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Progress in Clinical and Biological Research|January 1, 1977
The contractile basis of amoeboid movement III. Structure and dynamics of motile extracts and membrane fragments from Dictyostelium discoideum and Amoeba proteusD L Taylor, J S Condeelis, J A RhodesMedical Physics|June 1, 1995
An algorithm for improving the accuracy of discrete ROI integralsD L Hauser, P C Wayner, D L TaylorThe Journal of Cell Biology|July 1, 1976
The contractile basis of ameboid movement. II. Structure and contractility of motile extracts and plasmalemma-ectoplasm ghostsD L Taylor, J A Rhodes, S A HammondThe Journal of Cell Biology|August 1, 1980
Contractile basis of ameboid movement. VII. The distribution of fluorescently labeled actin in living amebasD L Taylor, Y L Wang, J M HeipleThe Journal of Biological Chemistry|April 29, 1994
A genetically engineered, protein-based optical biosensor of myosin II regulatory light chain phosphorylationP L Post, K M Trybus, D L TaylorThe Journal of Cell Biology|March 1, 1983
Distribution of actin in spreading macrophages: a comparative study on living and fixed cellsP A Amato, E R Unanue, D L TaylorThe Journal of Antimicrobial Chemotherapy|January 1, 1989
Cytomegalovirus and the acquired immunodeficiency syndromeA S Tyms, D L Taylor, J M ParkinThe Journal of Cell Biology|July 1, 1983
Abundance, relative gelation activity, and distribution of the 95,000-dalton actin-binding protein from Dictyostelium discoideumJ Brier, M Fechheimer, J Swanson, et al.Current Opinion in Biotechnology|February 13, 2001
Real-time molecular and cellular analysis: the new frontier of drug discoveryD L Taylor, E S Woo, K A GiulianoMolecular Biology of the Cell|December 1, 1995
A fluorescent protein biosensor of myosin II regulatory light chain phosphorylation reports a gradient of phosphorylated myosin II in migrating cellsP L Post, R L DeBiasio, D L TaylorPageof 20