Paternal genetic structure analysis of the modern Han populations based on Y-SNP and Y-STR
Received date: 2023-12-11
Revised date: 2024-01-24
Online published: 2024-01-26
Supported by
National Key R&D Program of China(2022YFC3341004);National Natural Science Foundation of China(82171870);Fundamental Research Funds for Institute of Forensic Science(2022JB020);Open Project of the National Engineering Laboratory for Forensic Science(2021FGKFKT01)
The Han populations represent the largest ethnic group in China. Previous studies have primarily focused on investigating their genetic origins, migration and integration, as well as paternal genetic relationships within specific regional Han populations. However, a comprehensive analysis of the global paternal genetic structure of Han populations is lacking. In this study, we performed Y-chromosome sequencing on 362 unrelated male samples from Chinese Han individuals collected from Qinghai, Sichuan and Liaoning provinces. We then integrated relevant data from reported studies. Our final dataset comprised 1830 samples from 16 Han populations across 15 provinces in China, encompassing information on 89 Y-SNPs and 16 Y-STRs. Statistical analyses were conducted to assess Y-STR haplotype diversity (HD) and Y-SNP haplogroup frequencies. Additionally, we employed principal component analysis (PCA), phylogenetic tree and haplotype network to explore genetic differentiation within Han populations and the genetic relationships between Han populations and ethnic minorities surrounding them. Our results demonstrated that the O-M175 haplogroup represents the predominant paternal lineage in Han populations, with frequencies ranging from 60.53% (Qinghai Han) to 92.7% (Guangdong Han). Moreover, the subclades downstream of O-M175 showed distinct regional variations in their distribution patterns. The O2-M122 haplogroup was prevalent in all Han populations and demonstrated a gradual decline in frequency from north to south. Conversely, the distribution frequency of the O1b-M268 haplogroup decreased from south to north, particularly showed significant presence among Han populations in the Lingnan region. Haplogroup O1a-M119 distributed more frequently in the central Han populations. Our findings revealed that Chinese Han populations can be categorized into three subgroups: northern, central, and southern. Notably, there were significant differences among Han in Qinghai and other regions. Regarding the genetic relationships between Han populations and surrounding ethnic minorities, we observed a closer genetic affinity between different Han populations, but northern Han demonstrated a stronger relationship with the Hui ethnic group, while southern Han exhibited a closer connection with the Gelao and Li ethnic groups. In summary, this study presented a systematic analysis of haplogroup distribution, genetic substructure of Han populations and genetic relationships between Han populations and surrounding ethnic minorities based on 89 Y-SNPs and 16 Y-STRs systematically. Our research supplemented valuable insights into population genetics and forensic genetics, and provided data support for the forensic application of Y chromosome. The integration of Y-SNP haplogroups with Y-STR haplotypes offers enhanced understanding of the genetic substructure within Han populations, which holds significance for both population genetics research and forensic science applications.
