Long-Term Balancing Selection and the Genetic Load Linked to the Self-Incompatibility Locus in Arabidopsis halleri and A. lyrata
Jazyk angličtina Země Spojené státy americké Médium print
Typ dokumentu časopisecké články, práce podpořená grantem
PubMed
37210585
PubMed Central
PMC10243990
DOI
10.1093/molbev/msad120
PII: 7175058
Knihovny.cz E-zdroje
- Klíčová slova
- Arabidopsis, S-locus, balancing selection, deleterious mutations, linked selection, self-incompatibility, sheltered genetic load,
- MeSH
- Arabidopsis * genetika MeSH
- genetická zátěž MeSH
- nukleotidy MeSH
- polymorfismus genetický MeSH
- selekce (genetika) MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Názvy látek
- nukleotidy MeSH
Balancing selection is a form of natural selection maintaining diversity at the sites it targets and at linked nucleotide sites. Due to selection favoring heterozygosity, it has the potential to facilitate the accumulation of a "sheltered" load of tightly linked recessive deleterious mutations. However, precisely evaluating the extent of these effects has remained challenging. Taking advantage of plant self-incompatibility as one of the best-understood examples of long-term balancing selection, we provide a highly resolved picture of the genomic extent of balancing selection on the sheltered genetic load. We used targeted genome resequencing to reveal polymorphism of the genomic region flanking the self-incompatibility locus in three sample sets in each of the two closely related plant species Arabidopsis halleri and Arabidopsis lyrata, and used 100 control regions from throughout the genome to factor out differences in demographic histories and/or sample structure. Nucleotide polymorphism increased strongly around the S-locus in all sample sets, but only over a limited genomic region, as it became indistinguishable from the genomic background beyond the first 25-30 kb. Genes in this chromosomal interval exhibited no excess of mutations at 0-fold degenerated sites relative to putatively neutral sites, hence revealing no detectable weakening of the efficacy of purifying selection even for these most tightly linked genes. Overall, our results are consistent with the predictions of a narrow genomic influence of linkage to the S-locus and clarify how natural selection in one genomic region affects the evolution of the adjacent genomic regions.
Department of Biology Pennsylvania State University PA United States of America
Department of Botany Faculty of Science Charles University Prague Czech Republic
Zobrazit více v PubMed
Asthana S, Schmidt S, Sunyaev S. 2005. A limited role for balancing selection. Trends Genet. 21:30–32. PubMed
Bates D, Mächler M, Bolker B, Walker S. 2015. Fitting linear mixed-effects models using lme4. J Stat Softw. 67(1):1–48.
Billiard S, Castric V, Vekemans X. 2007. A general model to explore complex dominance patterns in plant sporophytic self-incompatibility systems. Genetics 175:1351–1369. PubMed PMC
Castric V, Vekemans X. 2004. Plant self-incompatibility in natural populations: a critical assessment of recent theoretical and empirical advances. Mol Ecol. 13:2873–2889. PubMed
Castric V, Bechsgaard J, Schierup MH, Vekemans X. 2008. Repeated adaptive introgression at a gene under multiallelic balancing selection. PLoS Genet. 4:e1000168. PubMed PMC
Charlesworth B, Morgan MT, Charlesworth D. 1993. The effect of deleterious mutations on neutral molecular variation. Genetics 134:1289–1303. PubMed PMC
Charlesworth B, Nordborg M, Charlesworth D. 1997. The effects of local selection, balanced polymorphism and background selection on equilibrium patterns of genetic diversity in subdivided inbreeding and outcrossing populations. Genet Res. 70:155–174. PubMed
Charlesworth D, Charlesworth B, Marais G. 2005. Steps in the evolution of heteromorphic sex chromosomes. Heredity (Edinb). 95:118–128. PubMed
Charlesworth D. 2006. Balancing selection and its effects on sequences in nearby genome regions. PLoS Genet. 2:e64. PubMed PMC
Charlesworth D. 2017. Evolution of recombination rates between sex chromosomes. Philos Trans R Soc Lond B Biol Sci. 372(1736):20160456. PubMed PMC
Cheng X, DeGiorgio M. 2020. Flexible mixture model approaches that accommodate footprint size variability for robust detection of balancing selection. Mol Biol Evol. 37:3267–3291. PubMed PMC
