Kamath U, Shriver J W
Department of Medical Biochemistry, School of Medicine, Southern Illinois University, Carbondale 62901.
J Biol Chem. 1989 Apr 5;264(10):5586-92.
Thermotropic structural transitions in rabbit skeletal muscle heavy meromyosin and subfragment-1 (S-1) have been quantitatively investigated by using nucleotide-induced UV difference spectroscopy. The magnitude of the adenylyl 5'-imidophosphate (AMP-PNP)-induced difference spectrum is temperature-dependent for both S-1 and heavy meromyosin (HMM). The transition observed here appears to be the same transition observed by 31P NMR of bound AMP-PNP (Shriver, J., and Sykes, B. D. (1981) Biochemistry 20, 2004-2012). The ADP-induced spectrum is temperature-independent, which differs from the 31P NMR data, indicating that the chromophore contributing to the difference spectrum resides in a domain distinct from the active site, at least when ADP is bound. Although the magnitudes of the AMP-PNP-induced spectra are equal in magnitude for S-1 and HMM on a globular head basis, the temperature dependence of the AMP-PNP induced difference spectrum for S-1 differs significantly from that of HMM. The van't Hoff enthalpy for the apparent two-state transition in S-1 is half that observed with HMM: 19 (+/- 7.5) kcal/mol for S-1 and 35 (+/- 5) kcal/mol for HMM. This indicates an additional cooperative interaction in HMM which is not present in S-1. Modification of SH1 results in the loss of the temperature dependence of the AMP-PNP-induced difference spectrum, and the resulting difference spectra appear identical to those induced by ADP.
利用核苷酸诱导的紫外差光谱法,对兔骨骼肌重酶解肌球蛋白和亚片段-1(S-1)的热致结构转变进行了定量研究。腺苷酰5'-亚氨磷酸(AMP-PNP)诱导的差光谱的幅度对于S-1和重酶解肌球蛋白(HMM)均与温度有关。此处观察到的转变似乎与结合AMP-PNP的31P NMR所观察到的转变相同(施赖弗,J.,和赛克斯,B.D.(1981年)《生物化学》20,2004 - 2012)。ADP诱导的光谱与温度无关,这与31P NMR数据不同,表明至少在结合ADP时,对差光谱有贡献的发色团位于与活性位点不同的结构域中。尽管基于球状头部,S-1和HMM的AMP-PNP诱导光谱的幅度相等,但S-1的AMP-PNP诱导差光谱的温度依赖性与HMM的显著不同。S-1中表观二态转变的范特霍夫焓是HMM中观察到的一半:S-1为19(±7.5)千卡/摩尔,HMM为35(±5)千卡/摩尔。这表明HMM中存在一种S-1中不存在的额外协同相互作用。SH1的修饰导致AMP-PNP诱导差光谱的温度依赖性丧失,并且产生的差光谱与ADP诱导的差光谱相同。