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FEBS Letters|May 23, 1998
Reconstituted adenine nucleotide translocase forms a channel for small molecules comparable to the mitochondrial permeability transition poreA Rück, M Dolder, T Wallimann, et al.Nature|May 23, 1996
Structure of mitochondrial creatine kinaseK Fritz-Wolf, T Schnyder, T Wallimann, et al.The Journal of Biological Chemistry|October 17, 2001
Mitochondrial creatine kinase and mitochondrial outer membrane porin show a direct interaction that is modulated by calciumU Schlattner, M Dolder, T Wallimann, et al.Molecular and Cellular Biochemistry|April 1, 1994
Compartmentation of ATP synthesis and utilization in smooth muscle: roles of aerobic glycolysis and creatine kinaseY Ishida, I Riesinger, T Wallimann, et al.FEBS Letters|July 19, 1993
Effect of okadaic acid on protein phosphorylation patterns of chicken myogenic cells with special reference to creatine kinaseW Hemmer, M Skarli, J C Perriard, et al.The Biochemical Journal|July 15, 1997
Activation of sea-urchin sperm motility is accompanied by an increase in the creatine kinase exchange fluxF A Dorsten, M Wyss, T Wallimann, et al.Journal of Muscle Research and Cell Motility|August 1, 1992
In situ compartmentation of creatine kinase in intact sarcomeric muscle: the acto-myosin overlap zone as a molecular sieveG Wegmann, E Zanolla, H M Eppenberger, et al.Biomedica Biochimica Acta|January 1, 1986
Myosin light chain functionsM C Schaub, A Jauch, D Walzthoeny, et al.The Journal of Biological Chemistry|June 5, 1990
Functional studies with the octameric and dimeric form of mitochondrial creatine kinase. Differential pH-dependent association of the two oligomeric forms with the inner mitochondrial membraneJ Schlegel, M Wyss, H M Eppenberger, et al.European Cells & Materials|July 19, 2005
Stimulatory effects of creatine on metabolic activity, differentiation and mineralization of primary osteoblast-like cells in monolayer and micromass cell culturesI Gerber, I ap Gwynn, M Alini, et al.Pageof 171