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通过时间分辨磷光各向异性检测扇贝肌肉中调节轻链的旋转动力学。

Rotational dynamics of the regulatory light chain in scallop muscle detected by time-resolved phosphorescence anisotropy.

作者信息

Ramachandran S, Thomas D D

机构信息

Department of Biochemistry, University of Minnesota Medical School, Minneapolis 55455, USA.

出版信息

Biochemistry. 1999 Jul 13;38(28):9097-104. doi: 10.1021/bi9902945.

Abstract

We have used time-resolved phosphorescence anisotropy (TPA) to study the rotational dynamics of chicken gizzard regulatory light chain (RLC) bound to scallop adductor muscle myofibrils in key physiological states. Native RLC from scallop myofibrils was extracted and replaced completely with gizzard RLC labeled specifically at Cys 108 with erythrosin iodoacetamide (ErIA). The calcium sensitivity of the ATPase activity of the labeled myofibril preparation was quite similar to that of the native sample, indicating that the ErIA-labeled RLC is functionally bound to the myosin head. In rigor (in the absence of ATP, when all the myosin heads are rigidly bound to the thin filament), a slight decay was observed in the first few microseconds, followed by no change in the anisotropy. This indicates small-amplitude restricted motions of the RLC or the entire LC domain of myosin. Addition of calcium to rigor restricts these motions further. Relaxation with ATP (no Ca) causes a large decay in the anisotropy, indicating large-amplitude rotational motion with correlation times of 5-50 micros. Further addition of calcium, to induce contraction, resulted in a decrease in the rate and amplitude of anisotropy decay. In particular, there is clear evidence for a slow rotational motion with a correlation time of approximately 300 micros, which is not present either in rigor or relaxation. This indicates rotational motion that specifically correlates with force generation. The changes in the rotational dynamics of the light-chain domain in rigor, relaxation, and contraction support earlier work based on probes of the catalytic domain that muscle contraction is accompanied by a disorder-to-order transition of the myosin head. However, the motions of the LC domain are different from those of the catalytic domain, which indicates rotation of the two domains relative to each other.

摘要

我们利用时间分辨磷光各向异性(TPA)来研究鸡砂囊调节轻链(RLC)在关键生理状态下与扇贝闭壳肌肌原纤维结合时的旋转动力学。从扇贝肌原纤维中提取天然RLC,并用碘乙酰胺藻红蛋白(ErIA)特异性标记半胱氨酸108处的砂囊RLC将其完全取代。标记后的肌原纤维制剂ATP酶活性的钙敏感性与天然样品非常相似,这表明ErIA标记的RLC在功能上与肌球蛋白头部结合。在僵直状态下(无ATP时,所有肌球蛋白头部都牢固地结合在细肌丝上),在最初的几微秒内观察到轻微衰减,随后各向异性没有变化。这表明RLC或肌球蛋白整个轻链结构域存在小幅度受限运动。向僵直状态的样品中添加钙会进一步限制这些运动。用ATP(无钙)松弛会导致各向异性大幅衰减,表明存在相关时间为5 - 50微秒的大幅度旋转运动。进一步添加钙以诱导收缩,导致各向异性衰减的速率和幅度降低。特别是,有明确证据表明存在相关时间约为300微秒的缓慢旋转运动,这在僵直或松弛状态下均不存在。这表明旋转运动与力的产生具有特异性关联。轻链结构域在僵直、松弛和收缩状态下旋转动力学的变化支持了早期基于催化结构域探针的研究工作,即肌肉收缩伴随着肌球蛋白头部从无序到有序的转变。然而,轻链结构域的运动与催化结构域的运动不同,这表明两个结构域相对彼此发生了旋转。

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