Selection of Genome-Wide SNPs for Pooled Allelotyping Assays Useful for Population Monitoring.
Haemonchus contortus
SNP discovery
allelotyping
pest management
population genetics
resistance
Journal
Genome biology and evolution
ISSN: 1759-6653
Titre abrégé: Genome Biol Evol
Pays: England
ID NLM: 101509707
Informations de publication
Date de publication:
02 03 2022
02 03 2022
Historique:
accepted:
12
02
2022
pubmed:
19
2
2022
medline:
20
4
2022
entrez:
18
2
2022
Statut:
ppublish
Résumé
Parasitic worms are serious pests of humans, livestock, and crops worldwide. Multiple management strategies are employed in order to reduce their impact, and some of these may affect their genome and population allelic frequency distribution. The evolution of chemical resistance, ecological changes, and pest dispersal has allowed an increasing number of pests to become difficult to control with current management methods. Their lifestyle limits the use of ecological and individual-based management of populations. There is a need to develop rapid, affordable, and simple diagnostics to assess the efficacy of management strategies and delay the evolution of resistance to these strategies. This study presents a multilocus, equal-representation, whole-genome pooled single nucleotide polymorphisms (SNPs) selection approach as a monitoring tool for the ovine nematode parasite Haemonchus contortus. The SNP selection method used two reference genomes of different quality, then validated these SNPs against a high-quality recent genome assembly. From over 11 million high-quality SNPs identified, 334 SNPs were selected, of which 262 were species-specific, yielded similar allele frequencies when assessed as multiple individuals or as pools of individuals, and suitable to distinguish mixed nematode isolate pools from single isolate pools. As a proof-of-concept, 21 Australian H. contortus populations with various phenotypes and genotypes were screened. This analysis confirmed the overall low level of genetic differentiation between populations collected from the field, but clearly identifying highly inbred populations, and populations showing genetic signatures associated with chemical resistance. The analysis showed that 66% of the SNPs were necessary for stability in assessing population genetic patterns, and SNP pairs did not show linkage according to allelic frequencies across the 21 populations. This method demonstrates that ongoing monitoring of parasite allelic frequencies and genetic changes can be achieved as a management assessment tool to identify drug-treatment failure, population incursions, and inbreeding signatures due to selection. The SNP selection method could also be applied to other parasite species.
Identifiants
pubmed: 35179579
pii: 6531970
doi: 10.1093/gbe/evac030
pmc: PMC8911822
pii:
doi:
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Informations de copyright
© The Author(s) 2022. Published by Oxford University Press on behalf of the Society for Molecular Biology and Evolution.
Références
Nat Rev Dis Primers. 2020 May 28;6(1):44
pubmed: 32467581
Parasit Vectors. 2017 Jan 17;10(1):31
pubmed: 28095895
Parasit Vectors. 2013 Sep 25;6(1):279
pubmed: 24499637
Adv Parasitol. 2016;93:397-428
pubmed: 27238009
Genome Biol Evol. 2014 Apr 30;6(5):1210-8
pubmed: 24787620
Mol Biol Evol. 2012 Sep;29(9):2177-86
pubmed: 22411855
Exp Parasitol. 2013 Jun;134(2):171-7
pubmed: 23518455
Genetics. 2008 Dec;180(4):1877-87
pubmed: 18854587
Antimicrob Agents Chemother. 2014 Dec;58(12):7475-83
pubmed: 25288079
Nat Rev Dis Primers. 2017 Aug 03;3:17050
pubmed: 28770814
Adv Parasitol. 2016;93:1-30
pubmed: 27238001
Int J Parasitol Drugs Drug Resist. 2012 Mar 03;2:92-7
pubmed: 24533269
Parasit Vectors. 2016 Jun 17;9(1):349
