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Fostering Conservation via an Integrated Use of Conventional Approaches and High-Throughput SPET Genotyping: A Case Study Using the Endangered Canarian EndemicsSolanum lidiiandS. vespertilio (Solanaceae)

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Fostering Conservation via an Integrated Use of Conventional Approaches and High-Throughput SPET Genotyping: A Case Study Using the Endangered Canarian EndemicsSolanum lidiiandS. vespertilio (Solanaceae)

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dc.contributor.author Gramazio, Pietro es_ES
dc.contributor.author Jaén-Molina, Ruth es_ES
dc.contributor.author Vilanova Navarro, Santiago es_ES
dc.contributor.author Prohens Tomás, Jaime es_ES
dc.contributor.author Marrero, Águedo es_ES
dc.contributor.author Caujapé-Castells, Juli es_ES
dc.contributor.author Anderson, Gregory J. es_ES
dc.date.accessioned 2021-06-15T03:31:38Z
dc.date.available 2021-06-15T03:31:38Z
dc.date.issued 2020-07-10 es_ES
dc.identifier.uri http://hdl.handle.net/10251/167987
dc.description.abstract [EN] Islands provide unique opportunities to integrated research approaches to study evolution and conservation because boundaries are circumscribed, geological ages are often precise, and many taxa are greatly imperiled. We combined morphological and hybridization studies with high-throughput genotyping platforms to streamline relationships in the endangered monophyletic and highly diverse lineage ofSolanumin the Canarian archipelago, where three endemic taxa are currently recognized. Inter-taxa hybridizations were performed, and morphological expression was assessed with a common-garden approach. Using the eggplant Single Primer Enrichment Technology (SPET) platform with 5,093 probes, 74 individuals of three endemic taxa (Solanum lidii,S. vespertiliosubsp.vespertilio, andS. vespertiliosubsp.doramae) were sampled for SNPs. While morphological and breeding studies showed clear distinctions and some continuous variation, inter-taxon hybrids were fertile and heterotic for vigor traits. SPET genotyping revealed 1,421 high-quality SNPs and supported four, not three, distinct taxonomic entities associated with post-emergence geological, ecological and geographic factors of the islands. Given the lack of barriers to hybridization among all the taxa and their molecular differences, great care must be taken in population management. Conservation strategies must take account of the sexual and breeding systems and genotypic distribution among populations to successfully conserve and restore threatened/endangered island taxa, as exemplified bySolanumon the Canary Islands. es_ES
dc.description.sponsorship This work was supported by funds from project DEMIURGO to the Jardin Botanico Canario "Viera y Clavijo" -Unidad Asociada al CSIC of the Cabildo de Gran Canaria. Consumables and genotyping were funded by the Jardin Botanico Canario "Viera y Clavijo" -Unidad Asociada al CSIC. Participation of authors from Universitat Politecnica de Valencia has been partially funded by the European Union's Horizon 2020 Research and Innovation Programme under the Grant Agreement No. 677379 (G2P-SOL project: Linking genetic resources, genomes, and phenotypes of solanaceous crops). PG was grateful to Universitat Politecnica de Valencia and to Japan Society for the Promotion of Science for their respective Postdoctoral Grants [PAID-10-18 and FY2019-P19105 JSPS Postdoctoral Fellowship for Research in Japan (Standard)]. es_ES
dc.language Inglés es_ES
dc.publisher Frontiers Media SA es_ES
dc.relation.ispartof Frontiers in Plant Science es_ES
dc.rights Reconocimiento (by) es_ES
dc.subject Conservation es_ES
dc.subject Endangered endemics es_ES
