Evidence of hybrid breakdown among invasive hybrid cattails (Typha × glauca)

Abbott R, Albach D, Ansell S, Arntzen JW, Baird SJE, Bierne N et al. (2013) Hybridization and speciation. J Evol Biol 26:229–246
Google Scholar
Abbott RJ, Brennan AC (2014) Altitudinal gradients, plant hybrid zones and evolutionary novelty. Philos Trans R Soc B 369:20130346
Google Scholar
Abbott RJ (2017) Plant speciation across environmental gradients and the occurrence and nature of hybrid zones. J Syst Evol 55:238–258
Google Scholar
Ahee J (2013) The spatial dynamics of wind pollination in broadleaf cattail (Typha latifolia). MSc Thesis. Trent University, Canada
Ahee JE, Van Drunen WE, Dorken ME (2015) Analysis of pollination neighbourhood size using spatial analysis of pollen and seed production in broadleaf cattail (Typha latifolia). Botany 93:91–100
Google Scholar
Bansal S, Lishawa SC, Newman S, Tangen BA, Wilcox D, Albert D et al. (2019) Typha (cattail) invasion in North American wetlands: Biology, regional problems, impacts, ecosystem services, and management. Wetlands 39:645–684
Google Scholar
Barton NH (2001) The role of hybridization in evolution. Mol Ecol 10:551–568
Google Scholar
Barton NH (2008) The effect of a barrier to gene flow on patterns of geographic variation. Genet Res 90:139–149
Google Scholar
Barton NH, Hewitt GM (1985) Analysis of hybrid zones. Ann Rev Ecol Syst 16:113–148
Google Scholar
Bates D, Maechler M, Bolker B (2016) lme4: Linear mixed-effects models using Eigen and S4. R package version o1.1–13, http://CRAN.R-project.org/package-lme4
Behm JE, Ives AR, Boughman JW (2010) Breakdown in postmating isolation and the collapse of a species pair through hybridization. Am Nat 175:11–26
Google Scholar
Bersweden L, Viruel J, Schatz B, Harland J, Gargiulo R, Cowan RS et al. (2021) Microsatellites and petal morphology reveal new patterns of admixture in Orchis hybrid zones. Am J Bot 108:1388–1404
Google Scholar
Buggs RJA (2007) Empirical study of hybrid zone movement. Heredity 99:301–312
Google Scholar
Bunbury-Blanchette AL, Freeland JR, Dorken ME (2015) Hybrid Typha× glauca outperforms native T. latifolia under contrasting water depths in a common garden. Basic Appl Ecol 16:394–402
Google Scholar
Burton RS, Pereira RJ, Barreto FS (2013) Cytonuclear genomic interactions and hybrid breakdown. Ann Rev Ecol Evol Syst 44:281–302
Google Scholar
Buitink J, Claessens MM, Hemminga MA, Hoekstra FA (1998) Influence of water content and temperature on molecular mobility and intracellular glasses in seeds and pollen. Plant Phys 118:531–541
Google Scholar
Ciotir C, Kirk H, Row JR, Freeland JR (2013) Intercontinental dispersal of T. angustifolia and T. latifolia between Europe and North America has implications for the Typha invasions. Biol Invasions 15:1377–1390
Google Scholar
Ciotir C, Szabo J, Freeland J (2017) Genetic characterization of cattail species and hybrids (Typha spp.) in Europe. Aquat Bot 141:51–59
Google Scholar
Curry CM (2015) An integrated framework for hybrid zone models. Evol Biol 42:359–365
Google Scholar
Durán-Castillo M, Hudson A, Wilson Y, Field DL, Twyford AD (2022) A phylogeny of Antirrhinum reveals parallel evolution of alpine morphology. N. Phytol 233:1426–1439
Google Scholar
Fishman L, Sweigart AL (2018) When two rights make a wrong: The evolutionary genetics of plant hybrid incompatibilities. Ann Rev Plant Biol 69:707–731
