Whole genome sequencing of Plasmodium falciparum from dried blood spots using selective whole genome amplification

被引:101
作者
Oyola, Samuel O. [1 ,5 ]
Ariani, Cristina V. [1 ]
Hamilton, William L. [1 ,9 ]
Kekre, Mihir [1 ]
Amenga-Etego, Lucas N. [6 ]
Ghansah, Anita [7 ]
Rutledge, Gavin G. [1 ]
Redmond, Seth [8 ]
Manske, Magnus [1 ]
Jyothi, Dushyanth [1 ]
Jacob, Chris G. [1 ]
Otto, Thomas D. [1 ]
Rockett, Kirk [2 ,3 ]
Newbold, Chris I. [4 ]
Berriman, Matthew [1 ]
Kwiatkowski, Dominic P. [1 ,2 ,3 ]
机构
[1] Wellcome Trust Sanger Inst, Hinxton CB10 1SA, England
[2] Univ Oxford, MRC Ctr Genom & Global Hlth, Oxford OX3 7BN, England
[3] Univ Oxford, Wellcome Trust Ctr Human Genet, Oxford OX3 7BN, England
[4] Univ Oxford, Weatherall Inst Mol Med, Oxford OX3 9DS, England
[5] Int Livestock Res Inst, Box 30709, Nairobi, Kenya
[6] Navrongo Hlth Res Ctr, POB 114, Navrongo, Ghana
[7] Univ Ghana, Noguchi Mem Inst Med Res, POB LG 581, Legon, Accra, Ghana
[8] Broad Inst, 415 Main St, Cambridge, MA 02142 USA
[9] Univ Cambridge, Sch Clin Med, Addenbrookes Hosp, Hills Rd, Cambridge CB2 0SP, England
来源
MALARIA JOURNAL | 2016年 / 15卷
基金
英国惠康基金; 英国医学研究理事会;
关键词
Malaria; Dried blood spot; Selective whole genome amplification; Field samples; Whole genome sequencing; MALARIA; CHLOROQUINE; RESISTANCE; PARASITES; SAMPLES; DNA; PYRIMETHAMINE; FAILURE; PFCRT; GENE;
D O I
10.1186/s12936-016-1641-7
中图分类号
R51 [传染病];
学科分类号
100401 ;
摘要
Background: Translating genomic technologies into healthcare applications for the malaria parasite Plasmodium falciparum has been limited by the technical and logistical difficulties of obtaining high quality clinical samples from the field. Sampling by dried blood spot (DBS) finger-pricks can be performed safely and efficiently with minimal resource and storage requirements compared with venous blood (VB). Here, the use of selective whole genome amplification (sWGA) to sequence the P. falciparum genome from clinical DBS samples was evaluated, and the results compared with current methods that use leucodepleted VB. Methods: Parasite DNA with high (>95%) human DNA contamination was selectively amplified by Phi29 polymerase using short oligonucleotide probes of 8-12 mers as primers. These primers were selected on the basis of their differential frequency of binding the desired (P. falciparum DNA) and contaminating (human) genomes. Results: Using sWGA method, clinical samples from 156 malaria patients, including 120 paired samples for head-to-head comparison of DBS and leucodepleted VB were sequenced. Greater than 18-fold enrichment of P. falciparum DNA was achieved from DBS extracts. The parasitaemia threshold to achieve >5x coverage for 50% of the genome was 0.03% (40 parasites per 200 white blood cells). Over 99% SNP concordance between VB and DBS samples was achieved after excluding missing calls. Conclusion: The sWGA methods described here provide a reliable and scalable way of generating P. falciparum genome sequence data from DBS samples. The current data indicate that it will be possible to get good quality sequence on most if not all drug resistance loci from the majority of symptomatic malaria patients. This technique overcomes a major limiting factor in P. falciparum genome sequencing from field samples, and paves the way for large-scale epidemiological applications.
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