Impact of fire on the genetic variability of a natural population of Stylosanthes hippocampoides (Fabaceae) in Corrientes, Argentina
Keywords:
Stylo, NEA, ISSR, wildfires, forage legumesAbstract

Stylosanthes hippocampoides, a native legume forage species, was first studied by our research team in 2016 to assess genetic variability in natural populations in northeastern Argentina. Recurrent fires in the following years raised concerns about their effects on population genetics. This study aimed to evaluate and compare the genetic variability and structure of S. hippocampoides populations before and after fire events, and to infer whether such disturbances influence genetic diversity. Using Geographic Information System tools, we selected one fire-affected population (ASI) and one unaffected population (TC). Genetic analyses were conducted using inter-simple sequence repeat markers, and pre- and post-fire genetic statistics were compared. Greater genetic variability was observed between populations than within them. The TC population exhibited higher intra-population genetic diversity than the ASI population. Genetic variability decreased in ASI post-fire, while TC slightly increased. However, neither change was statistically significant. Genetic structure analysis consistently grouped individuals by population, regardless of fire exposure. These findings provide a foundation for future research on Stylosanthes, incorporating additional populations with varied fire histories and examining post-fire recovery processes.
Highlights:
- Fire impact on genetic variability of Stylosanthes hippocampoides populations in Corrientes Argentina were assessed.
- This is a preliminary study supporting fire-related conservation planning efforts.
- Genetic variability was higher among than within populations.
- Post-fire population showed genetic decline, not statistically significant.
- Genetic structure grouped individuals by population in all comparisons.
- This study explores fire effects and recovery in Stylosanthes.
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Alzate-Marin, A. L.; Costa-Silva, C.; Rivas, P. M. S.; Bonifacio-Anacleto, F.; Santos, L. G.; Moraes Filho, R. M. D.; Martinez, C. A. 2019. Diagnostic fingerprints ISSR/SSR for tropical leguminous species Stylosanthes capitata and Stylosanthes macrocephala. Sci. Agr. 77(3): e20180252. https://doi.org/10.1590/1678-992X-2018-0252
André, T.; Lemes, M. R.; Grogan, J.; Gribel, R. 2008. Post-logging loss of genetic diversity in a mahogany (Swietenia macrophylla King, Meliaceae) population in Brazilian Amazonia. For. Ecol. Manag. 255: 340-345. https://doi.org/10.1016/j.foreco.2007.09.055
Ayre, D. J.; Ottewell, K. M.; Krauss, S. L.; Whelan, R. J. 2009. Genetic structure of seedling cohorts following repeated wildfires in the fire‐sensitive shrub Persoonia mollis ssp. nectens. J. Ecol. 97(4): 752-760. https://doi.org/10.1111/j.1365-2745.2009.01516.x
Banks, S. C.; Cary, G. J.; Smith, A. L.; Davies, I. D.; Driscoll, D. A.; Gill, A. M.; Lindenmayer, D. B.; Peakall, R. 2013. How does ecological disturbance influence genetic diversity? Trends Ecol Evol. 28(11): 670-679. https://doi.org/10.1016/j.tree.2013.08.005
Barros, A. M.; Faleiro; F. G.; Shiratsuchi, L. S.; Pereira de Andrade, R.; Britto Lopes, G. K. 2005. Variabilidade genética e ecológica de Stylosanthes macrocephala determinadas por RAPD e SIG. Pesqui. Agropecu. Bras. 40: 899-909. https://doi.org/10.1590/S0100-204X2005000900010
Costa, J. C.; Fracetto, G. G. M.; Fracetto, F. G. C.; Souza, T. C.; Santos, M. V. F.; Lira Júnior, M. A. 2018. Genetic diversity in natural populations of Stylosanthes scabra using ISSR markers. Genet. Mol. Res. 17(1): gmr18219. https://doi.org/10.4238/gmr16039866
Dalzotto, D.; Sharry, S.; Piñuel, L.; Boeri, P. 2025. Challenges in germination of Neltuma caldenia in semi-arid regions: optimization of germination protocols, influence of saline stress and seed quality. Revista de la Fcultad de Ciencias Agrarias. Universidad Nacional de Cuyo. Mendoza. Argentina. 57(1): 67-79. DOI: https://doi.org/10.48162/rev.39.152
Doyle, J. J.; Doyle, J. L. 1987. A rapid DNA isolation procedure for small quantities of fresh leaf tissue. Phytochemistry. 19(1): 11-15.
