The effect of the S14A mutation on the conformation and thermostability of Saccharomyces cerevisiae G-actin and its interaction with adenine nucleotides

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Abstract

The actin Ser14 hydroxyl is one of a number of ligands that binds to the γ-phosphate of ATP thereby stabilizing the actin ATP complex. In yeast actin, conversion of Ser14 to Ala (S14A), causes a temperature-sensitive phenotype in vivo and temperature-sensitive polymerization defects in vitro (Chen, X., and Rubenstein, P. A. (1995) J. Biol. Chem. 270, 11406-11414). Here, using a new luciferase-based procedure, we show that the mutation results in a 40-60-fold decrease in actin's affinity for ATP. The mutation causes a decrease in the intrinsic ATPase activity of both Ca- and Mg-G- actin at 30 °C and alters the protease susceptibility of sites on subdomain 2. Ca-S14A-actin but not Mg-S14A-actin binds etheno-ATP at 37 °C. Intrinsic tryptophan fluorescence measurements show that at 37 °C, Mg-S14A-actin but not the calcium form unfolds. CD measurements show the mutation causes a decrease in the apparent denaturation temperature for Ca-actin from 57 to 45 °C and for the magnesium form a decrease from 52 to 40 °C. Based on a re- examination of actin's crystal structure coordinates, we propose that the Ser14 hydroxyl forms a polar bridge between the ATP γ-phosphate and the amide nitrogen of Gly74, thus conferring additional stability on the actin small domain.

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Chen, X., Peng, J., Pedram, M., Swenson, C. A., & Rubenstein, P. A. (1995). The effect of the S14A mutation on the conformation and thermostability of Saccharomyces cerevisiae G-actin and its interaction with adenine nucleotides. Journal of Biological Chemistry, 270(19), 11415–11423. https://doi.org/10.1074/jbc.270.19.11415

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