HLA genotyping by next-generation sequencing of complementary DNA

被引:10
作者
Segawa, Hidenobu [1 ]
Kukita, Yoji [1 ]
Kato, Kikuya [2 ]
机构
[1] Osaka Med Ctr Canc & Cardiovasc Dis, Res Inst, Dept Mol & Med Genet, Higashinari Ku, 1-3-3 Nakamichi, Osaka 5378511, Japan
[2] Nara Inst Sci & Technol, Lab Med Genom, 8916-5 Takayama, Nara 6300101, Japan
关键词
Next-generation sequencing; cDNA; HLA; Molecular barcode; STEM-CELL TRANSPLANTATION; SSOP-LUMINEX METHOD; HIGH-RESOLUTION; HIGH-THROUGHPUT; CLINICAL TRANSPLANTATION; DP EXPRESSION; LARGE-SCALE; CLASS-I; PCR; ALIGNMENT;
D O I
10.1186/s12864-017-4300-7
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background: Genotyping of the human leucocyte antigen (HLA) is indispensable for various medical treatments. However, unambiguous genotyping is technically challenging due to high polymorphism of the corresponding genomic region. Next-generation sequencing is changing the landscape of genotyping. In addition to high throughput of data, its additional advantage is that DNA templates are derived from single molecules, which is a strong merit for the phasing problem. Although most currently developed technologies use genomic DNA, use of cDNA could enable genotyping with reduced costs in data production and analysis. We thus developed an HLA genotyping system based on next-generation sequencing of cDNA. Methods: Each HLA gene was divided into 3 or 4 target regions subjected to PCR amplification and subsequent sequencing with Ion Torrent PGM. The sequence data were then subjected to an automated analysis. The principle of the analysis was to construct candidate sequences generated from all possible combinations of variable bases and arrange them in decreasing order of the number of reads. Upon collecting candidate sequences from all target regions, 2 haplotypes were usually assigned. Cases not assigned 2 haplotypes were forwarded to 4 additional processes: selection of candidate sequences applying more stringent criteria, removal of artificial haplotypes, selection of candidate sequences with a relaxed threshold for sequence matching, and countermeasure for incomplete sequences in the HLA database. Results: The genotyping system was evaluated using 30 samples; the overall accuracy was 97.0% at the field 3 level and 98.3% at the G group level. With one sample, genotyping of DPB1 was not completed due to short read size. We then developed a method for complete sequencing of individual molecules of the DPB1 gene, using the molecular barcode technology. Conclusion: The performance of the automatic genotyping system was comparable to that of systems developed in previous studies. Thus, next-generation sequencing of cDNA is a viable option for HLA genotyping.
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页数:12
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共 42 条
[1]   High-allelic variability in HLA-C mRNA expression: association with HLA-extended haplotypes [J].
Bettens, F. ;
Brunet, L. ;
Tiercy, J-M .
GENES AND IMMUNITY, 2014, 15 (03) :176-181
[2]  
Boegel S, 2015, METHODS MOL BIOL, V1310, P247, DOI 10.1007/978-1-4939-2690-9_20
[3]   HLA typing from RNA-Seq sequence reads [J].
Boegel, Sebastian ;
Loewer, Martin ;
Schaefer, Michael ;
Bukur, Thomas ;
de Graaf, Jos ;
Boisguerin, Valesca ;
Tuereci, Oezlem ;
Diken, Mustafa ;
Castle, John C. ;
Sahin, Ugur .
GENOME MEDICINE, 2012, 4
[4]   Annotation of functional variation in personal genomes using RegulomeDB [J].
Boyle, Alan P. ;
Hong, Eurie L. ;
Hariharan, Manoj ;
Cheng, Yong ;
Schaub, Marc A. ;
Kasowski, Maya ;
Karczewski, Konrad J. ;
Park, Julie ;
Hitz, Benjamin C. ;
Weng, Shuai ;
Cherry, J. Michael ;
Snyder, Michael .
GENOME RESEARCH, 2012, 22 (09) :1790-1797
[5]   Molecular mechanisms of HLA association with autoimmune diseases [J].
Caillat-Zucman, S. .
TISSUE ANTIGENS, 2009, 73 (01) :1-8
[6]   A Short-Read Multiplex Sequencing Method for Reliable, Cost-Effective and High-Throughput Genotyping in Large-Scale Studies [J].
Cao, Hongzhi ;
Wang, Yu ;
Zhang, Wei ;
Chai, Xianghua ;
Zhang, Xiandong ;
Chen, Shiping ;
Yang, Fan ;
Zhang, Caifen ;
Guo, Yulai ;
Liu, Ying ;
Tang, Zhoubiao ;
Chen, Caifen ;
Xue, Yaxin ;
Zhen, Hefu ;
Xu, Yinyin ;
Rao, Bin ;
Liu, Tao ;
Zhao, Meiru ;
Zhang, Wenwei ;
Li, Yingrui ;
Zhang, Xiuqing ;
Tellier, Laurent C. A. M. ;
Krogh, Anders ;
Kristiansen, Karsten ;
Wang, Jun ;
Li, Jian .
HUMAN MUTATION, 2013, 34 (12) :1715-1720
[7]   Next-Generation Sequencing of the HLA locus: Methods and impacts on HLA typing, population genetics and disease association studies [J].
Carapito, Raphael ;
Radosavljevic, Mirjana ;
Bahram, Seiamak .
HUMAN IMMUNOLOGY, 2016, 77 (11) :1016-1023
[8]   Mono-allelic amplification of exons 2-4 using allele group-specific primers for sequence-based typing (SBT) of the HLA-A, -B and -C genes: Preparation and validation of ready-to-use pre-SBT mini-kits [J].
Dormoy, A ;
Froelich, N ;
Leisenbach, R ;
Weschler, B ;
Cazenave, JP ;
Tongio, MM .
TISSUE ANTIGENS, 2003, 62 (03) :201-216
[9]   MUSCLE: multiple sequence alignment with high accuracy and high throughput [J].
Edgar, RC .
NUCLEIC ACIDS RESEARCH, 2004, 32 (05) :1792-1797
[10]   High resolution HLA class I and II typing and CTLp frequency in unrelated donor transplantation: a single-institution retrospective study of 69 BMTs [J].
El Kassar, N ;
Legouvello, S ;
Joseph, CM ;
Salesses, P ;
Rieux, C ;
Cordonnier, C ;
Vernant, JP ;
Farcet, JP ;
Bierling, P ;
Kuentz, M .
BONE MARROW TRANSPLANTATION, 2001, 27 (01) :35-43