 2015 PMID: 25644636 PMCID: PMC4641233 DOI: 10.5483/bmbrep.2015.48.9.258
Source DB: PubMed Journal: BMB Rep ISSN: 1976-6696 Impact factor: 4.778
Fig. 1.Effects of a newly synthesized GHRP-6-biotin conjugate on C2C12 myocytes differentiation. (A) Confluent myoblasts were incubated for the indicated period of time with (+) or without (−) 50 μM GHRP-6-biotin conjugates. Whole-cell lysate was analyzed by immunoblotting with anti-myosin heavy chain I (MyHC I), myogenin, MG53, and caveolin-3. β-Actin and Ponceau S staining were used as a loading control. (B) C2C12 myoblasts were differentiated for 48 h with the indicated concentrations of GHRP-6-biotin conjugates. Equally loading of protein was checked by comparison with β-actin. These experiments were performed independently three times. Myogenesis was monitored using MyHC I immunofluorescence and DAPI (C), the myogenic index (D). The myogenic index was determined by counting the number of the nuclei in MyHC I-positive cells. All data are presented as means ± SE. t-test. **P < 0.01.
Fig. 2.Effects of GHRP-6-biotin conjugate on the secretion of IGF-1 and the production of collagen type I in C2C12 myocytes. (A) IGF-1 levels in differentiation medium-cultured C2C12 cell-conditioned medium were measured as described in the Methods. C2C12 myoblasts were differentiated for 24 h in GHRP-6-biotin conjugates, biotin, and GHRP-6-containing differentiation medium. (B) Confluent C2C12 myoblasts were incubated for 24 h with the indicated concentrations of the GHRP-6-biotin conjugates in differentiation medium. Collagen I levels in the medium were analyzed with a collagen type I ELISA assay. (C) Confluent C2C12 myoblasts were incubated for 24 h with 50 μM biotin, 50 μM GHRP-6, 50 μM GHRP-6-biotin conjugates, and collagen I levels in medium were measured. (D) Confluent C2C12 myoblasts were differentiated for 24 h in culture dish coated with collagen I, gelatin, and BSA and their differentiation was analyzed by immunoblotting with specific antibodies. (E) The ratio of myogenic markers/actin was analyzed statistically with three independent experiments. All data are shown as means ± SE. t-test and analysis of variance. *P < 0.05 and **P < 0.01.
Fig. 3.Increase in cell metabolites with the GHRP-6-biotin conjugate in C2C12 myocytes. Fully differentiated C2C12 myocytes were treated with 100 μM GHRP-6-biotin conjugates. Intracellular energy metabolites, ATP (A) and lactate (B) were measured in whole-cell lysates. Creatine kinase activity (C) and lactate dehydrogenase activity (D) were also assessed. (E) Expression ratio of alpha-actin vs. beta-actin was measured by immunoblot. Lower panel; densitometric analysis result. All data are shown as means ± SE. t-test. **P < 0.01.
Fig. 4.Identification of GHRP-6-biotin conjugate binding proteins in C2C12 myocytes. (A) Confluent C2C12 myoblasts were differentiated for 24 h and treated with 50 μM GHRP6-biotin conjugates for 1 h. Whole-cell lysates were precipitated with immobilized streptavidin-agarose beads after cross-linking for 15 min with disuccinimidyl suberate (DSS). The precipitates were resolved by SDS-PAGE and binding partners of GHRP-6-biotin conjugates were analyzed by silver staining or Ponceau S staining. (B) MS/MS spectra of desmin protein isolated from GHRP-6-biotin conjugateproteins analysis. (C) Binding of GHRP-6-biotin conjugates with desmin using a sandwich ELISA, described in the Methods.