近年来研究发现: 位于HLAⅠ类基因区域的Alu插入是研究不同群体HLAⅠ类基因区域祖先单倍型和HLAⅠ类基因多样性产生、进化和重组的理想工具。文章对中国壮族和裕固族群体HLAⅠ类基因区域5个Alu插入多态性(AluMICB、AluTF、AluHJ、AluHG和AluHF)进行研究, 结合HLA基因分型数据, 分析壮族、裕固族、哈尼族、布朗族和傣族5个民族群体中Alu插入与HLA-A等位基因的关系。研究结果显示: (1)壮族和裕固族人群中5个Alu插入频率范围分别为1.5%~35.8%和9.2~34.8%, AluMICB、AluTF和AluHF插入频率在这两个群体中有统计学差异(P<0.05); (2)在5个研究的群体中, AluHG插入与HLA-A*02的不同亚型关联; AluHJ插入与HLA-A*2402在5个群体中都关联, 但AluHJ与HLA-A*1101和HLA-A*2407只在布朗族中关联。表明不同群体HLAⅠ类基因区域内Alu插入具有各自的特征, 且Alu插入与不同的HLA-A等位基因相关联。这种Alu插入及其与HLA-A的关联特征可作为研究群体中HLAⅠ类基因和单倍型系谱变化的重要遗传标记。
Many studies have show that the structurally polymorphic Alu insertion within HLA class I region are useful tools for investigating the origin, evolution and recombination of HLA class I progenitor haplotypes and gene diversity in different ethnic populations. In the present study, we determined the frequencies of HLA-Alus (i.e., AluMICB, AluTF, AluHJ, AluHG, and AluHF) in Zhuang and Yugu ethnic populations at first. Then, combined with HLA genotyping data, we studied associations between HLA-Alus and HLA-A alleles in Zhuang, Yugu, Bulang, Dai, and Hani ethnic populations. Our results showed that (1) the frequencies of five HLA-Alus were 1.5%~35.8% and 9.2%~34.8% in Zhuang and Yugu, respectively; and (2) the results of association between HLA-A alleles and HLA-Alu showed strong association between AluHG insertion and HLA-A*02 subtypes in all populations, association between AluHJ insertion and HLA-A*2402 in all populations, and association between AluHJ insertion and HLA-A*1101, -A*2407 in Bulang. The present study suggested that the distribution of HLA-Alus as well as the associations between HLA-Alus and HLA class I alleles are variable in different ethnic populations. HLA Alus alone or together with the HLA class I alleles are informative genetic markers for the identi-fication of HLA class I allele and variation of haplotype lineages in different populations.
[1] Walsh EC, Mather KA, Schaffner SF, Farwell L, Daly MJ, Patterson N, Cullen M, Carrington M, Bugawan TL, Erlich H, Campbell J, Barrett J, Miller K, Thomson G, Lander ES, Rioux JD. An integrated haplotype map of the human major histocompatibility complex. Am J Hum Genet, 2003, 73 (3): 580-590.
[2] Kulski JK, Dunn DS. Polymorphic Alu insertions within the Major Histocompatibility Complex class I genomic region: a brief review. Cytogenet Genome Res, 2005, 110 (1-4): 193-202.
[3] Malkki M, Single R, Carrington M, Thomson G, Petersdorf E. MHC microsatellite diversity and linkage disequilibrium among common HLA-A, HLA-B, DRB1 haplotypes: implications for unrelated donor hematopoietic transplantation and disease association studies. Tissue Antigens, 2005, 66(2): 114-124.
[4] Yao Y, Shi L, Lin K, Yu L, Sun H, Huang X, Tao Y, Yi W, Liu S, Chu J. The association between HLA-A, -B alleles and major histocompatibility complex class I polymorphic Alu insertions in four populations in China. Tiss Antigens, 2009, 73(6): 575-581.
[5] Yao YF, Shi L, Shi L, Lin KQ, Tao YF, Yu L, Sun H, Huang XQ, Li YH, Chu JY. Polymorphic Alu insertions and their associations with MHC class I alleles and haplotypes in Han and Jinuo populations in Yunnan Province, southwest of China. J Genet Genomics, 2009, 36(1): 51-58.
[6] Yao YF, Shi L, Kulski JK, Chen J, Liu S, Yu L, Lin KQ, Huang XQ, Tao Y, Tokunaga K, Chu JY. The association and differentiation of MHC class I polymorphic Alu insertions and HLA-B/Cw alleles in seven Chinese populations. Tiss Antigens, 2010, 76(3): 194-207.
[7] Shi L, Shi L, Yao YF, Matsushita M, Yu L, Huang XQ, Yi W, Oka T, Tokunaga K, Chu JY. Genetic link among Hani, Bulang and other Southeast Asian populations: evidence from HLA -A, -B, -C, -DRB1 genes and haplotypes distribution. Int J Immunogenet, 2010, 37(6): 467-475.
[8] Lancaster AK, Single RM, Solberg OD, Nelson MP, Thomson G. PyPop update——a software pipeline for large-scale multilocus population genomics. Tiss Antigens, 2007, 69(Suppl. 1): 192-197.
[9] Lancaster A, Nelson MP, Meyer D, Thomson G, Single RM. PyPop: a software framework for population genomics: analyzing large-scale multi-locus genotype data. Pac Symp Biocomput, 2003, 8: 514-525.
[10] Shi L, Yao YF, Matsushita M, Yu L, Lin KQ, Tao YF, Oka T, Chu JY, Tokunaga K. HLA alleles and haplotypes distribution in Dai population in Yunnan Province, Southwest China. Tiss Antigens, 2010, 75(2): 159-165.
[11] Batzer MA, Deininger PL. Alu repeats and human genomic diversity. Nat Rev Genet, 2002, 3(5): 370-379.
[12] Dunn DS, Inoko H, Kulski JK. The association between non-melanoma skin cancer and a young dimorphic Alu element within the major histocompatibility complex class I genomic region. Tiss Antigens, 2006, 68(2): 127-134.
[13] Dunn DS, Inoko H, Kulski JK. Dimorphic Alu element located between the TFIIH and CDSN genes within the major histocompatibility complex. Electrophoresis, 2003, 24(16): 2740-2748.
[14] Dunn DS, Naruse T, Inoko H, Kulski JK. The association between HLA-A alleles and young Alu dimorphisms near the HLA-J, -H, and -F genes in workshop cell lines and Japanese and Australian populations. J Mol Evol, 2002, 55(6): 718-726.
[15] Dunn DS, Romphruk AV, Leelayuwat C, Bellgard M, Kulski JK. Polymorphic Alu insertions and their associations with MHC class I alleles and haplotypes in the northeastern Thais. Ann Hum Genet, 2005, 69(Pt 4): 364-372.
[16] Kulski JK, Martinez P, Longman-Jacobsen N, Wang W, Williamson J, Dawkins RL, Shiina T, Naruse T, Inoko H. The association between HLA-A alleles and an Alu dimorphism near HLA-G. J Mol Evol, 2001, 53(2): 114-123.