Key words: population genetics; forensic genetics; Y-SNP; Y-STR
Xin Zhu, Xin Jin, Jun Liu, Lan Yang, Lixin Zou, Caixia Li, Jiang Huang, Li Jiang . Paternal genetic structure analysis of the modern Han populations based on Y-SNP and Y-STR[J]. Hereditas(Beijing), 2024 , 46(2) : 149 -167 . DOI: 10.16288/j.yczz.23-260
| [1] | Jobling MA, Tyler-Smith C. Human Y-chromosome variation in the genome-sequencing era. Nat Rev Genet, 2017, 18(8): 485-497. |
| [2] | Batini C, Jobling MA. Detecting past male-mediated expansions using the Y chromosome. Hum Genet, 2017, 136(5): 547-557. |
| [3] | King TE, Jobling MA. Founders, drift, and infidelity: the relationship between Y chromosome diversity and patrilineal surnames. Mol Biol Evol, 2009, 26(5): 1093-1102. |
| [4] | Charchar FJ, Bloomer LD, Barnes TA, Cowley MJ, Nelson CP, Wang Y, Denniff M, Debiec R, Christofidou P, Nankervis S, Dominiczak AF, Bani-Mustafa A, Balmforth AJ, Hall AS, Erdmann J, Cambien F, Deloukas P, Hengstenberg C, Packard C, Schunkert H, Ouwehand WH, Ford I, Goodall AH, Jobling MA, Samani NJ, Tomaszewski M. Inheritance of coronary artery disease in men: an analysis of the role of the Y chromosome. Lancet, 2012, 379(9819): 915-922. |
| [5] | Khan K, Siddiqi MH, Abbas M, Almas M, Idrees M. Forensic applications of Y chromosomal properties. Leg Med (Tokyo), 2017, (26): 86-91. |
| [6] | Kayser M. Forensic use of Y-chromosome DNA: a general overview. Hum Genet, 2017, 136(5): 621-635. |
| [7] | Santos FR, Epplen JT, Pena SD. Testing deficiency paternity cases with a Y-linked tetranucleotide repeat polymorphism. Exs, 1993, (67): 261-265. |
| [8] | Corach D, Filgueira Risso L, Marino M, Penacino G, Sala A. Routine Y-STR typing in forensic casework. Forensic Sci Int, 2001, 118(2-3): 131-135. |
| [9] | Pinto N, Gusm?o L, Amorim A. Mutation and mutation rates at Y chromosome specific Short Tandem Repeat Polymorphisms (STRs): a reappraisal. Forensic Sci Int Genet, 2014, (9): 20-24. |
| [10] | Laouina A, Nadifi S, Boulouiz R, El Arji M, Talbi J, El Houate B, Yahia H, Chbel F. Mutation rate at 17 Y-STR loci in "Father/Son" pairs from moroccan population. Leg Med (Tokyo), 2013, 15(5): 269-271. |
| [11] | Ballantyne KN, Goedbloed M, Fang RX, Schaap O, Lao O, Wollstein A, Choi Y, van Duijn K, Vermeulen M, Brauer S, Decorte R, Poetsch M, von Wurmb-Schwark N, de Knijff P, Labuda D, Vézina H, Knoblauch H, Lessig R, Roewer L, Ploski R, Dobosz T, Henke L, Henke J, Furtado MR, Kayser M. Mutability of Y-chromosomal microsatellites: rates, characteristics, molecular bases, and forensic implications. Am J Hum Genet, 2010, 87(3): 341-353. |
| [12] | Claerhout S, Vandenbosch M, Nivelle K, Gruyters L, Peeters A, Larmuseau MHD, Decorte R. Determining Y-STR mutation rates in deep-routing genealogies: Identification of haplogroup differences. Forensic Sci Int Genet, 2018, 34: 1-10. |
| [13] | Wickenheiser RA. Expanding DNA database effectiveness. Forensic Sci Int Synergy, 2022, 4: 100226. |