England, P. R.; Usher, A. V.; Whelan, R. J; Ayre, D. J. 2002. Microsatellite diversity and genetic structure of fragmented populations of the rare, fire‐dependent shrub Grevillea macleayana. Mol. Ecol. 11(6): 967-977. https://doi.org/10.1046/j.1365-294X.2002.01500.x
Evanno, G.; Regnaut, S.; Goudet, J. 2005. Detecting the number of clusters of individuals using the software STRUCTURE: A simulation study. Mol. Ecol. 14(8): 2611–2620. https://doi.org/10.1111/j.1365-294X.2005.02553.x
Excoffier, L.; Smouse, P. E.; Quattro, J. M. 1992. Analysis of molecular variance inferred from metric distances among DNA haplotypes: Application to human mitochondrial DNA restriction data. Genetics. 131(2): 479-491. https://doi.org/10.1093/genetics/131.2.479
Falush, D.; Stephens, M.; Pritchard, J. K. 2003. Inference of population structure using multilocus genotype data: Linked loci and correlated allele frequencies. Genetics. 164(4): 1567-1587. https://doi.org/10.1093/genetics/164.4.1567
Fidelis, A.; Daibes, L. F.; Martins, A. R. 2016. To resist or to germinate? The effect of fire on legume seeds in Brazilian subtropical grasslands. Acta Bot. Bras. 30: 147-151. https://doi.org/10.1590/0102-33062015abb0187
Fidelis, A.; Zirondi, H. L. 2021. And after fire, the Cerrado flowers: a review of post-fire flowering in a tropical savanna. Flora 280:151849. https://doi.org/10.1016/j.flora.2021.151849
FIRMS-NASA’s. Fire Information for Resource Management System. 2020. https://firms.modaps.eosdis.nasa.gov/map/#d:24hrs;@0.0,0.0,3z, (Verified 1 July 2020).
Gardener, C. J. 1980. Tolerance of perennating Stylosanthes plants to fire. Aust. J. Exp. Agric. Anim. Husb. 20(106): 587-593. https://doi.org/10.1071/EA9800587
Kazan, K.; Manners, J. M.; Cameron, D. F. 1993. Genetic relationships and variation in the Stylosanthes guianensis species complex assessed by random amplified polymorphic DNA. Genome. 36: 43-49. https://doi.org/10.1139/g93-006
Maass, B.; Sawkins, L. 2004. History, relationships and diversity among Stylosanthes species of commercial significance. In Chakraborty, S. (Ed). High-yielding anthracnose-resistant Stylosanthes for agricultural systems. CSIRO Publishing. 12-26.
MacDougall, A. S.; McCann, K. S.; Gellner, G.; Turkington, R. 2013 Diversity loss with persistent human disturbance increases vulnerability to ecosystem collapse. Nature. 494(7435): 86-89. https://doi.org/10.1038/nature11869
Naval Fernández, M. C.; Albornoz, J. V.; Bellis, L. M., Baldini, C.; Arcamone, J. R.; Silvetti, L. E.; Argarañaz, J. P. 2023 Megaincendios 2020 en Córdoba: Incidencia del fuego en áreas de valor ecológico y socioeconómico. Ecol. Austral 33: 136-151. http://dx.doi.org/10.25260/EA.23.33.1.0.2120
Nei, M. 1973. Analysis of gene diversity in subdivided populations. Proc. Natl. Acad. Sci. 70: 3321-3323. https://doi.org/10.1073/pnas.70.12.3321
Ooi, M. K. J.; Whelan, R. J.; Auld, T. D. 2006. Persistence of obligate-seeding species at the population scale: effects of fire intensity, fire patchiness and long fire-free intervals. Int. J. Wildland Fire 15: 261-269. https://doi.org/10.1071/WF05024
Orr, D. M. 2008. Grazing management influences the dynamics of populations of Stylosanthes hippocampoides (Oxley fine stem stylo). Trop. Grassl. 42(4): 193-201.
