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1.
Fletcher Wheeler, L.* ; Lehmann, M. & Melo-Narváez, M.C: Mechanistic advances and emerging technologies redefining lung aging research. Am. J. Physiol.-Cell Physiol. 330, C1545–C1558 (2026)
2.
Dreher, S.I.* et al.: IGF1 promotes human myotube differentiation toward a mature metabolic and contractile phenotype. Am. J. Physiol.-Cell Physiol. 326, C1462-C1481 (2024)
3.
Lin, Y. ; Dai, R. ; Vogelaar, G. & Rinkevich, Y.: Mini-review: Organ dependency on fascia connective tissue. Am. J. Physiol.-Cell Physiol. 327, C357-C361 (2024)
4.
Maurer, J.* et al.: Redox state and altered pyruvate metabolism contribute to a dose-dependent metformin-induced lactate production of human myotubes. Am. J. Physiol.-Cell Physiol. 325, C1131-C1143 (2023)
5.
Barroso Oquendo, M.* et al.: Pancreatic fat cells of humans with type 2 diabetes display reduced adipogenic and lipolytic activity. Am. J. Physiol.-Cell Physiol. 320, C1000-C1012 (2021)
6.
Hoene, M. ; Runge, H.* ; Häring, H.-U. ; Schleicher, E.D. & Weigert, C.: Interleukin-6 promotes myogenic differentiation of mouse skeletal muscle cells: Role of the STAT3 pathway. Am. J. Physiol.-Cell Physiol. 304, 128-136 (2013)
7.
Scheler, M. et al.: Cytokine response of primary human myotubes in an in vitro exercise model. Am. J. Physiol.-Cell Physiol. 305, C877-C886 (2013)