| [14] | Xue YL, Wang QJ, Long Q, Ng BL, Swerdlow H, Burton J, Skuce C, Taylor R, Abdellah Z, Zhao YL, Asan, MacArthur DG, Quail MA, Carter NP, Yang HM, Tyler-Smith C. Human Y chromosome base-substitution mutation rate measured by direct sequencing in a deep-rooting pedigree. Curr Biol, 2009, 19(17): 1453- 1457. |
| [15] | Wang CC, Li H. Inferring human history in East Asia from Y chromosomes. Investig Genet, 2013, 4(1): 11. |
| [16] | Yoshida Y, Kubo S. Y-SNP and Y-STR analysis in a Japanese population. Leg Med (Tokyo), 2008, 10(5): 243-252. |
| [17] | Cortellini V, Verzeletti A, Cerri N, Marino A, De Ferrari F,. Y-chromosome polymorphisms and ethnic group—a combined STR and SNP approach in a population sample from northern Italy. Croat Med J, 2013, 54(3): 279-285. |
| [18] | Song MY, Song F, Zhao CX, Hou YP. YHP: Y-chromosome Haplogroup Predictor for predicting male lineages based on Y-STRs. bioRxiv, 2021. |
| [19] | Yin CY, Sun H, Zhou HG, Jin L, Li SL. EA-YPredictor: one new software developed to predict pedigree haplogroup based on Y-STR haplotypes. Forensic Science and Technology, 2020, 45(2): 117-124. |
| [19] | 殷才湧, 孙辉, 周怀谷, 金立, 李士林. EA-YPredictor:基于Y-STR数据的家系特异性单倍群归属判别分析软件. 刑事技术, 2020, 45(2): 117-124. |
| [20] | Dogan S, Babic N, Gurkan C, Goksu A, Marjanovic D, Hadziavdic V. Y-chromosomal haplogroup distribution in the Tuzla Canton of Bosnia and Herzegovina: a concordance study using four different in silico assignment algorithms based on Y-STR data. Homo, 2016, 67(6): 471-483. |
| [21] | Ralf A, Van Oven M, Zhong KY, Kayser M. Simultaneous analysis of hundreds of Y-chromosomal SNPs for high-resolution paternal lineage classification using targeted semiconductor sequencing. Hum Mutat, 2015, 36(1): 151-159. |
| [22] | Xie MK, Song F, Li JN, Lang M, Luo HB, Wang Z, Wu J, Li CZ, Tian CC, Wang WZ, Ma H, Song Z, Fan YJ, Hou YP. Genetic substructure and forensic characteristics of Chinese Hui populations using 157 Y-SNPs and 27 Y-STRs. Forensic Sci Int Genet, 2019, 41: 11-18. |
| [23] | Wang MG, Wang Z, He GL, Liu J, Wang SY, Qian XQ, Lang M, Li JN, Xie MK, Li CT, Hou YP. Developmental validation of a custom panel including 165 Y-SNPs for Chinese Y-chromosomal haplogroups dissection using the ion S5 XL system. Forensic Sci Int Genet, 2019, 38: 70-76. |
| [24] | Yin CY, Ren YJ, Adnan A, Tian JZ, Guo KJ, Xia MY, He ZW, Zhai D, Chen XY, Wang L, Li X, Qin XJ, Li SL, Jin L. Title: developmental validation of Y-SNP pedigree tagging system: a panel via quick ARMS PCR. Forensic Sci Int Genet, 2020, 46: 102271. |
| [25] | Zhou ZH, Zhou YX, Yao YN, Qian JL, Liu BN, Yang QR, Shao CC, Li H, Sun K, Tang QQ, Xie JH. A 16-plex Y-SNP typing system based on allele-specific PCR for the genotyping of Chinese Y-chromosomal haplogroups. Leg Med (Tokyo), 2020, 46: 101720. |
| [26] | Claerhout S, Verstraete P, Warnez L, Vanpaemel S, Larmuseau M, Decorte R. CSYseq: the first Y-chromosome sequencing tool typing a large number of Y-SNPs and Y-STRs to unravel worldwide human population genetics. PLoS Genet, 2021, 17(9): e1009758. |
