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Tissue Engineering. Part A|October 22, 2014
Streptomycin decreases the functional shift to a slow phenotype induced by electrical stimulation in engineered muscleAlastair Khodabukus, Keith BaarJournal of Cellular Physiology|November 1, 2014
Glucose concentration and streptomycin alter in vitro muscle function and metabolismAlastair Khodabukus, Keith BaarJournal of Cellular Biochemistry|August 23, 2014
The effect of serum origin on tissue engineered skeletal muscle functionAlastair Khodabukus, Keith BaarCells, Tissues, Organs|November 9, 2016
Factors That Affect Tissue-Engineered Skeletal Muscle Function and PhysiologyAlastair Khodabukus, Keith BaarTissue Engineering. Part C, Methods|November 19, 2011
Defined electrical stimulation emphasizing excitability for the development and testing of engineered skeletal muscleAlastair Khodabukus, Keith BaarJournal of Cellular Physiology|October 23, 2014
Contractile and metabolic properties of engineered skeletal muscle derived from slow and fast phenotype mouse muscleAlastair Khodabukus, Keith BaarTissue Engineering. Part C, Methods|February 5, 2009
Regulating fibrinolysis to engineer skeletal muscle from the C2C12 cell lineAlastair Khodabukus, Keith BaarExercise and Sport Sciences Reviews|October 9, 2007
Engineered muscle: a tool for studying muscle physiology and functionAlastair Khodabukus, Jennifer Z Paxton, Kenneth Donnelly, et al.Journal of Cellular Physiology|April 11, 2015
Role of contraction duration in inducing fast-to-slow contractile and metabolic protein and functional changes in engineered muscleAlastair Khodabukus, Leslie M Baehr, Sue C Bodine, et al.Tissue Engineering. Part C, Methods|October 8, 2009
A novel bioreactor for stimulating skeletal muscle in vitroKenneth Donnelly, Alastair Khodabukus, Andrew Philp, et al.Pageof 17