Clauss MJ, Mitchell-Olds T. 2006. Population genetic structure of Arabidopsis lyrata in Europe. Mol Ecol. 15:2753–2766. PubMed
Clo J, Ronfort J, Awad DA. 2020. Hidden genetic variance contributes to increase the short-term adaptive potential of selfing populations. J Evol Biol. 33:1203–1215. PubMed
Danecek P, Auton A, Abecasis G, Albers CA, Banks E, DePristo MA, Handsaker RE, Lunter G, Marth GT, Sherry ST, et al. . 2011. The variant call format and VCFtools. Bioinformatics 27:2156–2158. PubMed PMC
DeGiorgio M, Lohmueller KE, Nielsen R. 2014. A model-based approach for identifying signatures of ancient balancing selection in genetic data. PLoS Genet. 10:e1004561. PubMed PMC
Delph LF, Kelly JK. 2014. On the importance of balancing selection in plants. New Phytol. 201:45–56. PubMed PMC
DePristo MA, Banks E, Poplin RE, Garimella KV, Maguire JR, Hartl C, Philippakis AA, del Angel G, Rivas MA, Hanna M, et al. . 2011. A framework for variation discovery and genotyping using next-generation DNA sequencing data. Nat Genet. 43:491–498. PubMed PMC
Durand E, Méheust R, Soucaze M, Goubet PM, Gallina S, Poux C, Fobis-loisy I, Guillon E, Gaude T, Sarazin A, et al. 2014. Dominance hierarchy arising from the evolution of a complex small RNA regulatory network. Science. 346:1200–1205. PubMed
Eyre-Walker A, Keightley PD. 2007. The distribution of fitness effects of new mutations. Nat Rev Genet. 8:610–618. PubMed
Fijarczyk A, Babik W. 2015. Detecting balancing selection in genomes: limits and prospects. Mol Ecol. 24:3529–3545. PubMed
Foxe JP, Stift M, Tedder A, Haudry A, Wright SI, Mable BK. 2010. Reconstructing origins of loss of self-incompatibility and selfing in North American Arabidopsis lyrata: a population genetic context. Evolution 64:3495–3510. PubMed
Genete M, Castric V, Vekemans X. 2020. Genotyping and de novo discovery of allelic variants at the Brassicaceae self-incompatibility locus from short-read sequencing data. Mol Biol Evol. 37:1193–1201. PubMed
Gervais C, Awad DA, Roze D, Castric V, Billiard S. 2014. Genetic architecture of inbreeding depression and the maintenance of gametophytic self-incompatibility. Evolution 68:3317–3324. PubMed
Goubet PM, Bergès H, Bellec A, Prat E, Helmstetter N, Mangenot S, Gallina S, Holl AC, Fobis-Loisy I, Vekemans X, et al. . 2012. Contrasted patterns of molecular evolution in dominant and recessive self-incompatibility haplotypes in Arabidopsis. PLoS Genet. 8:e1002495. PubMed PMC
Glemin S, Bataillon T, Ronfort J, Mignot A, Olivieri I. 2001. Inbreeding depression in small populations of self-incompatible plants. Genetics 159:1217–1229. PubMed PMC
Guo Y, Zhao X, Lanz C, Weigel D. 2011. Evolution of the S-locus region in Arabidopsis thaliana relatives. Plant Physiol. 157:937–946. PubMed PMC
Hämälä T, Mattila TM, Leinonen PH, Kuittinen H, Savolainen O. 2017. Role of seed germination in adaptation and reproductive isolation in Arabidopsis lyrata. Mol Ecol. 26:3484–3496. PubMed
Hämälä T, Wafula EK, Guiltinan MJ, Ralph PE, dePamphilis CW, Tiffin P. 2021. Genomic structural variants constrain and facilitate adaptation in natural populations of Theobroma cacao, the chocolate tree. Proc Natl Acad Sci U S A. 118(35):e2102914118. PubMed PMC
Hamid R, Marashi H, Tomar RS, Malekzadeh Shafaroudi S, Sabara PH. 2019. Transcriptome analysis identified aberrant gene expression in pollen developmental pathways leading to CGMS in cotton (Gossypium hirsutum L.). PLoS One 14:e0218381. PubMed PMC
Hartmann FE, Duhamel M, Carpentier F, Hood ME, Foulongne-Oriol M, Silar P, Malagnac F, Grognet P, Giraud T. 2021. Recombination suppression and evolutionary strata around mating-type loci in fungi: documenting patterns and understanding evolutionary and mechanistic causes. New Phytol. 229(5):2470–2491. PubMed PMC
Hasselmann M, Beye M. 2006. Pronounced differences of recombination activity at the sex determination locus of the honeybee, a locus under strong balancing selection. Genetics 174(3):1469–1480. PubMed PMC
Hasselmann M, Vekemans X, Pflugfelder J, Koeniger N, Koeniger G, Tingek S, Beye M. 2008. Evidence for convergent nucleotide evolution and high allelic turnover rates at the complementary sex determiner gene of Western and Asian honeybees. Mol Biol Evol. 25(4):696–708. PubMed