| [27] | Tao RY, Li M, Chai SY, Xia RC, Qu YL, Yuan CL, Yang GY, Dong XY, Bian YN, Zhang SH, Li CT. Developmental validation of a 381 Y-chromosome SNP panel for haplogroup analysis in the Chinese populations. Forensic Sci Int Genet, 2023, 62: 102803. |
| [28] | He GL, Wang MG, Miao L, Chen J, Zhao J, Sun QX, Duan SH, Wang ZY, Xu XF, Sun YT, Liu Y, Liu J, Wang Z, Wei LH, Liu C, Ye J, Wang L. Multiple founding paternal lineages inferred from the newly-developed 639-plex Y-SNP panel suggested the complex admixture and migration history of Chinese people. Hum Genomics, 2023, 17(1): 29. |
| [29] | Liu J, Jiang LR, Zhao MY, Du WA, Wen YF, Li SY, Zhang SY, Fang FF, Shen J, He GL, Wang MG, Dai H, Hou YP, Wang Z. Development and validation of a custom panel including 256 Y-SNPs for Chinese Y-chromosomal haplogroups dissection. Forensic Sci Int Genet, 2022, 61: 102786. |
| [30] | 中华人民共和国国家统计局.国家数据-2021年度第七次人口普查. (2021-11-26)[2023-10-11].http://www.stats.gov.cn/sj/pcsj/rkpc/d7c/. |
| [31] | Yu XE, Li H. Origin of ethnic groups, linguistic families, and civilizations in China viewed from the Y chromosome. Mol Genet Genomics, 2021, 296(4): 783-797. |
| [32] | Li YC, Ye WJ, Jiang CG, Zeng Z, Tian JY, Yang LQ, Liu KJ, Kong QP. River valleys shaped the maternal genetic landscape of Han Chinese. Mol Biol Evol, 2019, 36(8): 1643-1652. |
| [33] | Lang M, Liu H, Song F, Qiao XH, Ye Y, Ren H, Li JN, Huang J, Xie MK, Chen SJ, Song MY, Zhang YF, Qian XQ, Yuan TX, Wang Z, Liu YM, Wang MG, Liu YC, Liu J, Hou YP. Forensic characteristics and genetic analysis of both 27 Y-STRs and 143 Y-SNPs in Eastern Han Chinese population. Forensic Sci Int Genet, 2019, 42: e13-e20. |
| [34] | Gu JQ, Jiang L, Xu JY, Wang H, Wei YL, Li CX. Genetic structure of East Asians based on high-density SNP data. Prog Biochem Biophys, 2023, 50(11): 1-14. |
| [34] | 顾佳琪, 江丽, 徐景怡, 王寒, 魏以梁, 李彩霞. 基于高密度SNP数据的东亚人群遗传结构研究. 生物化学与生物物理进展, 2023, 50(11): 1-14. |
| [35] | Zhang XY, Lu L, Yu H, Zhang X, Deng HB. Research on the distribution characteristics and formation mechanisms of Chinese traditional villages. World Regional Studies, 2023, 32(4): 132-143. |
| [35] | 张晓瑶, 陆林, 虞虎, 张潇, 邓洪波. 中国传统村落分布特征与成因机制研究. 世界地理研究, 2023, 32(4): 132-143. |
| [36] | Chiang CWK, Mangul S, Robles C, Sankararaman S. A comprehensive map of genetic variation in the world's largest ethnic group-Han Chinese. Mol Biol Evol, 2018, 35(11): 2736-2750. |
| [37] | Xu SH, Yin XY, Li SL, Jin WF, Lou HY, Yang L, Gong XH, Wang HY, Shen YP, Pan XD, He YG, Yang YJ, Wang Y, Fu WQ, An Y, Wang JC, Tan JZ, Qian J, Chen XL, Zhang X, Sun YF, Zhang XJ, Wu BL, Jin L. Genomic dissection of population substructure of Han Chinese and its implication in association studies. Am J Hum Genet, 2009, 85(6): 762-774. |
| [38] | Cao YN, Li L, Xu M, Feng ZM, Sun XH, Lu JL, Xu Y, Du PN, Wang TG, Hu RY, Ye Z, Shi LX, Tang XL, Yan L, Gao ZN, Chen G, Zhang YF, Chen LL, Ning G, Bi YF, Wang WQ, ChinaMAP Consortium. The ChinaMAP analytics of deep whole genome sequences in 10,588 individuals. Cell Res, 2020, 30(9): 717-731. |