dc.subject Reproductive biology es_ES
dc.subject SNPs es_ES
dc.subject Solanaceae es_ES
dc.subject Solanum es_ES
dc.subject Canary Islands es_ES
dc.subject SPET es_ES
dc.subject.classification GENETICA es_ES
dc.title Fostering Conservation via an Integrated Use of Conventional Approaches and High-Throughput SPET Genotyping: A Case Study Using the Endangered Canarian EndemicsSolanum lidiiandS. vespertilio (Solanaceae) es_ES
dc.type Artículo es_ES
dc.identifier.doi 10.3389/fpls.2020.00757 es_ES
dc.relation.projectID info:eu-repo/grantAgreement/EC/H2020/677379/EU/Linking genetic resources, genomes and phenotypes of Solanaceous crops/ es_ES
dc.relation.projectID info:eu-repo/grantAgreement/JSPS//FY2019/ es_ES
dc.relation.projectID info:eu-repo/grantAgreement/UPV//PAID-10-18/ es_ES
dc.relation.projectID info:eu-repo/grantAgreement/JSPS//P19105/ es_ES
dc.rights.accessRights Abierto es_ES
dc.contributor.affiliation Universitat Politècnica de València. Departamento de Biotecnología - Departament de Biotecnologia es_ES
dc.contributor.affiliation Universitat Politècnica de València. Instituto Universitario Mixto de Biología Molecular y Celular de Plantas - Institut Universitari Mixt de Biologia Molecular i Cel·lular de Plantes es_ES
dc.description.bibliographicCitation Gramazio, P.; Jaén-Molina, R.; Vilanova Navarro, S.; Prohens Tomás, J.; Marrero, Á.; Caujapé-Castells, J.; Anderson, GJ. (2020). Fostering Conservation via an Integrated Use of Conventional Approaches and High-Throughput SPET Genotyping: A Case Study Using the Endangered Canarian EndemicsSolanum lidiiandS. vespertilio (Solanaceae). Frontiers in Plant Science. 11:1-17. https://doi.org/10.3389/fpls.2020.00757 es_ES
dc.description.accrualMethod S es_ES
dc.relation.publisherversion https://doi.org/10.3389/fpls.2020.00757 es_ES
dc.description.upvformatpinicio 1 es_ES
dc.description.upvformatpfin 17 es_ES
dc.type.version info:eu-repo/semantics/publishedVersion es_ES
dc.description.volume 11 es_ES
dc.identifier.eissn 1664-462X es_ES
dc.identifier.pmid 32754166 es_ES
dc.identifier.pmcid PMC7381301 es_ES
dc.relation.pasarela S\431035 es_ES
dc.contributor.funder European Commission es_ES
dc.contributor.funder Universitat Politècnica de València es_ES
dc.contributor.funder Japan Society for the Promotion of Science es_ES
dc.description.references Ablay, G., & Hürlimann, M. (2000). Evolution of the north flank of Tenerife by recurrent giant landslides. Journal of Volcanology and Geothermal Research, 103(1-4), 135-159. doi:10.1016/s0377-0273(00)00220-1 es_ES
dc.description.references Ancochea, E., Fuster, J., Ibarrola, E., Cendrero, A., Coello, J., Hernan, F., … Jamond, C. (1990). Volcanic evolution of the island of Tenerife (Canary Islands) in the light of new K-Ar data. Journal of Volcanology and Geothermal Research, 44(3-4), 231-249. doi:10.1016/0377-0273(90)90019-c es_ES
dc.description.references Anderson, G. J. (1975). The Variation and Evolution of Selected Species of Solanum Section Basarthrum. Brittonia, 27(3), 209. doi:10.2307/2805892 es_ES
dc.description.references Anderson, G. J., Bernardello, G., & Santos-Guerra, A. (2014). Reproductive biology of Solanum vespertilio (Solanaceae), a zygomorphic, heterantherous, enantiostylous, and andromonoecious rare Canary Islands endemic. Plant Systematics and Evolution, 301(4), 1191-1206. doi:10.1007/s00606-014-1143-4 es_ES
dc.description.references Anderson, G. J., & Levine, D. A. (1982). THREE TAXA CONSTITUTE THE SEXES OF A SINGLE DIOECIOUS SPECIES OF SOLANUM. TAXON, 31(4), 667-672. doi:10.2307/1219682 es_ES
dc.description.references Anderson, G. J., & Symon, D. E. (1989). Functional Dioecy and Andromonoecy in Solanum. Evolution, 43(1), 204. doi:10.2307/2409175 es_ES
