• 中国科学论文统计源期刊
  • 中国科技核心期刊
  • 美国化学文摘(CA)来源期刊
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临床输血与检验 ›› 2026, Vol. 28 ›› Issue (4): 613-619.DOI: 10.3969/j.issn.1671-2587.2026.04.023

• 调查研究 • 上一篇    下一篇

山东半岛地区献血者RHCE及变异型等位基因分型特征研究*

冯智慧1, 迟晓云1, 程怡2, 胡彬1, 刘丽1, 逄淑涛1   

  1. 1青岛市中心血站,山东青岛 266071;
    2烟台毓璜顶医院输血科,山东烟台 264000
  • 收稿日期:2026-07-06 出版日期:2026-08-20 发布日期:2026-08-26
  • 通讯作者: 逄淑涛,主要从事卫生管理,输血管理方面研究,(E-mail)qdbc_pst@sina.com。
  • 作者简介:冯智慧,主要从事血液免疫学、临床输血方面研究,(E-mail)qd_hla@163.com。
  • 基金资助:
    *本课题受青岛市市南区科技计划项目(No.2018-4-031-YY)、山东省输血协会科研基金项目(No.2026-sdsx01)资助

Study on the Characteristics of RHCE and Variant Allele Typing in Blood Donors from the Shandong Peninsula Region

FENG Zhihui1, CHI Xiaoyun1, CHENG Yi2, HU Bin1, LIU Li1, PANG Shutao1   

  1. 1Qingdao Blood Center, Qingdao 266071;
    2Yantai Yuhuangding Hospital, Yantai 264000
  • Received:2026-07-06 Online:2026-08-20 Published:2026-08-26

摘要: 目的 基于分子生物学技术开展山东半岛地区固定献血者RHCE血型系统基因分型研究,评估使用RHCE基因c.307CT(Exon2)和c.676CG(Exon5)两个SNP位点分别预测C/c、E/e抗原分型的可靠性,并通过三代单分子测序技术分析D-表型及RhCE抗原弱表达个体的基因特征,明确区域RHCE基因及变异型的分布规律。方法 选取13 691名山东半岛地区固定献血者为研究对象,采用TaqMan-MGB基因分型法联合改良U型微孔板法检测献血者RHCE基因C、c、E、e抗原分型,对比分析两种检测方法的结果差异;针对筛查获得的4例罕见D-表型及2例RhCE抗原弱表达样本,采用PacBio Sequel II/Ile三代测序平台进行单倍型全长测序,精准鉴定变异基因型。结果 两种方法对9 411例献血者进行检测,分型差异主要集中于C/c抗原,共检出74例不一致标本,差异类型包括血清学Cc型对应基因cc型31例、血清学CC型对应基因cc型21例、血清学cc型对应基因Cc型22例;E/e抗原分型一致性较高,仅检出3例不一致标本,其中血清学ee型对应基因Ee型2例、血清学EE型对应基因Ee型1例。三代测序结果显示,4例罕见D-表型及2例RhCE抗原弱表达表型样本,共鉴定出4种D-沉默等位基因(RHCE*02N.07RHCE*02N.08RHCE*02N.14c.940-3C>G)及2种RHCE重组变异基因(RHCE-D(2)-CE-D(9)-CERHCE-D(4-5)-CE)。结论 TaqMan-MGB法使用单个SNP位点对于E/e的预测较为可靠,对于C/c的预测还应增加检测位点。改良U型微孔板法可用于采供血机构献血者RhCE分型;RHCE基因与RHD基因易发生重组、倒位等结构变异,常规检测方法难以精准识别,三代单分子全长测序技术可作为RHCE变异型基因精准鉴定的可靠手段,可为区域精准输血及血型遗传学研究提供数据支撑。

关键词: RHCE基因, 改良U型微孔板法, TaqMan-MGB, 单分子测序技术

Abstract: Objective This study aims to conduct a genotyping analysis of the RHCE blood-group system among regular blood donors in the Shandong Peninsula using molecular biology techniques. It evaluates the reliability of predicting C/c and E/e antigen phenotypes based on two single-nucleotide polymorphisms (SNPs) in the RHCE gene, namely c.307C>T (Exon 2) and c.676C>G (Exon 5). Additionally, it analyzes the genetic characteristics of D-phenotypes and individuals with weak RhCE antigen expression using third-generation single-molecule sequencing technology, with the goal of elucidating the regional distribution patterns of the RHCE gene and its variants. Methods A total of 13 691 regular blood donors from the Shandong Peninsula were selected as study subjects. The TaqMan-MGB genotyping method, combined with an improved U-shaped microplate method, was employed for typing the C, c, E, and e antigens of the RHCE gene. The differences between the results obtained by the two methods were compared. For the four rare D-phenotypic samples and two samples with weak RhCE antigen expression identified during screening, full-length haplotype sequencing was carried out using the third-generation sequencing platform to precisely identify variant genotypes. Results Both methods were used to test 9 411 donors. Discrepancies were mainly observed in C/c antigen typing, with 74 inconsistent specimens detected. Specifically, there were 31 cases where the serological Cc phenotype matched the cc genotype, 21 cases where the serological CC phenotype matched the cc genotype, and 22 cases where the serological cc phenotype matched the Cc genotype. E/e antigen typing showed high consistency, with only three discrepancies: two cases where the serological ee phenotype matched the Ee genotype and one case where the serological EE phenotype matched the Ee genotype. Third-generation sequencing revealed that among the four rare D- phenotypic samples and two samples with weak RhCE antigen expression, four D-silent alleles (RHCE*02N.07, RHCE*02N.08, RHCE*02N.14, c.940-3C>G) and two RHCE recombinant variant genes (RHCE-D(2)-CE-D(9)-CE, RHCE-D(4-5)-CE) were identified. Conclusion The TaqMan-MGB method using a single SNP site is relatively reliable for predicting E/e antigens, but for more accurate prediction of C/c antigens, additional SNPs should be included. The improved U-shaped microplate method can be applied for RhCE typing in blood collection and supply institutions. The RHCE gene is prone to structural variations such as recombination and inversion with the RHD gene, which are difficult to accurately detect using conventional methods. Third - generation single-molecule full-length sequencing provides a reliable approach for the precise identification of RHCE variant genotypes, offering valuable data support for regional precision transfusion and blood-group genetics research.

Key words: RHCE gene, Improved U-shaped microplate method, TaqMan-MGB, Single-molecule sequencing technology

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