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Bone|October 11, 2015
Skeletal muscle as an endocrine organ: PGC-1α, myokines and exerciseSvenia Schnyder, Christoph HandschinCold Spring Harbor Perspectives in Medicine|March 1, 2017
Role of Nuclear Receptors in Exercise-Induced Muscle AdaptationsBarbara Kupr, Svenia Schnyder, Christoph HandschinBiochimie|January 7, 2017
Coregulator-mediated control of skeletal muscle plasticity - A mini-reviewSvenia Schnyder, Barbara Kupr, Christoph HandschinPlos One|July 28, 2016
Loss of Renal Tubular PGC-1α Exacerbates Diet-Induced Renal Steatosis and Age-Related Urinary Sodium Excretion in MiceKristoffer Svensson, Svenia Schnyder, Bettina Cardel, et al.American Journal of Physiology. Endocrinology and Metabolism|February 23, 2017
Muscle PGC-1α is required for long-term systemic and local adaptations to a ketogenic diet in miceSvenia Schnyder, Kristoffer Svensson, Bettina Cardel, et al.Aging Cell|October 26, 2017
PGC-1α affects aging-related changes in muscle and motor function by modulating specific exercise-mediated changes in old miceJonathan F Gill, Gesa Santos, Svenia Schnyder, et al.The Journal of Biological Chemistry|May 20, 2015
Resveratrol and SRT1720 Elicit Differential Effects in Metabolic Organs and Modulate Systemic Parameters Independently of Skeletal Muscle Peroxisome Proliferator-activated Receptor γ Co-activator 1α (PGC-1α)Kristoffer Svensson, Svenia Schnyder, Verena Albert, et al.Aging Cell|July 11, 2019
Peroxisome proliferator-activated receptor γ coactivator 1α regulates mitochondrial calcium homeostasis, sarcoplasmic reticulum stress, and cell death to mitigate skeletal muscle agingJonathan F Gill, Julien Delezie, Gesa Santos, et al.Cell Reports|May 3, 2019
Anaerobic Glycolysis Maintains the Glomerular Filtration Barrier Independent of Mitochondrial Metabolism and DynamicsPaul T Brinkkoetter, Tillmann Bork, Sarah Salou, et al.Pageof 1