Holtz Y, Ardisson M, Ranwez V, Besnard A, Leroy P, Poux G, Roumet P, Viader V, Santoni S, David J. 2016. Genotyping by sequencing using specific allelic capture to build a high-density genetic map of durum wheat. PLoS One 11:e0154609. PubMed PMC
Hu TT, Pattyn P, Bakker EG, Cao J, Cheng JF, Clark RM, Fahlgren N, Fawcett JA, Grimwood J, Gundlach H, et al. . 2011. The Arabidopsis lyrata genome sequence and the basis of rapid genome size change. Nat Genet. 43:476–481. PubMed PMC
Hudson RR, Kreitman M, Aguadé M. 1987. A test of neutral molecular evolution based on nucleotide data. Genetics 116:153–159. PubMed PMC
Hudson RR, Kaplan NL. 1988. The coalescent process in models with selection and recombination. Genetics 120:831–840. PubMed PMC
Jay P, Tezenas E, Véber A, Giraud T. 2022. Sheltering of deleterious mutations explains the stepwise extension of recombination suppression on sex chromosomes and other supergenes. PLoS Biol. 20(7):e3001698. PubMed PMC
Kamau E, Charlesworth D. 2005. Balancing selection and low recombination affect diversity near the self-incompatibility loci of the plant Arabidopsis lyrata. Curr Biol. 15:1773–1778. PubMed
Kamau E, Charlesworth B, Charlesworth D. 2007. Linkage disequilibrium and recombination rate estimates in the self-incompatibility region of Arabidopsis lyrata. Genetics 176:2357–2369. PubMed PMC
Kubota S, Iwasaki T, Hanada K, Nagano AJ, Fujiyama A, Toyoda A, Sugano S, Suzuki Y, Hikosak K, Ito M, et al. . 2015. A genome scan for genes underlying microgeographic-scale local adaptation in a wild arabidopsis species. PLoS Genet. 11:e1005361. PubMed PMC
Kusaba M, Dwyer K, Hendershot J, Vrebalov J, Nasrallah JB, Nasrallah ME. 2001. Self-incompatibility in the genus Arabidopsis: characterization of the S locus in the outcrossing A. lyrata and its autogamous relative A. thaliana. Plant Cell 13:627–643. PubMed PMC
Lane MD, Lawrence MJ. 1995. The population genetics of the self-incompatibility polymorphism in Papaver rhoeas. X. An association between incompatibility genotype and seed dormancy. Heredity (Edinb). 75:92–97.
Langmead B, Salzberg SL. 2012. Fast gapped-read alignment with Bowtie 2. Nat Methods. 9:357–359. PubMed PMC
Leach CR, Mayo O, Morris MM. 1986. Linkage disequilibrium and gametophytic self-incompatibility. Theor Appl Genet. 73:102–112. PubMed
Legrand S, Caron T, Maumus F, Schvartzman S, Quadrana L, Durand E, Gallina S, Pauwels M, Mazoyer C, Huyghe L, et al. . 2019. Differential retention of transposable element-derived sequences in outcrossing Arabidopsis genomes. Mob DNA. 10:30. PubMed PMC
Lenz TL, Spirin V, Jordan DM, Sunyaev SR. 2016. Excess of deleterious mutations around HLA genes reveals evolutionary cost of balancing selection. Mol Biol Evol. 33:2555–2564. PubMed PMC
Li H, Handsaker B, Wysoker A, Fennell T, Ruan J, Homer N, Marth G, Abecasis G, Durbin R; 1000 Genome Project Data Processing Subgroup . 2009. The sequence alignment/map format and SAMtools. Bioinformatics 25:2078–2079. PubMed PMC
Llaurens V, Billiard S, Leducq JB, Castric V, Klein EK, Vekemans X. 2008. Does frequency-dependent selection with complex dominance interactions accurately predict allelic frequencies at the self-incompatibility locus in Arabidopsis halleri? Evolution 62:2545–2557. PubMed
Llaurens V, Gonthier L, Billiard S. 2009. The sheltered genetic load linked to the S locus in plants: new insights from theoretical and empirical approaches in sporophytic self-incompatibility. Genetics 183:1105–1118. PubMed PMC
Ma CL, Qi YP, Liang WW, Yang LT, Lu YB, Guo P, Ye X, Chen LS. 2016. MicroRNA regulatory mechanisms on Citrus sinensis leaves to magnesium-deficiency. Front Plant Sci. 7:201. PubMed PMC
Mable BK, Robertson AV, Dart S, Di Berardo C, Witham L. 2005. Breakdown of self-incompatibility in the perennial Arabidopsis lyrata (Brassicaceae) and its genetic consequences. Evolution 59(7):1437–1448. PubMed
Mattila TM, Laenen B, Horvath R, Hämälä T, Savolainen O, Slotte T. 2019. Impact of demography on linked selection in two outcrossing Brassicaceae species. Ecol Evol. 9:9532–9545. PubMed PMC
Matzaraki V, Kumar V, Wijmenga C, Zhernakova A. 2017. The MHC locus and genetic susceptibility to autoimmune and infectious diseases. Genome Biol. 18:76. PubMed PMC
Nettancourt D. 2001. Incompatibility and incongruity in wild and cultivated plants. Berlin Heidelberg: Springer-Verlag.