pubmed: 27316714
Onderstepoort J Vet Res. 2013 Mar 13;80(1):539
pubmed: 23718204
Evol Appl. 2013 Apr 24;6(5):842-856
pubmed: 29387170
Exp Parasitol. 2012 Sep;132(1):40-6
pubmed: 21910990
PLoS Negl Trop Dis. 2015 Feb 06;9(2):e0003494
pubmed: 25658086
Infect Genet Evol. 2019 Mar;68:177-184
pubmed: 30576839
Int J Parasitol Drugs Drug Resist. 2017 Aug;7(2):236-240
pubmed: 28501715
Int J Parasitol Drugs Drug Resist. 2018 Dec;8(3):596-606
pubmed: 30031685
Parasite. 2008 Sep;15(3):506-9
pubmed: 18814731
BMC Bioinformatics. 2016 Jan 12;17:29
pubmed: 26754002
Int J Parasitol. 2002 May;32(5):527-31
pubmed: 11943225
Int J Parasitol. 2008 Jan;38(1):111-22
pubmed: 17727857
Nat Rev Genet. 2014 Nov;15(11):749-63
pubmed: 25246196
Int J Parasitol. 2016 Nov;46(12):755-769
pubmed: 27620133
Parasitology. 2018 Nov;145(13):1655-1664
pubmed: 29415781
Proc Natl Acad Sci U S A. 2017 Apr 11;114(15):3885-3890
pubmed: 28289202
Parasite. 2019;26:64
pubmed: 31697232
Parasit Vectors. 2016 Nov 15;9(1):586
pubmed: 27846862
Int J Parasitol. 1994 Feb;24(1):103-8
pubmed: 8021097
Mol Biochem Parasitol. 2011 Dec;180(2):99-105
pubmed: 21945142
Int J Parasitol. 2008 Jul;38(8-9):885-900
pubmed: 18068173
Pharmacogenet Genomics. 2010 Jul;20(7):414-25
pubmed: 20531256
Genome Biol Evol. 2018 Feb 1;10(2):396-409
pubmed: 29267942
Adv Parasitol. 2016;93:181-238
pubmed: 27238006
Int J Parasitol Drugs Drug Resist. 2014 Aug 13;4(3):164-84
pubmed: 25516826
Genome Biol Evol. 2019 Jul 1;11(7):1965-1970
pubmed: 31263885
Glob Chang Biol. 2016 Mar;22(3):1271-85
pubmed: 26482823
Genetics. 2010 Sep;186(1):207-18
pubmed: 20457880
BMC Bioinformatics. 2019 Nov 8;20(1):556
pubmed: 31703550
Science. 2018 May 18;360(6390):728-732
pubmed: 29773742
Vet Parasitol. 2012 May 4;186(1-2):101-8
pubmed: 22169224
Int J Parasitol. 2006 Oct;36(12):1305-16
pubmed: 16950266
PLoS One. 2013 Dec 16;8(12):e82434
pubmed: 24358184
Genome Biol. 2013 Aug 28;14(8):R89
pubmed: 23985341
Genome Biol. 2013 Aug 28;14(8):R88
pubmed: 23985316
Adv Parasitol. 2016;93:31-68
pubmed: 27238002
Nat Methods. 2012 May 20;9(8):808-10
pubmed: 22609625
Int J Parasitol. 1997 Oct;27(10):1193-201
pubmed: 9394190
Parasitology. 2007;134(Pt 8):1133-47
pubmed: 17608973
Parasit Vectors. 2018 Nov 13;11(1):590
pubmed: 30424774
Biotechniques. 2004 May;36(5):840-5
pubmed: 15152604
Parasit Vectors. 2013 May 27;6:153
pubmed: 23711194
J Helminthol. 2010 Sep;84(3):276-83
pubmed: 19889245
Nat Genet. 2011 May;43(5):491-8
pubmed: 21478889
Int J Parasitol. 2001 Aug;31(10):1138-43
pubmed: 11429180
BMC Genomics. 2017 Jul 21;18(1):556
pubmed: 28732460
Curr Protoc Hum Genet. 2009 Jan;Chapter 2:Unit 2.12
pubmed: 19170031
Mol Ecol Resour. 2015 Nov;15(6):1356-65
pubmed: 25846829
Mol Biochem Parasitol. 2014 Jan;193(1):66-70
pubmed: 24530453
Vet Parasitol. 1992 Sep;44(1-2):35-44
pubmed: 1441190
Trends Parasitol. 2004 Oct;20(10):469-76
pubmed: 15363440
BMC Genomics. 2019 Jun 3;20(1):453
pubmed: 31159724
PLoS One. 2011 Jan 06;6(1):e15925
pubmed: 21253599
J Biosci. 2019 Sep;44(4):
pubmed: 31502575
PLoS One. 2013 Nov 07;8(11):e80422
pubmed: 24244686
PLoS One. 2016 Aug 22;11(8):e0161333
pubmed: 27547936
Nat Commun. 2019 Oct 22;10(1):4811
pubmed: 31641125
Curr Protoc Bioinformatics. 2013;43:11.10.1-11.10.33
pubmed: 25431634
Int J Parasitol Drugs Drug Resist. 2020 Dec;14:264-273
pubmed: 33307336
Parasitology. 2013 Oct;140(12):1506-22
pubmed: 23998513
PLoS Genet. 2007 Sep;3(9):1672-86
pubmed: 17892327
PLoS One. 2012;7(10):e46310
pubmed: 23071552
BMC Bioinformatics. 2015 Jul 09;16:214
pubmed: 26156142
PLoS One. 2018 Feb 20;13(2):e0193121
pubmed: 29462210
Nat Methods. 2008 Mar;5(3):247-52
pubmed: 18297082
Commun Biol. 2020 Nov 9;3(1):656
pubmed: 33168940
Vet Parasitol. 2012 Sep 10;188(3-4):268-76
pubmed: 22538095