REDD1 induction regulates the skeletal muscle gene expression signature following acute aerobic exercise

Author:

Gordon Bradley S.12,Steiner Jennifer L.3,Rossetti Michael L.12,Qiao Shuxi45,Ellisen Leif W.45,Govindarajan Subramaniam S.6,Eroshkin Alexey M.7,Williamson David L.8,Coen Paul M.69ORCID

Affiliation:

1. Department of Nutrition, Food, and Exercise Science, Florida State University, Tallahassee, Florida

2. Institute of Exercise Physiology and Wellness, University of Central Florida, Orlando, Florida

3. Department of Cellular and Molecular Physiology, Pennsylvania State University College of Medicine, Hershey, Pennsylvania

4. Massachusetts General Hospital Cancer Center, Boston, Massachusetts

5. Harvard Medical School, Boston, Massachusetts

6. Sanford Burnham Prebys Medical Discovery Institute, Orlando, Florida

7. Sanford Burnham Prebys Medical Discovery Institute, La Jolla, California

8. Kinesiology Program, School of Behavioral Sciences and Education, Pennsylvania State University-Harrisburg, Middletown, Pennsylvania

9. Translational Research Institute for Metabolism and Diabetes, Florida Hospital, Orlando, Florida

Abstract

The metabolic stress placed on skeletal muscle by aerobic exercise promotes acute and long-term health benefits in part through changes in gene expression. However, the transducers that mediate altered gene expression signatures have not been completely elucidated. Regulated in development and DNA damage 1 (REDD1) is a stress-induced protein whose expression is transiently increased in skeletal muscle following acute aerobic exercise. However, the role of this induction remains unclear. Because REDD1 altered gene expression in other model systems, we sought to determine whether REDD1 induction following acute exercise altered the gene expression signature in muscle. To do this, wild-type and REDD1-null mice were randomized to remain sedentary or undergo a bout of acute treadmill exercise. Exercised mice recovered for 1, 3, or 6 h before euthanization. Acute exercise induced a transient increase in REDD1 protein expression within the plantaris only at 1 h postexercise, and the induction occurred in both cytosolic and nuclear fractions. At this time point, global changes in gene expression were surveyed using microarray. REDD1 induction was required for the exercise-induced change in expression of 24 genes. Validation by RT-PCR confirmed that the exercise-mediated changes in genes related to exercise capacity, muscle protein metabolism, neuromuscular junction remodeling, and Metformin action were negated in REDD1-null mice. Finally, the exercise-mediated induction of REDD1 was partially dependent upon glucocorticoid receptor activation. In all, these data show that REDD1 induction regulates the exercise-mediated change in a distinct set of genes within skeletal muscle.

Funder

HHS | National Institutes of Health (NIH)

HHS | NIH | National Cancer Institute (NCI)

Publisher

American Physiological Society

Subject

Physiology (medical),Physiology,Endocrinology, Diabetes and Metabolism

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