携带隐性 Ryr1 突变的小鼠肌束中 RyR1 的大量减少改变了本体感觉并导致脊柱侧弯

Alexis Ruiz, Sofia Benucci, Herve Meier, Georg Schultz, Katarzyna Buczak, Christoph Handschin, Rodrigo C. G. Pena, Susan Treves, Francesco Zorzato
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摘要

肌束是位于肌腹深处的拉伸感受器,参与检测肌肉长度的变化,在运动控制、姿势和同步步态中发挥着重要作用。肌束由环绕 3-5 条叶内肌纤维的外囊和核囊复合体组成。肌束功能障碍会导致本体感受器功能异常,而本体感受器功能异常与骨骼和软骨发育异常、脊柱侧弯、后凸和关节挛缩有关。RYR1 是编码肌质网钙释放通道的基因,是与人类先天性肌病有关的最常见的突变靶点,这种疾病通常伴有骨骼改变和关节挛缩。迄今为止,还没有人研究过 RYR1 突变、肌束改变和骨骼缺陷之间的联系。为此,我们研究了携带隐性 Ryr1 突变的杂合子小鼠,这些突变与一名严重患病儿童体内的突变是同源的。在这里,我们发现(i)RyR1蛋白定位于叶内纤维的极区,并呈现双行分布模式,这是典型的交界肌质网蛋白;(ii)复合杂合子小鼠的肌轴表现出结构缺陷;(iii)dHT小鼠叶内肌纤维中的RyR1含量减少了54%。由于灶内肌纤维中突变型 RyR1 大量减少,导致灶内肌纤维蛋白表达改变、严重脊柱侧弯、步态和肢体间协调性改变。这些结果支持这样的假设,即 RYR1 突变不仅影响灶外肌肉的功能,还可能影响灶内肌肉的功能。后者可能是受隐性 RYR1 突变影响的患者出现骨骼异常的根本原因之一。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Massive reduction of RyR1 in muscle spindles of mice carrying recessive Ryr1 mutations alters proprioception and causes scoliosis
Muscle spindles are stretch receptors lying deep within the muscle belly involved in detecting changes in muscle length and playing a fundamental role in motor control, posture and synchronized gait. They are made up of an external capsule surrounding 3-5 intrafusal muscle fibers and a nuclear bag complex. Dysfunction of muscle spindles leads to abnormal proprioceptor function, which has been linked to aberrant bone and cartilage development, scoliosis, kyphosis and joint contractures. RYR1, the gene encoding the calcium release channel of the sarcoplasmic reticulum, is the most common target of mutations linked to human congenital myopathies, a condition often accompanied by skeleton alterations and joint contractures. So far, the link between RYR1 mutations, altered muscle spindles and skeletal defects has not been investigated. To this end, we investigated heterozygous mice carrying recessive Ryr1 mutations isogenic to those present in a severely affected child. Here we show that: (i) the RyR1 protein localizes to the polar regions of intrafusal fibers and exhibits a doubled row distribution pattern, typical for junctional sarcoplasmic reticulum proteins; (ii) muscle spindles of compound heterozygous mice show structural defects; (iii) RyR1 content in intrafusal muscle fibers from dHT mice is reduced by 54%. Such a massive reduction of mutant RyR1 in intrafusal muscle fibers leads to altered expression of intrafusal fiber proteins, severe scoliosis, alteration of gait and inter limb coordination. These results support the hypothesis that RYR1 mutations not only affect the function of extrafusal muscles, but might also affect that of intrafusal muscles. The latter may be one of the underlying causes of skeletal abnormalities seen in patients affected by recessive RYR1 mutations.
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