dc.description.references Baldwin, B. G., & Wagner, W. L. (2010). Hawaiian angiosperm radiations of North American origin. Annals of Botany, 105(6), 849-879. doi:10.1093/aob/mcq052 es_ES
dc.description.references Barchi, L., Acquadro, A., Alonso, D., Aprea, G., Bassolino, L., Demurtas, O., … Giuliano, G. (2019). Single Primer Enrichment Technology (SPET) for High-Throughput Genotyping in Tomato and Eggplant Germplasm. Frontiers in Plant Science, 10. doi:10.3389/fpls.2019.01005 es_ES
dc.description.references Barchi, L., Pietrella, M., Venturini, L., Minio, A., Toppino, L., Acquadro, A., … Rotino, G. L. (2019). A chromosome-anchored eggplant genome sequence reveals key events in Solanaceae evolution. Scientific Reports, 9(1). doi:10.1038/s41598-019-47985-w es_ES
dc.description.references BRUVO, R., MICHIELS, N. K., D’SOUZA, T. G., & SCHULENBURG, H. (2004). A simple method for the calculation of microsatellite genotype distances irrespective of ploidy level. Molecular Ecology, 13(7), 2101-2106. doi:10.1111/j.1365-294x.2004.02209.x es_ES
dc.description.references CAMPBELL, K., & DONLAN, C. J. (2005). Feral Goat Eradications on Islands. Conservation Biology, 19(5), 1362-1374. doi:10.1111/j.1523-1739.2005.00228.x es_ES
dc.description.references Caujapé-Castells, J., Tye, A., Crawford, D. J., Santos-Guerra, A., Sakai, A., Beaver, K., … Jardim, R. (2010). Conservation of oceanic island floras: Present and future global challenges. Perspectives in Plant Ecology, Evolution and Systematics, 12(2), 107-129. doi:10.1016/j.ppees.2009.10.001 es_ES
dc.description.references Chifman, J., & Kubatko, L. (2014). Quartet Inference from SNP Data Under the Coalescent Model. Bioinformatics, 30(23), 3317-3324. doi:10.1093/bioinformatics/btu530 es_ES
dc.description.references Chifman, J., & Kubatko, L. (2015). Identifiability of the unrooted species tree topology under the coalescent model with time-reversible substitution processes, site-specific rate variation, and invariable sites. Journal of Theoretical Biology, 374, 35-47. doi:10.1016/j.jtbi.2015.03.006 es_ES
dc.description.references Corlett, R. T. (2017). A Bigger Toolbox: Biotechnology in Biodiversity Conservation. Trends in Biotechnology, 35(1), 55-65. doi:10.1016/j.tibtech.2016.06.009 es_ES
dc.description.references Crawford, D. J., Moura, M., Borges Silva, L., Mort, M. E., Kerbs, B., Schaefer, H., & Kelly, J. K. (2019). The transition to selfing in Azorean Tolpis (Asteraceae). Plant Systematics and Evolution, 305(4), 305-317. doi:10.1007/s00606-019-01573-7 es_ES
dc.description.references Curto, M., Puppo, P., Kratschmer, S., & Meimberg, H. (2017). Genetic diversity and differentiation patterns in Micromeria from the Canary Islands are congruent with multiple colonization dynamics and the establishment of species syngameons. BMC Evolutionary Biology, 17(1). doi:10.1186/s12862-017-1031-y es_ES
dc.description.references Danecek, P., Auton, A., Abecasis, G., Albers, C. A., Banks, E., … DePristo, M. A. (2011). The variant call format and VCFtools. Bioinformatics, 27(15), 2156-2158. doi:10.1093/bioinformatics/btr330 es_ES
dc.description.references Del Fabbro, C., Scalabrin, S., Morgante, M., & Giorgi, F. M. (2013). An Extensive Evaluation of Read Trimming Effects on Illumina NGS Data Analysis. PLoS ONE, 8(12), e85024. doi:10.1371/journal.pone.0085024 es_ES
dc.description.references DePristo, M. A., Banks, E., Poplin, R., Garimella, K. V., Maguire, J. R., Hartl, C., … Daly, M. J. (2011). A framework for variation discovery and genotyping using next-generation DNA sequencing data. Nature Genetics, 43(5), 491-498. doi:10.1038/ng.806 es_ES
dc.description.references Escobar García, P., Schönswetter, P., Fuertes Aguilar, J., Nieto Feliner, G., & Schneeweiss, G. M. (2009). Five molecular markers reveal extensive morphological homoplasy and reticulate evolution in the Malva alliance (Malvaceae). Molecular Phylogenetics and Evolution, 50(2), 226-239. doi:10.1016/j.ympev.2008.10.015 es_ES
