Rameix-Welti Marie-Anne, Régnier Catherine H, Bienaimé Frank, Blouin Jacques, Schifferli Jurg, Fridman Wolf H, Sautès-Fridman Catherine, Frémeaux-Bacchi Veronique
Assistance Publique-Hôpitaux de Paris, Hôpital Européen Georges Pompidou, Service d'Immunologie Biologique, Paris, France.
Eur J Immunol. 2007 May;37(5):1377-85. doi: 10.1002/eji.200636812.
Deficiencies in terminal complement components, including the component C7, are uncommon and associated with an increased risk of recurrent systemic neisserial infection. A total of 22 molecular defects have been reported in the C7 gene with both complete (C7Q0) and subtotal (C7SD) C7 deficiencies. In this study we report the molecular basis of nine new cases of C7 deficiencies that were characterized by exon-specific sequence analysis. Seven different C7 gene mutations were identified corresponding to small deletions (n=2), splice site changes (n=1) and single base pair substitutions leading to nonsense (n=1) or missense (n=3) mutations. Altogether, three changes of the C7 gene (G357R, R499S and 5' splice donor site of intron 16) account for half of the molecular defects which emphasize that a restricted number of molecular abnormalities are involved in this deficiency. We identified two patients with combined C7Q0/C7SD(R499S) and established the C7SD(R499S) frequency at about 1% in normal Caucasian population. We demonstrated that C7(R499S) mutant protein is retained in the endoplasmic reticulum whereas the wild-type C7 is located in the Golgi apparatus. Our results provide evidence that R499S represents a loss-of-function polymorphism of C7 due to a defective folding of the protein.
包括补体成分C7在内的末端补体成分缺陷并不常见,且与复发性全身性奈瑟菌感染风险增加有关。C7基因已报道了总共22种分子缺陷,包括完全性(C7Q0)和部分性(C7SD)C7缺陷。在本研究中,我们报告了9例新的C7缺陷病例的分子基础,这些病例通过外显子特异性序列分析进行了表征。鉴定出7种不同的C7基因突变,分别对应小缺失(n = 2)、剪接位点改变(n = 1)以及导致无义突变(n = 1)或错义突变(n = 3)的单碱基对替换。总之,C7基因的3种变化(G357R、R499S和内含子16的5'剪接供体位点)占分子缺陷的一半,这强调了这种缺陷涉及数量有限的分子异常。我们鉴定出2例合并C7Q0/C7SD(R499S)的患者,并确定C7SD(R499S)在正常白种人群中的频率约为1%。我们证明C7(R499S)突变蛋白保留在内质网中,而野生型C7位于高尔基体中。我们的结果提供了证据,表明R499S代表由于蛋白质折叠缺陷导致的C7功能丧失多态性。