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The shaker-1 mouse myosin VIIa deafness mutation results in a severely reduced rate of the ATP hydrolysis step

机译:振动筛1小鼠肌球蛋白VIIa耳聋突变导致ATP水解步骤的速率大大降低

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摘要

Mutations in the MYO7A gene, encoding the motor protein myosin VIIa, can cause Usher 1B, a deafness/blindness syndrome in humans, and the shaker-1 phenotype, characterized by deafness, head tossing, and circling behavior, in mice. Myosin VIIa is responsible for tension bearing and the transduction mechanism in the stereocilia and for melanosome transport in the retina, in line with the phenotypic outcomes observed in mice. However, the effect of the shaker-1 mutation, a R502P amino acid substitution, on the motor function is unclear. To explore this question, we determined the kinetic properties and the effect on the filopodial tip localization of the recombinant mouse myosin VIIa-5IQ-SAH R502P (myoVIIa-sh1) construct. Interestingly, although residue 502 is localized to a region thought to be involved in interacting with actin, the kinetic parameters for actin binding changed only slightly for the mutant construct. However, the rate constant for ATP hydrolysis (k+H + k−H) was reduced by ∼200-fold from 12 s−1 to 0.05 s−1, making the hydrolysis step the rate-limiting step of the ATPase cycle in the presence and absence of actin. Given that wild-type mouse myosin VIIa is a slow, high-duty ratio, monomeric motor, this altered hydrolysis rate would reduce activity to extremely low levels. Indeed, the translocation to the filopodial tips was hampered by the diminished motor function of a dimeric construct of the shaker-1 mutant. We conclude that the diminished motor activity of this mutant is most likely responsible for impaired hearing in the shaker-1 mice.
机译:编码运动蛋白肌球蛋白VIIa的MYO7A基因突变会导致Usher 1B(人类耳聋/失明综合症)和以小鼠耳聋,甩头和盘旋行为为特征的振动筛1表型。与小鼠中观察到的表型结果一致,肌球蛋白VIIa负责立体纤毛中的张力承受和转导机制以及视网膜中的黑素体转运。但是,尚不清楚shaker-1突变(R502P氨基酸取代)对运动功能的影响。为了探讨这个问题,我们确定了动力学特性以及对重组小鼠肌球蛋白VIIa-5IQ-SAH R502P(myoVIIa-sh1)构造的丝状末端定位的影响。有趣的是,尽管残基502定位在被认为与肌动蛋白相互作用的区域,但是对于突变体构建体,肌动蛋白结合的动力学参数仅稍有改变。但是,ATP水解的速率常数(k + H + kH)从12 s -1 降低到0.05 s -1 200倍,使得在存在和不存在肌动蛋白的情况下,水解步骤是ATPase循环的限速步骤。鉴于野生型小鼠肌球蛋白VIIa是一种慢速,高占空比的单体运动,这种改变的水解速率会将活性降低到极低的水平。的确,shaker-1突变体的二聚体构建体的运动功能减弱,阻碍了向丝虫的尖端的易位。我们得出的结论是,此突变体的运动功能降低最有可能是振动筛1小鼠听力受损的原因。

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