Peakall, R.; Smouse, P. E. 2006. GENALEX 6: Genetic analysis in Excel. Population genetic software for teaching and research. Mol. Ecol. Not. 6(1): 288-295. https://doi.org/10.1111/j.1471-8286.2005.01155.x
Premoli, A. C.; Kitzberger, T. 2005. Regeneration mode affects spatial genetic structure of Nothofagus dombeyi forests. Mol. Ecol. 14: 2319-2329. https://doi.org/10.1111/j.1365-294x.2005.02629.x
Pritchard, J. K.; Stephens, M.; Donnelly, P. 2000. Inference of population structure using multilocus genotype data. Genetics. 155(2): 945-959. https://doi.org/10.1093/genetics/155.2.945
Rajora, O. P.; Pluhar, S. A. 2003. Genetic diversity impacts of forest fires, forest harvesting, and alternative reforestation practices in black spruce (Picea mariana). Theor. Appl. Genet. 106(7): 1203-1212. https://doi.org/10.1007/s00122-002-1169-9
R Core Team. 2020. R: A language and environment for statistical computing. R Foundation for Statistical Computing v 04.2 [software]. http://www.R-project.org/
Santos García, M. O.; Resende, R. M. S.; Chiari, L.; Zucchi, M. I.; de Souza, A. P. 2011. Mating systems in tropical forages: Stylosanthes capitata Vog. and Stylosanthes guianensis (Aulbl.) Sw. Euphytica. 178: 185-193. https://doi.org/10.1093/aobpla/pls001
Saucedo, G. I.; Perucca, A. R.; Kurtz, D. B. 2023. Las causas de los incendios de principios del año 2022 en la provincia de Corrientes. Ecol Aust. 33(1): 273-284. https://doi.org/10.25260/EA.23.33.1.0.2020
Sawkins, M. C.; Maass, B. L.; Pengelly, C.; Newburry, H. J.; Ford-Lloyd, B. V.; Maxted, N.; Smith, R. 2001. Geographical patterns of genetic variation in two species of Stylosanthes Sw. using amplified fragment length polymorphism. Mol. Ecol. 10: 1947-1958. https://doi.org/10.1046/j.0962-1083.2001.01347.x
Segarra-Moragues, J. G.; Ojeda, F. 2010. Postfire response and genetic diversity in Erica coccinea: Connecting population dynamics and diversification in a biodiversity hotspot. Evolution 64(12): 3511-3524. https://doi.org/10.1111/j.1558-5646.2010.01064.x
Servicio Meteorológico Argentino. 2020. Informe especial por déficit de lluvias en la región noreste de Argentina. https://www.smn.gob.ar/boletines/informe-especialsequ%C3%ADa-en-el-nea (Fecha de consulta: 15 de abril 2020).
Silvestri, M. C.; Acuña, C. A.; Moreno, E. M. S.; Garcia, A. V.; Vanni, R. O.; Lavia, G. I. 2020. Patterns of genetic diversity and potential ecological niches of Stylosanthes species from northeastern Argentina. Crop Sci. 60: 1436-1449. https://doi.org/10.1002/csc2.20117
Smichowski, H.; Montiel, M. R.; Romero, V.; Kowalewski, M.; Contreras, F. I. 2021. Evaluación de incendios en áreas periurbanas de la ciudad de Corrientes (Argentina) durante la sequía extrema del año 2020. Pap. Geogr. 67: 151-167. https://doi.org/10.6018/geografia.486441
Starr, C. R.; Corrêa, R. S.; Filgueiras, T. D.; Hay, J. D.; dos Santos, P. F. 2013. Plant colonization in a gravel mine revegetated with Stylosanthes spp. in a Neotropical savanna. Land. Ecol. Eng. 9: 189-201. https://doi.org/10.1007/s11355-012-0196-1
Steinitz, O.; Shohami, D.; Ben-Shlomo, R.; Nathan, R. 2012. Genetic consequences of fire to natural populations. Isr. J. Ecol. Evol. 58: 205-220. https://doi.org/10.1560/IJEE.58.2-3.205
Uchiyama, K.; Goto, S.; Tsuda, Y.; Takahashi, Y.; Ide, Y. 2006. Genetic diversity and genetic structure of adult and buried seed populations of Betula maximowicziana in mixed and post-fire stands. For. Ecol. Manag. 237: 119-126. https://doi.org/10.1016/j.foreco.2006.09.037
Vander Stappen, J.; Van Campenhout, S.; Gama Lopez, S.; Volckaert, G. 1998. Sequencing of the internal transcribed spacer region ITS1 as a molecular tool detecting variation in the Stylosanthes guianensis species complex. Theor. Appl. Genet. 96: 869-877. https://doi.org/10.1007/s001220050814
Vanni, R. O. 2017 The genus Stylosanthes (Leguminosae - Dalbergiaeae) in South America. Bol. Soc. Argent. Bot. 52(3): 549-585. https://doi.org/10.31055/1851.2372.v52.n3.18033
Velásquez Ramírez, M. G.; del Castillo Torres, D.; Guerrero Barrantes, J. A.; Vásquez Bardales, J.; Thomas, E.; Cusi Auca, E.; Gushiken, M. C.; Muñoz Díaz, B.; Russo, R.; Corvera Gomringer, R. 2021. Soil recovery of alluvial gold mine spoils in the Peruvian Amazon using Stylosanthes guianensis, a promising cover crop. Land Degrad. Dev. 32(18): 5143-5153. https://doi.org/10.1002/ldr.4118
Wilcoxon F. 1950. Some rapid approximate statistical procedures. Ann. N. Y. Acad. Sci. 52(6): 808-814. https://doi.org/10.1111/j.1749-6632.1950.tb53974.x
Worth, J. R.; Jordan, G. J.; Marthick, J. R.; Sakaguchi, S.; Colhoun, E. A.; Williamson, G. J.; Motomi, I.; Bowman, D. M. 2017. Fire is a major driver of patterns of genetic diversity in two co‐occurring Tasmanian palaeoendemic conifers. J. Biogeogr. 44(6): 1254-1267. https://doi.org/10.1111/jbi.12919
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