dc.description.references García-Verdugo, C., Mairal, M., Monroy, P., Sajeva, M., & Caujapé-Castells, J. (2017). The loss of dispersal on islands hypothesis revisited: Implementing phylogeography to investigate evolution of dispersal traits in Periploca (Apocynaceae). Journal of Biogeography, 44(11), 2595-2606. doi:10.1111/jbi.13050 es_ES
dc.description.references GOUDET, J. (2005). hierfstat, a package for r to compute and test hierarchical F-statistics. Molecular Ecology Notes, 5(1), 184-186. doi:10.1111/j.1471-8286.2004.00828.x es_ES
dc.description.references Gramazio, P., Yan, H., Hasing, T., Vilanova, S., Prohens, J., & Bombarely, A. (2019). Whole-Genome Resequencing of Seven Eggplant (Solanum melongena) and One Wild Relative (S. incanum) Accessions Provides New Insights and Breeding Tools for Eggplant Enhancement. Frontiers in Plant Science, 10. doi:10.3389/fpls.2019.01220 es_ES
dc.description.references Ihaka, R., & Gentleman, R. (1996). R: A Language for Data Analysis and Graphics. Journal of Computational and Graphical Statistics, 5(3), 299-314. doi:10.1080/10618600.1996.10474713 es_ES
dc.description.references Jombart, T. (2008). adegenet: a R package for the multivariate analysis of genetic markers. Bioinformatics, 24(11), 1403-1405. doi:10.1093/bioinformatics/btn129 es_ES
dc.description.references Kamvar, Z. N., Tabima, J. F., & Grünwald, N. J. (2014). Poppr: an R package for genetic analysis of populations with clonal, partially clonal, and/or sexual reproduction. PeerJ, 2, e281. doi:10.7717/peerj.281 es_ES
dc.description.references Kim, C., Guo, H., Kong, W., Chandnani, R., Shuang, L.-S., & Paterson, A. H. (2016). Application of genotyping by sequencing technology to a variety of crop breeding programs. Plant Science, 242, 14-22. doi:10.1016/j.plantsci.2015.04.016 es_ES
dc.description.references Knaus, B. J., & Grünwald, N. J. (2016). vcfr  : a package to manipulate and visualize variant call format data in R. Molecular Ecology Resources, 17(1), 44-53. doi:10.1111/1755-0998.12549 es_ES
dc.description.references Kouassi, B., Prohens, J., Gramazio, P., Kouassi, A. B., Vilanova, S., Galán-Ávila, A., … Plazas, M. (2016). Development of backcross generations and new interspecific hybrid combinations for introgression breeding in eggplant (Solanum melongena). Scientia Horticulturae, 213, 199-207. doi:10.1016/j.scienta.2016.10.039 es_ES
dc.description.references Lischer, H. E. L., & Excoffier, L. (2011). PGDSpider: an automated data conversion tool for connecting population genetics and genomics programs. Bioinformatics, 28(2), 298-299. doi:10.1093/bioinformatics/btr642 es_ES
dc.description.references Mairal, M., Caujapé-Castells, J., Pellissier, L., Jaén-Molina, R., Álvarez, N., Heuertz, M., & Sanmartín, I. (2018). A tale of two forests: ongoing aridification drives population decline and genetic diversity loss at continental scale in Afro-Macaronesian evergreen-forest archipelago endemics. Annals of Botany, 122(6), 1005-1017. doi:10.1093/aob/mcy107 es_ES
dc.description.references Mairal, M., Sanmartín, I., Aldasoro, J. J., Culshaw, V., Manolopoulou, I., & Alarcón, M. (2015). Palaeo-islands as refugia and sources of genetic diversity within volcanic archipelagos: the case of the widespread endemicCanarina canariensis(Campanulaceae). Molecular Ecology, 24(15), 3944-3963. doi:10.1111/mec.13282 es_ES
dc.description.references Martin, M. (2011). Cutadapt removes adapter sequences from high-throughput sequencing reads. EMBnet.journal, 17(1), 10. doi:10.14806/ej.17.1.200 es_ES