| [39] | Yin CY, Su KY, He ZW, Zhai D, Guo KJ, Chen XY, Jin L, Li SL. Genetic reconstruction and forensic analysis of Chinese Shandong and Yunnan Han Populations by co-analyzing Y Chromosomal STRs and SNPs. Genes (Basel), 2020, 11(7): 743. |
| [40] | Zhang X, Tang Z, Wang B, Zhou XD, Zhou LM, Zhang GY, Tian JZ, Zhao YQ, Yao ZQ, Tian L, Zhang SH, Xia H, Jin L, Li CT, Li SL. Forensic analysis and genetic structure construction of Chinese Chongming Island Han based on Y Chromosome STRs and SNPs. Genes (Basel), 2022, 13(8): 1363. |
| [41] | Zhang YL, Zhang R, Li M, Luo L, Zhang JY, Ding JD, Zhang SH, Li CT, Bian YN, Zhou CJ. Genetic polymorphism of both 29 Y-STRs and 213 Y-SNPs in Han populations from Shandong Province, China. Leg Med (Tokyo), 2020, 47:101738. |
| [42] | Song MY, Wang Z, Zhang YQ, Zhao CX, Lang M, Xie MK, Qian XQ, Wang MG, Hou YP. Forensic characteristics and phylogenetic analysis of both Y-STR and Y-SNP in the Li and Han ethnic groups from Hainan Island of China. Forensic Sci Int Genet, 2019, 39: e14-e20. |
| [43] | Song F, Song MY, Luo HB, Xie MK, Wang XD, Dai H, Hou YP.Paternal genetic structure of Kyrgyz ethnic group in China revealed by high-resolution Y-chromosome STRs and SNPs. Electrophoresis, 2021, 42(19): 1892-1899. |
| [44] | Wang MG, He GL, Zou X, Liu J, Ye ZW, Ming TY, Du WA, Wang Z, Hou YP. Genetic insights into the paternal admixture history of Chinese Mongolians via high- resolution customized Y-SNP SNaPshot panels. Forensic Sci Int Genet, 2021, 54: 102565. |
| [45] | Song MY, Wang ZF, Lyu Q, Ying J, Wu Q, Jiang LR, Wang F, Zhou YX, Song F, Luo HB, Hou YP, Song XB, Ying BW. Paternal genetic structure of the Qiang ethnic group in China revealed by high-resolution Y-chromosome STRs and SNPs. Forensic Sci Int Genet, 2022, 61: 102774. |
| [46] | Wang F, Song F, Song MY, Li JN, Xie MK, Hou YP. Genetic reconstruction and phylogenetic analysis by 193 Y-SNPs and 27 Y-STRs in a Chinese Yi ethnic group. Electrophoresis, 2021, 42(14-15): 1480-1487. |
| [47] | Wang F, Song F, Song MY, Luo HB, Hou YP. Genetic structure and paternal admixture of the modern Chinese Zhuang population based on 37 Y-STRs and 233 Y-SNPs. Forensic Sci Int Genet, 2022, 58: 102681. |
| [48] | Wang XJ, Qian EF, Li Y, Song ZY, Zhao H, Xie HX, Li CX, Huang J, Jiang L. A genetic sub-structure study of the Tibetan population in Southwest China. Hereditas (Beijing), 2020, 42(6): 565-576. |
| [48] | 王小娟, 钱恩芳, 李悦, 宋正阳, 赵慧, 谢何鑫, 李彩霞, 黄江, 江丽. 中国西南地区藏族人群遗传亚结构研究. 遗传, 2020, 42(6): 565-576. |
| [49] | Wang XJ, Jiang L, Qian EF, Long F, Cui W, Ji AQ, Zhang FS, Zou K, Huang J, Li CX. Genetic polymorphisms and haplotypic structure analysis of the Guizhou Gelao ethnic group based on 35 Y-STR loci. Leg Med (Tokyo), 2020, 43: 101666. |
| [50] | Trejaut JA, Poloni ES, Yen JC, Lai YH, Loo JH, Lee CL, He CL, Lin M. Taiwan Y-chromosomal DNA variation and its relationship with Island Southeast Asia. BMC Genet, 2014, 15: 77. |
