Department of Tumor Immunology, Hirszfeld Institute of Immunology and Experimental Therapy, Polish Academy of Sciences, Weigla 12, 53-114, Wrocław, Poland.
Department of Biochemistry and Molecular Biology, Wroclaw University of Environmental and Life Sciences, Norwida 31, 50-375, Wrocław, Poland.
Sci Rep. 2021 Mar 31;11(1):7312. doi: 10.1038/s41598-021-86470-1.
The neuronal membrane-associated periodic spectrin skeleton (MPS) contributes to neuronal development, remodeling, and organization. Post-translational modifications impinge on spectrin, the major component of the MPS, but their role remains poorly understood. One modification targeting spectrin is cleavage by calpains, a family of calcium-activated proteases. Spectrin cleavage is regulated by activated calpain, but also by the calcium-dependent binding of calmodulin (CaM) to spectrin. The physiologic significance of this balance between calpain activation and substrate-level regulation of spectrin cleavage is unknown. We report a strain of C57BL/6J mice harboring a single αII spectrin point mutation (Sptan1 c.3293G > A:p.R1098Q) with reduced CaM affinity and intrinsically enhanced sensitivity to calpain proteolysis. Homozygotes are embryonic lethal. Newborn heterozygotes of either gender appear normal, but soon develop a progressive ataxia characterized biochemically by accelerated calpain-mediated spectrin cleavage and morphologically by disruption of axonal and dendritic integrity and global neurodegeneration. Molecular modeling predicts unconstrained exposure of the mutant spectrin's calpain-cleavage site. These results reveal the critical importance of substrate-level regulation of spectrin cleavage for the maintenance of neuronal integrity. Given that excessive activation of calpain proteases is a common feature of neurodegenerative disease and traumatic encephalopathy, we propose that damage to the spectrin MPS may contribute to the neuropathology of many disorders.
神经元膜相关周期 spectrin 骨架 (MPS) 有助于神经元的发育、重塑和组织。翻译后修饰会影响 MPS 的主要成分 spectrin,但它们的作用仍知之甚少。一种针对 spectrin 的修饰是钙蛋白酶的切割,钙蛋白酶是一组钙激活的蛋白酶。 spectrin 的切割受激活的钙蛋白酶调节,但也受钙调蛋白 (CaM) 与 spectrin 结合的钙依赖性调节。这种钙蛋白酶激活和 spectrin 切割底物水平调节之间的平衡的生理意义尚不清楚。我们报告了一种 C57BL/6J 小鼠品系,其携带单个 αII spectrin 点突变 (Sptan1 c.3293G > A:p.R1098Q),降低了 CaM 亲和力,并且对钙蛋白酶蛋白水解具有内在的增强敏感性。纯合子是胚胎致死的。任何性别的新生杂合子似乎正常,但很快会发展出一种进行性共济失调,其生化特征是钙蛋白酶介导的 spectrin 切割加速,形态学特征是轴突和树突完整性破坏和全脑神经元变性。分子建模预测突变 spectrin 的钙蛋白酶切割位点不受限制的暴露。这些结果揭示了 spectrin 切割的底物水平调节对维持神经元完整性的至关重要性。鉴于钙蛋白酶蛋白酶的过度激活是神经退行性疾病和创伤性脑病的共同特征,我们提出 spectrin MPS 的损伤可能导致许多疾病的神经病理学。