Noé L, Kucherov G. 2005. YASS: enhancing the sensitivity of DNA similarity search. Nucleic Acids Res. 33:W540–W543. PubMed PMC
Nordborg M. 1997. Structured coalescent processes on different time scales. Genetics 146:1501–1514. PubMed PMC
Otto SP, Pannell JR, Peichel CL, Ashman TL, Charlesworth D, Chippindale AK, Delph LF, Guerrero RF, Scarpino SV, McAllister BF. 2011. About PAR: the distinct evolutionary dynamics of the pseudoautosomal region. Trends Genet. 27:358–367. PubMed
Porcher E, Lande R. 2005. Loss of gametophytic self-incompatibility with evolution of inbreeding depression. Evolution 59:46–60. PubMed
Prigoda NL, Nassuth A, Mable BK. 2005. Phenotypic and genotypic expression of self-incompatibility haplotypes in Arabidopsis lyrata suggests unique origin of alleles in different dominance classes. Mol Biol Evol. 22(7):1609–1620. PubMed
Quinlan AR, Hall IM. 2010. BEDTools: a flexible suite of utilities for comparing genomic features. Bioinformatics 26:841–842. PubMed PMC
Ross-Ibarra J, Wright SI, Foxe JP, Kawabe A, DeRose-Wilson L, Gos G, Charlesworth D, Gaut BS. 2008. Patterns of polymorphism and demographic history in natural populations of Arabidopsis lyrata. PLoS One 3:e2411. PubMed PMC
Roux C, Pauwels M, Ruggiero MV, Charlesworth D, Castric V, Vekemans X. 2013. Recent and ancient signature of balancing selection around the S-locus in Arabidopsis halleri and A. lyrata. Mol Biol Evol. 30:435–447. PubMed PMC
Ruggiero MV, Jacquemin B, Castric V, Vekemans X. 2008. Hitch-hiking to a locus under balancing selection: high sequence diversity and low population subdivision at the S-locus genomic region in Arabidopsis halleri. Genet Res (Camb). 90:37–46. PubMed
Schierup MH, Vekemans X, Charlesworth D. 2000. The effect of hitch-hiking on genes linked to a balanced polymorphism in a subdivided population. Genet Res (Camb). 76:63–73. PubMed
Schierup MH, Mikkelsen AM, Hein J. 2001. Recombination, balancing selection and phylogenies in MHC and self-incompatibility genes. Genetics 159:1833–1844. PubMed PMC
Schopfer CR, Nasrallah ME, Nasrallah JB. 1999. The male determinant of self-incompatibility in Brassica. Science 286:1697–1700. PubMed
Siever F, Wilm A, Dineen D, Gibson TJ, Karplus K, Li W, Lopez R, McWilliam H, Remmert M, Söding J, et al. . 2011. Fast, scalable generation of high-quality protein multiple sequence alignments using Clustal Omega. Mol Syst Biol. 7:539. PubMed PMC
Smith JM, Haigh J. 1974. The hitchhiking effect of a favorable gene. Genet Res. 23:23–35. PubMed
Spurgin LG, Richardson DS. 2010. How pathogens drive genetic diversity: MHC, mechanisms and misunderstandings. Proc R Soc B: Biol Sci. 277:979–988. PubMed PMC
Stift M, Hunter BD, Shaw B, Adam A, Hoebe PN, Mable BK. 2013. Inbreeding depression in self-incompatible North-American Arabidopsis lyrata: disentangling genomic and S-locus-specific genetic load. Heredity (Edinb). 110:19–28. PubMed PMC
Stone JL. 2004. Sheltered load associated with S-alleles in Solanum carolinense. Heredity (Edinb). 92:335–342. PubMed
Strobeck C. 1980. Heterozygosity of a neutral locus linked to a self-incompatibility locus or a balanced lethal. Evolution 34:779–788. PubMed