| [51] | Wang H, Mao J, Xia Y, Bai XG, Zhu WQ, Peng D, Liang WB. Genetic polymorphisms of 17 Y-chromosomal STRs in the Chengdu Han population of China. Int J Legal Med, 2017, 131(4): 967-968. |
| [52] | Zhu BF, Wu YM, Shen CM, Yang TH, Deng YJ, Xun X, Tian YF, Yan JC, Li T. Genetic analysis of 17 Y-chromosomal STRs haplotypes of Chinese Tibetan ethnic group residing in Qinghai province of China. Forensic Sci Int, 2008, 175(2-3): 238-243. |
| [53] | ISOGG. Y-DNA haplogroup tree. (2019-10-08)[2022-11-22].https://isogg.org/tree/index.html. |
| [54] | Nei M. Analysis of gene diversity in subdivided populations. Proc Natl Acad Sci USA, 1973, 70(12): 3321-3323. |
| [55] | Nei M, Tajima F. DNA polymorphism detectable by restriction endonucleases. Genetics, 1981, 97(1): 145-163. |
| [56] | Ito K, Murphy D. Application of ggplot2 to pharmacometric graphics. CPT Pharmacometrics Syst Pharmacol, 2013, 2(10): e79. |
| [57] | Excoffier L, Lischer HE. Arlequin suite ver 3.5: a new series of programs to perform population genetics analyses under Linux and Windows. Mol Ecol Resour, 2010, 10(3): 564-567. |
| [58] | Excoffier L, Smouse PE, Quattro JM. Analysis of molecular variance inferred from metric distances among DNA haplotypes: application to human mitochondrial DNA restriction data. Genetics, 1992, 131(2): 479-491. |
| [59] | Kumar S, Stecher G, Li M, Knyaz C, Tamura K. MEGA X: molecular evolutionary genetics analysis across computing platforms. Mol Biol Evol, 2018, 35(6): 1547-1549. |
| [60] | Bandelt HJ, Forster P, R?hl A. Median-joining networks for inferring intraspecific phylogenies. Mol Biol Evol, 1999, 16(1): 37-48. |
| [61] | 蔡晓云.Y染色体揭示的早期人类进入东亚和东亚人群特征形成过程[学位论文]. 复旦大学, 2009. |
| [62] | Yan S, Wang CC, Zheng HX, Wang W, Qin ZD, Wei LH, Wang Y, Pan XD, Fu WQ, He YG, Xiong LJ, Jin WF, Li SL, An Y, Li H, Jin L. Y chromosomes of 40% Chinese descend from three Neolithic super-grandfathers. PLoS One, 2014, 9(8): e105691. |
| [63] | Sagart L, Jacques G, Lai YF, Ryder RJ, Thouzeau V, Greenhill SJ, List JM. Dated language phylogenies shed light on the ancestry of Sino-Tibetan. Proc Natl Acad Sci USA, 2019, 116(21): 10317-10322. |
| [64] | Wang LX, Lu Y, Zhang C, Wei LH, Yan S, Huang YZ, Wang CC, Mallick S, Wen SQ, Jin L, Xu SH, Li H. Reconstruction of Y-chromosome phylogeny reveals two neolithic expansions of Tibeto-Burman populations. Mol Genet Genomics, 2018, 293(5): 1293-1300. |
| [65] | Wang CC, Yeh HY, Popov AN, Zhang HQ, Matsumura H, Sirak K, Cheronet O, Kovalev A, Rohland N, Kim AM, Mallick S, Bernardos R, Tumen D, Zhao J, Liu YC, Liu JY, Mah M, Wang K, Zhang Z, Adamski N, Broomandkhoshbacht N, Callan K, Candilio F, Carlson KSD, Culleton BJ, Eccles L, Freilich S, Keating D, Lawson AM, Mandl K, Michel M, Oppenheimer J, ?zdo?an KT, Stewardson K, Wen SQ, Yan S, Zalzala F, Chuang R, Huang CJ, Looh H, Shiung CC, Nikitin YG, Tabarev AV, Tishkin AA, Lin S, Sun ZY, Wu XM, Yang TL, Hu