Inatomi Jun, Horita Shoko, Braverman Nancy, Sekine Takashi, Yamada Hideomi, Suzuki Yoshiro, Kawahara Katsumasa, Moriyama Nobuo, Kudo Akihiko, Kawakami Hayato, Shimadzu Mitsunobu, Endou Hitoshi, Fujita Toshiro, Seki George, Igarashi Takashi
Department of Pediatrics, Faculty of Medicine, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, 112-8688, Tokyo, Japan.
Pflugers Arch. 2004 Jul;448(4):438-44. doi: 10.1007/s00424-004-1278-1. Epub 2004 Apr 14.
Permanent isolated proximal renal tubular acidosis (pRTA) with ocular abnormalities is a systemic disease with isolated pRTA, short stature and ocular abnormalities. We identified a novel homozygous deletion of nucleotide 2,311 adenine in the kidney type Na+/HCO3- cotransporter (kNBC1) cDNA in a patient with permanent isolated pRTA. This mutation is predicted to result in a frame shift at codon 721 forming a stop codon after 29 amino acids anomalously transcribed from the SLC4A4 gene. Cosegregation of this mutation with the disease was supported by heterozygosity in the parents of the affected patient. The absence of this mutation in 156 alleles of 78 normal individuals indicates that this mutation is related to the disease and is not a common DNA sequence polymorphism. When injected into Xenopus oocytes, the mutant cRNA failed to induce electrogenic transport activity. In addition, immunofluorescence and Western blot analysis failed to detect the expression of the full-length protein in mutant-injected oocytes. Our results expand the spectrum of kNBC1 mutations in permanent isolated pRTA with ocular abnormalities and increase our understanding of the renal tubular mechanism that is essential for acid-base homeostasis.
伴有眼部异常的永久性孤立性近端肾小管酸中毒(pRTA)是一种系统性疾病,其特征为孤立性pRTA、身材矮小和眼部异常。我们在一名患有永久性孤立性pRTA的患者中,鉴定出肾型Na⁺/HCO₃⁻共转运体(kNBC1)cDNA中第2311位核苷酸腺嘌呤的一个新的纯合缺失。该突变预计会导致第721位密码子发生移码,在从SLC4A4基因异常转录的29个氨基酸后形成一个终止密码子。患病患者父母的杂合性支持了该突变与疾病的共分离。78名正常个体的156个等位基因中均未发现此突变,表明该突变与疾病相关,而非常见的DNA序列多态性。将突变的cRNA注射到非洲爪蟾卵母细胞中时,未能诱导出电转运活性。此外,免疫荧光和蛋白质印迹分析未能在注射突变体的卵母细胞中检测到全长蛋白的表达。我们的结果扩展了伴有眼部异常的永久性孤立性pRTA中kNBC1突变的范围,并增进了我们对酸碱平衡至关重要的肾小管机制的理解。