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肌球蛋白调节轻链磷酸化位点突变体的表达可弥补盘基网柄菌RMLC缺失细胞的胞质分裂和发育缺陷。

Expression of a myosin regulatory light chain phosphorylation site mutant complements the cytokinesis and developmental defects of Dictyostelium RMLC null cells.

作者信息

Ostrow B D, Chen P, Chisholm R L

机构信息

Department of Cell, Molecular, and Structural Biology, Northwestern University Medical School, Chicago, Illinois 60611.

出版信息

J Cell Biol. 1994 Dec;127(6 Pt 2):1945-55. doi: 10.1083/jcb.127.6.1945.

Abstract

In a number of systems phosphorylation of the regulatory light chain (RMLC) of myosin regulates the activity of myosin. In smooth muscle and vertebrate nonmuscle systems RMLC phosphorylation is required for contractile activity. In Dictyostelium discoideum phosphorylation of the RMLC regulates both ATPase activity and motor function. We have determined the site of phosphorylation on the Dictyostelium RMLC and used site-directed mutagenesis to replace the phosphorylated serine with an alanine. The mutant light chain was then expressed in RMLC null Dictyostelium cells (mLCR-) from an actin promoter on an integrating vector. The mutant RMLC was expressed at high levels and associated with the myosin heavy chain. RMLC bearing a ser13ala substitution was not phosphorylated in vitro by purified myosin light chain kinase, nor could phosphate be detected on the mutant RMLC in vivo. The mutant myosin had reduced actin-activated ATPase activity, comparable to fully dephosphorylated myosin. Unexpectedly, expression of the mutant RMLC rescued the primary phenotypic defects of the mlcR- cells to the same extent as did expression of wild-type RMLC. These results suggest that while phosphorylation of the Dictyostelium RMLC appears to be tightly regulated in vivo, it is not essential for myosin-dependent cellular functions.

摘要

在许多系统中,肌球蛋白的调节轻链(RMLC)的磷酸化调节肌球蛋白的活性。在平滑肌和脊椎动物非肌肉系统中,RMLC磷酸化是收缩活动所必需的。在盘基网柄菌中,RMLC的磷酸化调节ATP酶活性和运动功能。我们已经确定了盘基网柄菌RMLC上的磷酸化位点,并使用定点诱变将磷酸化的丝氨酸替换为丙氨酸。然后,突变轻链在整合载体上的肌动蛋白启动子的RMLC缺失的盘基网柄菌细胞(mLCR-)中表达。突变的RMLC高水平表达并与肌球蛋白重链相关。带有ser13ala替代的RMLC在体外不能被纯化的肌球蛋白轻链激酶磷酸化,在体内也无法在突变的RMLC上检测到磷酸。突变型肌球蛋白的肌动蛋白激活的ATP酶活性降低,与完全去磷酸化的肌球蛋白相当。出乎意料的是,突变RMLC的表达将mlcR-细胞的主要表型缺陷挽救到了与野生型RMLC表达相同的程度。这些结果表明,虽然盘基网柄菌RMLC的磷酸化在体内似乎受到严格调控,但它对于依赖肌球蛋白的细胞功能并非必不可少。

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