Myoblast replication is reduced in the IUGR fetus despite maintained proliferative capacity in vitro

Author:

Soto Susan M1,Blake Amy C1,Wesolowski Stephanie R1,Rozance Paul J1,Barthel Kristen B2,Gao Bifeng3,Hetrick Byron4,McCurdy Carrie E4,Garza Natalia G1,Hay William W1,Leinwand Leslie A2,Friedman Jacob E1,Brown Laura D1

Affiliation:

1. 1Department of PediatricsUniversity of Colorado School of Medicine, Perinatal Research Center, Aurora, Colorado, USA

2. 2Department of MolecularCellular, and Developmental Biology, University of Colorado Boulder, BioFrontiers Institute, Boulder, Colorado, USA

3. 3Department of MedicineUniversity of Colorado School of Medicine, Aurora, Colorado, USA

4. 4Department of Human PhysiologyUniversity of Oregon, Eugene, Oregon, USA

Abstract

Adults who were affected by intrauterine growth restriction (IUGR) suffer from reductions in muscle mass and insulin resistance, suggesting muscle growth may be restricted by molecular events that occur during fetal development. To explore the basis of restricted fetal muscle growth, we used a sheep model of progressive placental insufficiency-induced IUGR to assess myoblast proliferation within intact skeletal muscle in vivo and isolated myoblasts stimulated with insulin in vitro. Gastrocnemius and soleus muscle weights were reduced by 25% in IUGR fetuses compared to those in controls (CON). The ratio of PAX7+ nuclei (a marker of myoblasts) to total nuclei was maintained in IUGR muscle compared to CON, but the fraction of PAX7+ myoblasts that also expressed Ki-67 (a marker of cellular proliferation) was reduced by 23%. Despite reduced proliferation in vivo, fetal myoblasts isolated from IUGR biceps femoris and cultured in enriched media in vitro responded robustly to insulin in a dose- and time-dependent manner to increase proliferation. Similarly, insulin stimulation of IUGR myoblasts upregulated key cell cycle genes and DNA replication. There were no differences in the expression of myogenic regulatory transcription factors that drive commitment to muscle differentiation between CON and IUGR groups. These results demonstrate that the molecular machinery necessary for transcriptional control of proliferation remains intact in IUGR fetal myoblasts, indicating that in vivo factors such as reduced insulin and IGF1, hypoxia and/or elevated counter-regulatory hormones may be inhibiting muscle growth in IUGR fetuses.

Publisher

Bioscientifica

Subject

Endocrinology,Endocrinology, Diabetes and Metabolism

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