Journal of Applied Physiology Journal of Applied Physiology
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J Appl Physiol 105: 308-315, 2008. First published May 8, 2008; doi:10.1152/japplphysiol.00897.2007
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INNOVATIVE METHODOLOGY

Technique for quantitative RT-PCR analysis directly from single muscle fibers

Michael J. Wacker,1 Michelle M. Tehel,2 and Philip M. Gallagher2

1Department of Basic Medical Science, University of Missouri-Kansas City School of Medicine, Kansas City; and 2Applied Physiology Laboratory, University of Kansas Lawrence, Kansas

Submitted 27 August 2007 ; accepted in final form 30 April 2008

The use of single-cell quantitative RT-PCR has greatly aided the study of gene expression in fields such as muscle physiology. For this study, we hypothesized that single muscle fibers from a biopsy can be placed directly into the reverse transcription buffer and that gene expression data can be obtained without having to first extract the RNA. To test this hypothesis, biopsies were taken from the vastus lateralis of five male subjects. Single muscle fibers were isolated and underwent RNA isolation (technique 1) or placed directly into reverse transcription buffer (technique 2). After cDNA conversion, individual fiber cDNA was pooled and quantitative PCR was performed using primer-probes for β2-microglobulin, glyceraldehyde-3-phosphate dehydrogenase, insulin-like growth factor I receptor, and glucose transporter subtype 4. The no RNA extraction method provided similar quantitative PCR data as that of the RNA extraction method. A third technique was also tested in which we used one-quarter of an individual fiber's cDNA for PCR (not pooled) and the average coefficient of variation between fibers was <8% (cycle threshold value) for all genes studied. The no RNA extraction technique was tested on isolated muscle fibers using a gene known to increase after exercise (pyruvate dehydrogenase kinase 4). We observed a 13.9-fold change in expression after resistance exercise, which is consistent with what has been previously observed. These results demonstrate a successful method for gene expression analysis directly from single muscle fibers.

skeletal muscle; gene expression; glucose transporter subtype 4; insulin-like growth factor I receptor; quantative reverse transcription-polymerase chain reaction; pyruvate dehydrogenase kinase-4



Address for reprint requests and other correspondence: M. Wacker, Univ. of Missouri-Kansas City School of Medicine, Dept. of Basic Medical Sciences, 2411 Holmes St., M4-425, Kansas City, MO 64108 (e-mail: wackerm{at}umkc.edu)




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