dc.description.references MOYA, Ó., CONTRERAS-DÍAZ, H. G., OROMÍ, P., & JUAN, C. (2004). Genetic structure, phylogeography and demography of two ground-beetle species endemic to the Tenerife laurel forest (Canary Islands). Molecular Ecology, 13(10), 3153-3167. doi:10.1111/j.1365-294x.2004.02316.x es_ES
dc.description.references Neal, P. R., & Anderson, G. J. (2005). Are ?mating systems? ?breeding systems? of inconsistent and confusing terminology in plant reproductive biology? or is it the other way around? Plant Systematics and Evolution, 250(3-4), 173-185. doi:10.1007/s00606-004-0229-9 es_ES
dc.description.references Nei, M. (1972). Genetic Distance between Populations. The American Naturalist, 106(949), 283-292. doi:10.1086/282771 es_ES
dc.description.references Nei, M. (1973). Analysis of Gene Diversity in Subdivided Populations. Proceedings of the National Academy of Sciences, 70(12), 3321-3323. doi:10.1073/pnas.70.12.3321 es_ES
dc.description.references Nogales, M., Heleno, R., Rumeu, B., González‐Castro, A., Traveset, A., Vargas, P., … Field, R. (2016). Seed‐dispersal networks on the C anaries and the G alápagos archipelagos: interaction modules as biogeographical entities. Global Ecology and Biogeography, 25(7), 912-922. doi:10.1111/geb.12315 es_ES
dc.description.references Otto, R., Garzón-Machado, V., del Arco, M., Fernández-Lugo, S., de Nascimento, L., Oromí, P., … Fernández-Palacios, J. M. (2017). Unpaid extinction debts for endemic plants and invertebrates as a legacy of habitat loss on oceanic islands. Diversity and Distributions, 23(9), 1031-1041. doi:10.1111/ddi.12590 es_ES
dc.description.references Paradis, E., & Schliep, K. (2018). ape 5.0: an environment for modern phylogenetics and evolutionary analyses in R. Bioinformatics, 35(3), 526-528. doi:10.1093/bioinformatics/bty633 es_ES
dc.description.references Plazas, M., Vilanova, S., Gramazio, P., Rodríguez-Burruezo, A., Fita, A., Herraiz, F. J., … Prohens, J. (2016). Interspecific Hybridization between Eggplant and Wild Relatives from Different Genepools. Journal of the American Society for Horticultural Science, 141(1), 34-44. doi:10.21273/jashs.141.1.34 es_ES
dc.description.references Price, J. P., Otto, R., Menezes de Sequeira, M., Kueffer, C., Schaefer, H., Caujapé-Castells, J., & Fernández-Palacios, J. M. (2018). Colonization and diversification shape species-area relationships in three Macaronesian archipelagos. Journal of Biogeography, 45(9), 2027-2039. doi:10.1111/jbi.13396 es_ES
dc.description.references Prohens, J., Anderson, G. J., Herraiz, F. J., Bernardello, G., Santos-Guerra, A., Crawford, D., & Nuez, F. (2007). Genetic diversity and conservation of two endangered eggplant relatives (Solanum vespertilio Aiton and Solanum lidii Sunding) endemic to the Canary Islands. Genetic Resources and Crop Evolution, 54(3), 451-464. doi:10.1007/s10722-006-9174-5 es_ES
dc.description.references Puppo, P., Curto, M., Gusmão-Guedes, J., Cochofel, J., Pérez de Paz, P. L., Bräuchler, C., & Meimberg, H. (2015). Molecular phylogenetics of Micromeria (Lamiaceae) in the Canary Islands, diversification and inter-island colonization patterns inferred from nuclear genes. Molecular Phylogenetics and Evolution, 89, 160-170. doi:10.1016/j.ympev.2015.04.017 es_ES
dc.description.references Puppo, P., Curto, M., & Meimberg, H. (2016). Genetic structure ofMicromeria(Lamiaceae) in Tenerife, the imprint of geological history and hybridization on within-island diversification. Ecology and Evolution, 6(11), 3443-3460. doi:10.1002/ece3.2094 es_ES
dc.description.references Raj, A., Stephens, M., & Pritchard, J. K. (2014). fastSTRUCTURE: Variational Inference of Population Structure in Large SNP Data Sets. Genetics, 197(2), 573-589. doi:10.1534/genetics.114.164350 es_ES
