Department of Medicine, University of California San Diego, 9500 Gilman Drive, La Jolla, CA 92093, USA.
Hum Mol Genet. 2011 May 1;20(9):1751-62. doi: 10.1093/hmg/ddr050. Epub 2011 Feb 8.
Cypher long (CypherL) and short (CypherS) isoforms are distinguished from each other by the presence and absence of three C-terminal LIM domains, respectively. Cypher isoforms are developmentally regulated, and mutations affecting both long and short isoforms are linked to muscle disease in humans. Given these data, we hypothesized that various Cypher isoforms play overlapping and unique roles in striated muscle. To determine the specific role of Cypher isoforms in striated muscle, we generated two mouse lines in which either CypherS or CypherL isoforms were specifically deleted. Mice specifically, deficient in CypherS isoforms had no detectable muscle phenotype. In contrast, selective loss of CypherL isoforms resulted in partial neonatal lethality. Surviving mutants exhibited growth retardation and late-onset dilated cardiomyopathy, which was associated with cardiac fibrosis and calcification, leading to premature adult mortality. At a young age, preceding development of cardiomyopathy, hearts from these mutants exhibited defects in both Z-line ultrastructure and specific aberrations in calcineurin-NFAT and protein kinase C pathways. Earlier onset of cardiac dilation relative to control wild-type mice was observed in young CypherL isoform knockout mice consequent to pressure overload, suggesting a greater susceptibility to the disease. In summary, we have identified unique roles for CypherL isoforms in maintaining Z-line ultrastructure and signaling that are distinct from the roles of CypherS isoforms, while highlighting the contribution of mutations in the long isoforms to the development of dilated cardiomyopathy.
Cypher 长(CypherL)和短(CypherS)异构体分别通过存在和不存在三个 C 端 LIM 结构域来区分。Cypher 异构体在发育过程中受到调节,影响长和短异构体的突变与人类肌肉疾病有关。鉴于这些数据,我们假设各种 Cypher 异构体在横纹肌中发挥重叠和独特的作用。为了确定 Cypher 异构体在横纹肌中的特定作用,我们生成了两种小鼠品系,其中 CypherS 或 CypherL 异构体被特异性缺失。CypherS 异构体特异性缺失的小鼠没有可检测到的肌肉表型。相比之下,CypherL 异构体的选择性缺失导致部分新生儿致死。存活的突变体表现出生长迟缓和迟发性扩张型心肌病,与心脏纤维化和钙化有关,导致成年早期死亡。在心肌病发生之前的年轻时期,这些突变体的心脏表现出 Z 线超微结构的缺陷和钙调神经磷酸酶-NFAT 和蛋白激酶 C 途径的特定异常。与对照野生型小鼠相比,年轻的 CypherL 异构体敲除小鼠在压力超负荷时观察到心脏扩张的起始更早,表明对疾病的易感性更大。总之,我们已经确定了 CypherL 异构体在维持 Z 线超微结构和信号传导方面的独特作用,这些作用与 CypherS 异构体的作用不同,同时强调了长异构体突变在扩张型心肌病发展中的贡献。