Google Scholar
Fox J, Weisberg S (2019) An R Companion to Applied Regression, 3rd edn. Sage, Thousand Oaks, CA
Freeland J, Ciotir C, Kirk H (2013) Regional differences in the abundance of native, introduced, and hybrid Typha spp. in northeastern North America influence wetland invasions. Biol Invasions 15:2651–2665
Google Scholar
Freeland JR, Ciotir C, Wensink L, Dorken M (2017) Widespread cytonuclear discordance in narrow-leaved cattail (Typha angustifolia) does not explain the dominance of its invasive hybrid (Typha × glauca). Hydrobiologia 792:53–65
Google Scholar
Grace JB, Harrison JS (1986) The biology of Canadian weeds: 73. Typha latifolia L., Typha angustifolia L. and Typha x glauca. Can J Plan Sci 361–379
Irwin DE (2020) Assortative mating in hybrid zones is remarkably ineffective in promoting speciation. Am Nat 195:E150–E167
Google Scholar
Johansen‐Morris AD, Latta RG (2006) Fitness consequences of hybridization between ecotypes of Avena barbata: hybrid breakdown, hybrid vigor, and transgressive segregation. Evolution 60:1585–1595
Google Scholar
Kirk H, Connolly C, Freeland JR (2011) Molecular genetic data reveal hybridization between Typha angustifolia and Typha latifolia across a broad spatial scale in eastern North America. Aquat Bot 95:189–193
Google Scholar
Kuehn MM, Minor JE, White BN (1999) An examination of hybridization between the cattail species Typha latifolia and Typha angustifolia using random amplified polymorphic DNA and chloroplast DNA markers. Mol Ecol 8:1981–1990
Google Scholar
Larkin DJ, Freyman MJ, Lishawa SC, Geddes P, Tuchman NC (2012) Mechanisms of dominance by the invasive hybrid cattail Typha× glauca. Biol Invasions 14:65–77
Google Scholar
Lenth R, Singmann H, Love J, Buerkner P, Herve M (2021) Emmeans: Estimated marginal means, aka least-squares means. R package version, 1.7.1–1
Marques I, Nieto Feliner G, Martins‐Loução MA, Fuertes Aguilar J (2011) Fitness in Narcissus hybrids: low fertility is overcome by early hybrid vigour, absence of exogenous selection and high bulb propagation. J Ecol 99:1508–1519
Google Scholar
Mitchell N, Luu H, Owens GL, Rieseberg LH, Whitney KD (2022) Hybrid evolution repeats itself across environmental contexts in Texas sunflowers (Helianthus). Evolution https://doi.org/10.1111/evo.14536
McKenzie‐Gopsill A, Kirk H, Van Drunen W, Freeland JR, Dorken ME (2012) No evidence for niche segregation in a North American Cattail (Typha) species complex. Ecol Evol 2:952–961
Google Scholar
Orr HA (1995) The population genetics of speciation: the evolution of hybrid incompatibilities. Genetics 139:1805–1813
Google Scholar
Pieper SJ, Nicholls AA, Freeland JR, Dorken ME (2017) Asymmetric hybridization in cattails (Typha spp.) and its implications for the evolutionary maintenance of native Typha latifolia. J Hered 108:479–487
Google Scholar
Pieper SJ, Freeland JR, Dorken ME (2018) Coexistence of Typha latifolia, T. angustifolia (Typhaceae) and their invasive hybrid is not explained by niche partitioning across water depths. Aquat Bot 144:46–53
Google Scholar
Pieper S, Dorken M, Freeland J (2020) Genetic structure in hybrids and progenitors provides insight into processes underlying an invasive cattail (Typha× glauca) hybrid zone. Heredity 124:714–725
Google Scholar