X, Chen L, Du H, Bayarsaikhan J, Mijiddorj E, Erdenebaatar D, Iderkhangai TO, Myagmar E, Kanzawa-Kiriyama H, Nishino M, Shinoda KI, Shubina OA, Guo JX, Cai WW, Deng QY, Kang LL, Li DW, Li DN, Lin R, Nini, Shrestha R, Wang LX, Wei LH, Xie GM, Yao HB, Zhang MF, He GL, Yang XM, Hu R, Robbeets M, Schiffels S, Kennett DJ, Jin L, Li H, Krause J, Pinhasi R, Reich D. Genomic insights into the formation of human populations in East Asia. Nature, 2021, 591(7850): 413-419. |
| [66] | Zhong H, Shi H, Qi XB, Duan ZY, Tan PP, Jin L, Su B, Ma RZ. Extended Y chromosome investigation suggests postglacial migrations of modern humans into East Asia via the northern route. Mol Biol Evol, 2011, 28(1): 717-727. |
| [67] | Shi H, Dong YL, Wen B, Xiao CJ, Underhill PA, Shen PD, Chakraborty R, Jin L, Su B.Y-chromosome evidence of southern origin of the East Asian-specific haplogroup O3-M122. Am J Hum Genet, 2005, 77(3): 408-419. |
| [68] | Ning C, Yan S, Hu K, Cui YQ, Jin L.Refined phylogenetic structure of an abundant East Asian Y-chromosomal haplogroup O*-M134. Eur J Hum Genet, 2016, 24(2): 307-309. |
| [69] | Kang LL, Lu Y, Wang CC, Hu K, Chen F, Liu K, Li SL, Jin L, Li H, Genographic Consortium. Y-chromosome O 3 haplogroup diversity in Sino-Tibetan populations reveals two migration routes into the eastern Himalayas. Ann Hum Genet, 2012, 76(1): 92-99. |
| [70] | Zhang XM, Kampuansai J, Qi XB, Yan S, Yang ZH, Serey B, Sovannary T, Bunnath L, Aun HS, Samnom H, Kutanan W, Luo X, Liao SY, Kangwanpong D, Jin L, Shi H, Su B. An updated phylogeny of the human Y-chromosome lineage O2a-M95 with novel SNPs. PLoS One, 2014, 9(6): e101020. |
| [71] | Sun J, Li YX, Ma PC, Yan S, Cheng HZ, Fan ZQ, Deng XH, Ru K, Wang CC, Wang CC, Chen G, Wei LH. Shared paternal ancestry of Han, Tai-Kadai-speaking and Austronesian-speaking populations as revealed by the high resolution phylogeny of O1a-M119 and distribution of its sub-lineages within China. Am J Phys Anthropol, 2021, 174(4): 686-700. |
| [72] | Yan S, Wang CC, Li H, Li SL, Jin L, Genographic Consortium. An updated tree of Y-chromosome Haplogroup O and revised phylogenetic positions of mutations P164 and PK4. Eur J Hum Genet, 2011, 19(9): 1013-1015. |
| [73] | Chen H, Lin R, Lu Y, Zhang R, Gao Y, He YG, Xu SH. Tracing Bai-Yue ancestry in aboriginal Li People on Hainan Island. Mol Biol Evol, 2022, 39(10): msac210. |
| [74] | Wei LH, Huang YZ, Yan S, Wen SQ, Wang LX, Du PX, Yao DL, Li SL, Yang YJ, Jin L, Li H. Phylogeny of Y-chromosome haplogroup C3b-F1756, an important paternal lineage in Altaic-speaking populations. J Hum Genet, 2017, 62(10): 915-918. |
| [75] | Zhabagin M, Sabitov Z, Tazhigulova I, Alborova I, Agdzhoyan A, Wei LH, Urasin V, Koshel S, Mustafin K, Akilzhanova A, Li H, Balanovsky O, Balanovska E.Medieval super-grandfather founder of Western Kazakh Clans from Haplogroup C2a1a2-M48. J Hum Genet, 2021, 66(7): 707-716. |
