PDF) Evidence of myomiR regulation of the pentose phosphate pathway during mechanical load‐induced hypertrophy

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PDF) Evidence of myomiR regulation of the pentose phosphate pathway during  mechanical load‐induced hypertrophy
NAD(H) and NADP(H) Redox Couples and Cellular Energy Metabolism
PDF) Evidence of myomiR regulation of the pentose phosphate pathway during  mechanical load‐induced hypertrophy
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PDF) Evidence of myomiR regulation of the pentose phosphate pathway during  mechanical load‐induced hypertrophy
Going nuclear: Molecular adaptations to exercise mediated by myonuclei - ScienceDirect
PDF) Evidence of myomiR regulation of the pentose phosphate pathway during  mechanical load‐induced hypertrophy
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PDF) Evidence of myomiR regulation of the pentose phosphate pathway during  mechanical load‐induced hypertrophy
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PDF) Evidence of myomiR regulation of the pentose phosphate pathway during  mechanical load‐induced hypertrophy
MicroRNA-1 and microRNA-133a expression are decreased during skeletal muscle hypertrophy
PDF) Evidence of myomiR regulation of the pentose phosphate pathway during  mechanical load‐induced hypertrophy
Alterations in Energy/Redox Metabolism Induced by Mitochondrial and Environmental Toxins: A Specific Role for Glucose-6-Phosphate-Dehydrogenase and the Pentose Phosphate Pathway in Paraquat Toxicity
PDF) Evidence of myomiR regulation of the pentose phosphate pathway during  mechanical load‐induced hypertrophy
The pentose phosphate pathway in regenerating skeletal muscle. - Abstract - Europe PMC
PDF) Evidence of myomiR regulation of the pentose phosphate pathway during  mechanical load‐induced hypertrophy
Multi-transcriptome analysis following an acute skeletal muscle growth stimulus yields tools for discerning global and MYC regulatory networks - ScienceDirect
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