Strobeck C. 1983. Expected linkage disequilibrium for a neutral locus linked to a chromosomal arrangement. Genetics 103:545–555. PubMed PMC
Takahata N. 1990. A simple genealogical structure of strongly balanced allelic lines and trans-species evolution of polymorphism. Proc Natl Acad Sci U S A. 87:2419–2423. PubMed PMC
Takahata N, Nei M. 1990. Allelic genealogy under overdominant and frequency-dependent selection and polymorphism of major histocompatibility complex loci. Genetics 124:967–978. PubMed PMC
Takahata N, Satta Y. 1998. Footprints of intragenic recombination at HLA loci. Immunogenetics 47:430–441. PubMed
Takou M, Hämälä T, Koch EM, Steige KA, Dittberner H, Yant L, Genete M, Sunyaev S, Castric V, Vekemans X, et al. . 2021. Maintenance of adaptive dynamics and no detectable load in a range-edge outcrossing plant population. Mol Biol Evol. 38:1820–1836. PubMed PMC
Tezenas E, Giraud T, Véber A, Billiard S. 2023. The fate of recessive deleterious or overdominant mutations near mating-type loci under partial selfing. Peer Community J. 3. Article no. e14.
Uyenoyama MK. 1997. Genealogical structure among alleles regulating self-incompatibility in natural populations of flowering plants. Genetics 147:1389–1400. PubMed PMC
Uyenoyama MK. 2003. Genealogy-dependent variation in viability among self-incompatibility genotypes. Theor Popul Biol. 63:281–293. PubMed PMC
Uyenoyama MK. 2005. Evolution under tight linkage to mating type. New Phytol. 165:63–70. PubMed
Vekemans X, Slatkin M. 1994. Gene and allelic genealogies at a gametophytic self-incompatibility locus. Genetics 137:1157–1165. PubMed PMC
Vekemans X, Castric V, Hipperson H, Müller NA, Westerdahl H, Cronk Q. 2021. Whole-genome sequencing and genome regions of special interest: lessons from major histocompatibility complex, sex determination, and plant self-incompatibility. Mol Ecol. 30:6072–6086. PubMed PMC
Vieira J, Pimenta J, Gomes A, Laia J, Rocha S, Heitzler P, Vieira CP. 2021. The identification of the Rosa S-locus and implications on the evolution of the Rosaceae gametophytic self-incompatibility systems. Sci Rep. 11:3710. PubMed PMC
Williamson RJ, Josephs EB, Platts AE, Hazzouri KM, Haudry A, Blanchette M, Wright SI. 2014. Evidence for widespread positive and negative selection in coding and conserved noncoding regions of Capsella grandiflora. PLoS Genet. 10:e1004622. PubMed PMC
Wiuf C, Zhao K, Innan H, Nordborg M. 2004. The probability and chromosomal extent of trans-specific polymorphism. Genetics 168:2363–2372. PubMed PMC
Wright S. 1939. The distribution of self-sterility alleles in populations. Genetics 24:538–552. PubMed PMC
Wright SI, Charlesworth B. 2004. The HKA test revisited: a maximum likelihood ratio test of the standard neutral model. Genetics 168:1071–1076. PubMed PMC
Wu L, Williams JS, Sun L, Kao TH. 2020. Sequence analysis of the Petunia inflata S-locus region containing 17 S-locus F-box genes and the S-RNase gene involved in self-incompatibility. Plant J. 104:1348–1368. PubMed
Zhang W, Sun Y, Timofejeva L, Chen C, Grossniklaus U, Ma H. 2006. Regulation of Arabidopsis tapetum development and function by DYSFUNCTIONAL TAPETUM1 (DYT1) encoding a putative bHLH transcription factor. Development 133:3085–3095. PubMed