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MYH9-related disease mutations cause abnormal red blood cell morphology through increased myosin-actin binding at the membrane

机译:Myh9相关的疾病突变通过增加膜在膜上的肌蛋白 - 肌动蛋白结合引起红细胞形态异常

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摘要

MYH9-related disease (MYH9-RD) is a rare, autosomal dominant disorder caused by mutations in MYH9, the gene encoding the actin-activated motor protein non-muscle myosin IIA (NMIIA). MYH9-RD patients suffer from bleeding syndromes, progressive kidney disease, deafness, and/or cataracts, but the impact of MYH9 mutations on other NMIIA-expressing tissues remains unknown. In human red blood cells (RBCs), NMIIA assembles into bipolar filaments and binds to actin filaments (F-actin) in the spectrin-F-actin membrane skeleton to control RBC biconcave disk shape and deformability. Here, we tested the effects of MYH9 mutations in different NMIIA domains (motor, coiled-coil rod, or non-helical tail) on RBC NMIIA function. We found that MYH9-RD does not cause clinically significant anemia and that patient RBCs have normal osmotic deformability as well as normal membrane skeleton composition and micron-scale distribution. However, analysis of complete blood count data and peripheral blood smears revealed reduced hemoglobin content and elongated shapes, respectively, of MYH9-RD RBCs. Patients with mutations in the NMIIA motor domain had the highest numbers of elongated RBCs. Patients with mutations in the motor domain also had elevated association of NMIIA with F-actin at the RBC membrane. Our findings support a central role for motor domain activity in NMIIA regulation of RBC shape and define a new sub-clinical phenotype of MYH9-RD.
机译:Myh9相关疾病(MyH9-Rd)是MyH9中突变引起的罕见,常染色体显性障碍,该基因编码肌动蛋白活化的电动蛋白非肌肉肌肌瘤IIA(NMIIA)。 Myh9-Rd患者患有出血综合征,进展性肾病,耳聋和/或白内障,但MyH9突变对其他表达核心的组织的影响仍然未知。在人红细胞(RBC)中,NMIIA组装成双极长丝并结合在光谱-F-肌动蛋白膜骨架中的肌动蛋白长丝(F-Actin),以控制RBC双凸盘形状和可变形性。在这里,我们在RBC NMIIA功能上测试了MyH9突变在不同NMIIA结构域(电动机,卷轴杆或非螺旋尾)的影响。我们发现Myh9-RD不会引起临床显着的贫血,并且患者RBC具有正常的渗透性变形性以及正常膜骨架组合物和微米级分布。然而,完整血液计数数据和外周血涂片的分析显示,MyH9-RD RBC分别显示出降低的血红蛋白含量和细长形状。 NMIIA电机结构域突变的患者具有最多的细长RBC。在摩托结构域中的突变患者还升高了NMIIa与RBC膜的F-actin结合。我们的研究结果支持RBC形状NMIIA调节中的电机结构域活性的核心作用,并定义了MYH9-RD的新临床表型。

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