| [76] | Dulik MC, Osipova LP, Schurr TG. Y-chromosome variation in Altaian Kazakhs reveals a common paternal gene pool for Kazakhs and the influence of Mongolian expansions. PLoS One, 2011, 6(3): e17548. |
| [77] | Chiaroni J, Underhill PA, Cavalli-Sforza LL. Y chromosome diversity, human expansion, drift, and cultural evolution. Proc Natl Acad Sci USA, 2009, 106(48): 20174-20179. |
| [78] | Qian EF, Deng P, Huang MS, Ma Q, Zhao H, Li CX, Huang J, Jiang L. Genetic polymorphism of Y chromosome haplogroup D-M174 in East Asian populations. J Forensic Med, 2019, 35(3): 308-313. |
| [78] | 钱恩芳, 邓盼, 黄美莎, 马泉, 赵慧, 李彩霞, 黄江, 江丽. 东亚族群中Y染色体D-M174单倍群的遗传多态性. 法医学杂志, 2019, 35(3): 308-313. |
| [79] | Shi H, Zhong H, Peng Y, Dong YL, Qi XB, Zhang F, Liu LF, Tan SJ, Ma RZ, Xiao CJ, Wells RS, Jin L, Su B. Y chromosome evidence of earliest modern human settlement in East Asia and multiple origins of Tibetan and Japanese populations. BMC biology, 2008, 6: 45. |
| [80] | Balaresque P, Bowden GR, Parkin EJ, Omran GA, Heyer E, Quintana-Murci L, Roewer L, Stoneking M, Nasidze I, Carvalho-Silva DR, Tyler-Smith C, de Knijff P, Jobling MA. Dynamic nature of the proximal AZFc region of the human Y chromosome: multiple independent deletion and duplication events revealed by microsatellite analysis. Hum Mutat, 2008, 29(10): 1171-1180. |
| [81] | Malyarchuk B, Derenko M, Denisova G, Wozniak M, Grzybowski T, Dambueva I, Zakharov I. Phylogeography of the Y-chromosome haplogroup C in northern Eurasia. Ann Hum Genet, 2010, 74(6): 539-546. |
| [82] | Tofanelli S, Ferri G, Bulayeva K, Caciagli L, Onofri V, Taglioli L, Bulayev O, Boschi I, Alù M, Berti A, Rapone C, Beduschi G, Luiselli D, Cadenas AM, Awadelkarim KD, Mariani-Costantini R, Elwali NE, Verginelli F, Pilli E, Herrera RJ, Gusm?o L, Paoli G, Capelli C. J1-M267 Y lineage marks climate-driven pre-historical human displacements. Eur J Hum Genet, 2009, 17(11): 1520-1524. |
| [83] | Myres NM, Ekins JE, Lin AA, Cavalli-Sforza LL, Woodward SR, Underhill PA.Y-chromosome short tandem repeat DYS458.2 non-consensus alleles occur independently in both binary haplogroups J1-M267 and R1b3-M405. Croat Med J, 2007, 48(4): 450-459. |
| [84] | Wang CC, Lu Y, Kang LL, Ding HQ, Yan S, Guo JX, Zhang Q, Wen SQ, Wang LX, Zhang MF, Tong XZ, Huang XF, Nie SJ, Deng QY, Zhu BF, Jin L, Li H. The massive assimilation of indigenous East Asian populations in the origin of Muslim Hui people inferred from paternal Y chromosome. Am J Phys Anthropol, 2019, 169(2): 341-347. |
| [85] | Wang QY, Zhao J, Ren Z, Sun J, He GL, Guo JX, Zhang HL, Ji JY, Liu YB, Yang MQ, Yang XM, Chen JW, Zhu KY, Wang R, Li YX, Chen G, Huang J, Wang CC. Male-dominated migration and massive mssimilation of indigenous East Asians in the formation of muslim Hui People in Southwest China. Front Genet, 2020, 11: 618614. |
| [86] | Zhong H, Shi H, Qi XB, Xiao CJ, Jin L, Ma RZ, Su B. Global distribution of Y-chromosome haplogroup C reveals the prehistoric migration routes of African exodus and early settlement in East Asia. J Hum Genet, 2010, 55(7): 428-435. |
/
| 〈 |
|
〉 |