CA2+-REGULATED DYNAMIC COMPARTMENTALIZATION OF CALMODULIN IN LIVING SMOOTH-MUSCLE CELLS

被引:94
作者
LUBYPHELPS, K
HORI, M
PHELPS, JM
WON, D
机构
[1] Department of Physiology, Texas Univ. Southwestern Med. Center, Dallas
关键词
D O I
10.1074/jbc.270.37.21532
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A key assumption of most models for calmodulin regulation of smooth and non-muscle contractility is that calmodulin is freely diffusible at resting intracellular concentrations of free Ca2+. However, fluorescence recovery after photobleaching (FRAP) measurements of three different fluorescent analogs of calmodulin in cultured bovine tracheal smooth muscle cells suggest that free calmodulin may be limiting in unstimulated cells, Thirty-seven % of microinjected calmodulin is immobile by FRAP and the fastest recovering component has an effective diffusion coefficient 7-fold slower than a dextran of equivalent size. Combining the FRAP data with extraction data reported in a previous paper (Tansey, M., Luby-Phelps, K., Kamm, K. E., and Stull, J. T. (1994) J. Biol. Chem. 269, 9912-9920), we estimate that at most 5% of total endogenous calmodulin in resting smooth muscle cells is unbound (freely diffusible). Examination of the Ca2+ dependence of calmodulin mobility in permeabilized cells reveals that binding persists even at intracellular Ca2+ concentrations as low as 17 nM. When Ca2+ is elevated to between 450 nM and 3 mu M, some of the bound calmodulin is released, as indicated by an increase in the effective diffusion coefficient and the per cent mobile fraction, At higher Ca2+, calmodulin becomes increasingly immobilized. In about 50% of the cell population, clamping Ca2+ at micromolar levels results in translocation of cytoplasmic calmodulin to the nucleus, The compartmentalization and complex dynamics of calmodulin in living smooth muscle cells have profound implications for understanding how calmodulin regulates contractility in response to extracellular signals.
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页码:21532 / 21538
页数:7
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共 31 条
[11]  
LUBYPHELPS K, 1994, COMMENTS MOL CELL BI, V8, P199
[12]   SHAPE AND SUBSTRUCTURE OF SKELETAL-MUSCLE MYOSIN LIGHT CHAIN KINASE [J].
MAYR, GW ;
HEILMEYER, LMG .
BIOCHEMISTRY, 1983, 22 (18) :4316-4326
[13]   REGULATORY FUNCTIONS OF CALMODULIN [J].
MEANS, AR ;
VANBERKUM, MFA ;
BAGCHI, I ;
LU, KP ;
RASMUSSEN, CD .
PHARMACOLOGY & THERAPEUTICS, 1991, 50 (02) :255-270
[14]   HOLOBIOCHEMISTRY - THE EFFECT OF LOCAL ENVIRONMENT UPON THE EQUILIBRIA AND RATES OF BIOCHEMICAL REACTIONS [J].
MINTON, AP .
INTERNATIONAL JOURNAL OF BIOCHEMISTRY, 1990, 22 (10) :1063-1067
[15]  
NAIRN AC, 1987, J BIOL CHEM, V262, P7273
[16]  
NAIRN AC, 1994, SEMIN CANCER BIOL, V5, P295
[17]   ASSAY OF MYOSIN LIGHT CHAIN KINASE-ACTIVITY BY HIGH-PERFORMANCE LIQUID-CHROMATOGRAPHY USING A SYNTHETIC PEPTIDE AS SUBSTRATE [J].
NAKANISHI, S ;
KASE, H ;
MATSUDA, Y .
ANALYTICAL BIOCHEMISTRY, 1991, 195 (02) :313-318
[18]  
OLWIN BB, 1984, J BIOL CHEM, V259, P949
[19]   HOW CALMODULIN BINDS ITS TARGETS - SEQUENCE INDEPENDENT RECOGNITION OF AMPHIPHILIC ALPHA-HELICES [J].
ONEIL, KT ;
DEGRADO, WF .
TRENDS IN BIOCHEMICAL SCIENCES, 1990, 15 (02) :59-64
[20]   RECEPTOR-COUPLED SHORTENING OF ALPHA-TOXIN-PERMEABILIZED SINGLE SMOOTH-MUSCLE CELLS FROM THE GUINEA-PIG STOMACH [J].
ONO, T ;
MITA, M ;
SUGA, O ;
HASHIMOTO, T ;
OISHI, K ;
UCHIDA, MK .
BRITISH JOURNAL OF PHARMACOLOGY, 1992, 106 (03) :539-543