dc.description.references Rumeu, B., Vargas, P., Jaén-Molina, R., Nogales, M., & Caujapé-Castells, J. (2014). Phylogeography and genetic structure of the threatened CanarianJuniperus cedrus(Cupressaceae). Botanical Journal of the Linnean Society, 175(3), 376-394. doi:10.1111/boj.12172 es_ES
dc.description.references Särkinen, T., Bohs, L., Olmstead, R. G., & Knapp, S. (2013). A phylogenetic framework for evolutionary study of the nightshades (Solanaceae): a dated 1000-tip tree. BMC Evolutionary Biology, 13(1), 214. doi:10.1186/1471-2148-13-214 es_ES
dc.description.references Scaglione, D., Pinosio, S., Marroni, F., Di Centa, E., Fornasiero, A., Magris, G., … Morgante, M. (2019). Single primer enrichment technology as a tool for massive genotyping: a benchmark on black poplar and maize. Annals of Botany, 124(4), 543-551. doi:10.1093/aob/mcz054 es_ES
dc.description.references Scheben, A., Batley, J., & Edwards, D. (2017). Genotyping-by-sequencing approaches to characterize crop genomes: choosing the right tool for the right application. Plant Biotechnology Journal, 15(2), 149-161. doi:10.1111/pbi.12645 es_ES
dc.description.references Sperling, F. N., Washington, R., & Whittaker, R. J. (2004). Future Climate Change of the Subtropical North Atlantic: Implications for the Cloud Forests of Tenerife. Climatic Change, 65(1/2), 103-123. doi:10.1023/b:clim.0000037488.33377.bf es_ES
dc.description.references Thomson, M. J. (2014). High-Throughput SNP Genotyping to Accelerate Crop Improvement. Plant Breeding and Biotechnology, 2(3), 195-212. doi:10.9787/pbb.2014.2.3.195 es_ES
dc.description.references TRUSTY, J. L., OLMSTEAD, R. G., SANTOS-GUERRA, A., SÁ-FONTINHA, S., & FRANCISCO-ORTEGA, J. (2005). Molecular phylogenetics of the Macaronesian-endemic genus Bystropogon (Lamiaceae): palaeo-islands, ecological shifts and interisland colonizations. Molecular Ecology, 14(4), 1177-1189. doi:10.1111/j.1365-294x.2005.02487.x es_ES
dc.description.references Van den Bogaard, P. (2013). The origin of the Canary Island Seamount Province - New ages of old seamounts. Scientific Reports, 3(1). doi:10.1038/srep02107 es_ES
dc.description.references Warren, B. H., Simberloff, D., Ricklefs, R. E., Aguilée, R., Condamine, F. L., Gravel, D., … Thébaud, C. (2015). Islands as model systems in ecology and evolution: prospects fifty years after MacArthur-Wilson. Ecology Letters, 18(2), 200-217. doi:10.1111/ele.12398 es_ES
dc.description.references Watts, A. B., & Masson, D. G. (1995). A giant landslide on the north flank of Tenerife, Canary Islands. Journal of Geophysical Research: Solid Earth, 100(B12), 24487-24498. doi:10.1029/95jb02630 es_ES
dc.description.references Weigelt, P., Daniel Kissling, W., Kisel, Y., Fritz, S. A., Karger, D. N., Kessler, M., … Kreft, H. (2015). Global patterns and drivers of phylogenetic structure in island floras. Scientific Reports, 5(1). doi:10.1038/srep12213 es_ES
dc.description.references Whalen, M. D., & Anderson, G. J. (1981). DISTRIBUTION OF GAMETOPHYTIC SELF‐INCOMPATIBILITY AND INFRAGENERIC CLASSIFICATION IN SOLANUM. TAXON, 30(4), 761-767. doi:10.2307/1220077 es_ES
dc.description.references Wickham, H. (2016). ggplot2. Use R! doi:10.1007/978-3-319-24277-4 es_ES
dc.description.references Willing, E.-M., Dreyer, C., & van Oosterhout, C. (2012). Estimates of Genetic Differentiation Measured by FST Do Not Necessarily Require Large Sample Sizes When Using Many SNP Markers. PLoS ONE, 7(8), e42649. doi:10.1371/journal.pone.0042649 es_ES
dc.subject.ods 15.- Proteger, restaurar y promover la utilización sostenible de los ecosistemas terrestres, gestionar de manera sostenible los bosques, combatir la desertificación y detener y revertir la degradación de la tierra, y frenar la pérdida de diversidad biológica es_ES


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