R Core Development Team (2021) R: A language and environment for statistical computing v. 4.1.0. R Foundation for Statistical Computing, Vienna, Austria, http://www.R-project.org/
Rasband WS (2014) ImageJ, U.S. National Institutes of Health, Bethesda, Maryland, USA, http://imagej.nih.gov/ij/,1997-2014
Rendón-Anaya M, Wilson J, Sveinsson S, Fedorkov A, Cottrell J, Bailey MES et al. (2021) Adaptive introgression facilitates adaptation to high latitudes in European Aspen (Populus tremula L.). Mol Biol Evol 38:5034–5050
Google Scholar
Rieseberg LH (2006) Hybrid speciation in wild sunflowers. Ann Mo Bot 93:34–48
Google Scholar
Ross RIC, Ågren JA, Pannell JR (2012) Exogenous selection shapes germination behaviour and seedling traits of populations at different altitudes in a Senecio hybrid zone. Ann Bot 110:1439–1447
Google Scholar
Runemark A, Vallejo-Marin M, Meier JI (2019) Eukaryote hybrid genomes. PLoS Genet 15:e1008404
Google Scholar
Smith SG (1967) Experimental and natural hybrids in North American Typha (Typhaceae). Am Midl Nat 78:257–287
Google Scholar
Snow AA, Travis SE, Wildová R, Fér T, Sweeney PM, Marburger JE et al. (2010) Species‐ specific SSR alleles for studies of hybrid cattails (Typha latifolia × T. angustifolia; Typhaceae) in North America. Am J Bot 97:2061–2067
Google Scholar
Stebbins GL (1959) The role of hybridization in evolution. Proc Am Philos Soc 103:231–251
Tangen B, Bansal S, Freeland J, Travis S, Wasko J, McGonigle et al. (2021) Distributions of native and invasive Typha (cattail) throughout the Prairie Pothole Region of North America. Wetl Ecol Manag 30:1–17
Google Scholar
Tiffin P, Olsen S, Moyle LC (2001) Asymmetrical crossing barriers in angiosperms. Proc R Soc Lond B 268:861–867
Google Scholar
Tisshaw K, Freeland J, Dorken M (2020) Salinity, not genetic incompatibilities, limits the establishment of the invasive hybrid cattail Typha × glauca in coastal wetlands. Ecol Evol 10:12091–12103
Google Scholar
Todesco M, Pascual MA, Owens GL, Ostevik KL, Moyers BT, Hübner S et al. (2016) Hybridization and extinction. Evol Appl 9:892–908
Google Scholar
Travis SE, Marburger JE, Windels S, Kubatova B (2010) Hybridization dynamics of invasive cattail (Typhaceae) stands in the Western Great Lakes Region of North America: a molecular analysis. J Ecol 98:7–16
Google Scholar
Travis SE, Marburger JE, Windels SK, Kubátová B (2011) Clonal structure of invasive cattail (Typhaceae) stands in the Upper Midwest Region of the US. Wetlands 31:221–228
Google Scholar
Tsyusko‐Omeltchenko OV, Schable NA, Smith MH, Glenn TC (2003) Microsatellite loci isolated from narrow‐leaved cattail Typha angustifolia. Mol Ecol Notes 3:535–538
Google Scholar
Tuchman NC, Larkin DJ, GeddesP, Wildova R, Jankowski K, Goldberg DE (2009) Patterns of environmental change associated with Typha × glauca invasion in a Great Lakes coastal wetland. Wetlands 29:964–975
Google Scholar
Zalmat AS, Sotola AV, Nice CC, Martin NH (2021) Genetic structure in Louisiana Iris species reveals patterns of recent and historical admixture. Am J Bot 108:2257–2268
Google Scholar
Zapfe L, Freeland JR (2015) Heterosis in invasive F1 cattail hybrids (Typha× glauca). Aquat Bot 125:44–47
Google Scholar
Zhou B, Yu D, Ding Z, Xu X (2016) Comparison of genetic diversity in four Typha species (Poales, Typhaceae) from China. Hydrobiologia 770:117–128
Google Scholar