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Biochemistry|December 18, 1984
Mechanism for nucleotide incorporation into steady-state microtubulesM Caplow, B P Brylawski, R ReidThe Journal of Cell Biology|November 1, 1994
The free energy for hydrolysis of a microtubule-bound nucleotide triphosphate is near zero: all of the free energy for hydrolysis is stored in the microtubule latticeM Caplow, R L Ruhlen, J ShanksThe Journal of Biological Chemistry|July 25, 1988
Temperature-jump studies of microtubule dynamic instabilityM Caplow, J Shanks, R L RuhlenThe Journal of Biological Chemistry|December 5, 1986
Differentiation between dynamic instability and end-to-end annealing models for length changes of steady-state microtubulesM Caplow, J Shanks, B P BrylawskiCanadian Journal of Biochemistry and Cell Biology = Revue Canadienne De Biochimie Et Biologie Cellulaire|June 1, 1985
Concerning the location of the GTP hydrolysis site on microtubulesM Caplow, J Shanks, B P BrylawskiThe Journal of Biological Chemistry|October 15, 1985
Concerning the anomalous kinetic behavior of microtubulesM Caplow, J Shanks, B P BrylawskiBiochimica Et Biophysica Acta|August 14, 1980
Uptake of the components of phenylalanylphenylalanine and maltose by intestinal epitheliumC R Shoaf, W D Heizer, M CaplowThe Journal of Biological Chemistry|August 5, 1988
Kinetics and mechanism of microtubule length changes by dynamic instabilityM Caplow, J Shanks, S Breidenbach, et al.Biochemistry|May 27, 1980
Inhibition of microtubule assembly by phosphorylation of microtubule-associated proteinsL Jameson, T Frey, B Zeeberg, et al.Biochemistry|October 3, 1989
Stabilization of microtubules by tubulin-GDP-Pi subunitsM Caplow, R Ruhlen, J Shanks, et al.Pageof 4