Multiple-sited interaction of caldesmon with Ca2(+)-calmodulin

被引:34
作者
Huber, PAJ
ElMezgueldi, M
Grabarek, Z
Slatter, DA
Levine, BA
Marston, SB
机构
[1] BOSTON BIOMED RES INST,MUSCLE RES GRP,BOSTON,MA 02114
[2] UNIV BIRMINGHAM,SCH MED,DEPT PHYSIOL,BIRMINGHAM B15 2TT,W MIDLANDS,ENGLAND
关键词
D O I
10.1042/bj3160413
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
The binding of Ca2+ and Ba2+-calmodulin to caldesmon and its functional consequence was investigated with three different calmodulin mutants. Two calmodulin mutants have pairs of cysteine residues substituted and oxidized to a disulphide bond in either the N- or C-terminal lobe (C41/75 and C85/112). The third mutant has phenylalanine-92 replaced by alanine (F92A). Binding measurements in the presence of Ca2+ by separation on native gels and by carbodiimide-induced cross-linking showed a Lower affinity for caldesmon in all the mutants. When Ca2+ was replaced by Ba2+ the affinity of calmodulin for caldesmon was further reduced. The ability of Ca2+-calmodulin to release caldesmon's inhibition of the actin-tropomyosin-activated myosin ATPase was virtually abolished by mutation of phenylalanine-92 to alanine or by replacing Ba2+ for Ca2+ in native calmodulin. Both cysteine mutants retained their functional ability, but the increased concentration needed for 50% release of caldesmon inhibition reflected their decreased affinity. Ca2+-calmodulin produced a broadening in the signals of the NMR spectrum of the 10 kDa Ca2+-calmodulin-binding C-terminal fragment of caldesmon arising from tryptophans -749 and -779 and caused an enhancement of maximum tryptophan fluorescence of 49% and a 16 nm blue shift of the maximum, Ca2+-calmodulin F92A produced a change in wavelength of 4 nm but no change in maximum, whereas Ca2+-calmodulin C41/75 binding produced a decrease in fluorescence with no shift of the maximum. We conclude that functional binding of Ca2+-calmodulin to caldesmon requires multiple interaction sites on both molecules. However, some structural modification in calmodulin does not abolish the caldesmon-related functionality. This suggests that various EF hand proteins can substitute for the calmodulin molecule.
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页码:413 / 420
页数:8
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