Cairney, J. W. G. & Bastias, B. A. Influences of fire on forest soil fungal communities. Can. J. For. Res. 37, 207–215 (2007).
Google Scholar
Fernández, C., Vega, J. A. & Fonturbel, T. The effects of fuel reduction treatments on runoff, infiltration and erosion in two shrubland areas in the north of Spain. J. Environ. Manage. 105, 96–102 (2012).
Google Scholar
Reazin, C., Morris, S., Smith, J. E., Cowan, A. D. & Jumpponen, A. Fires of differing intensities rapidly select distinct soil fungal communities in a Northwest US ponderosa pine forest ecosystem. For. Ecol. Manage. 377, 118–127 (2016).
Google Scholar
Durán-Manual, F. et al. Prescribed burning in Pinus cubensis-dominated tropical natural forests: A myco-friendly fire-prevention tool. For. Syst. 31, e012 (2022).
Busse, M. D., Hubbert, K. R., Fiddler, G. O., Shestak, C. J. & Powers, R. F. Lethal soil temperatures during burning of masticated forest residues. Int. J. Wildl. Fire 14, 267–276 (2005).
Google Scholar
Frazão, D. F. et al. Cistus ladanifer (Cistaceae): A natural resource in Mediterranean-type ecosystems. Planta 247, 289–300 (2018).
Google Scholar
Keeley, J. E., Bond, W. J., Bradstock, R. A., Pausas, J. G. & Rundel, P. W. Fire in mediterranean ecosystems. Fire Medit. Ecosyst. https://doi.org/10.1017/cbo9781139033091 (2011).
Google Scholar
Louro, R., Peixe, A. & Santos-silva, C. New insights on Cistus salviifolius L. micropropagation. J. Bot. Sci. 6, 10–14 (2017).
Google Scholar
Valbuena, L., Tarrega, R. & Luis, E. Influence of heat on seed germination of Cistus laurifolius and Cistus ladanifer. J. Wildl. Fire 2, 15–20 (1992).
Google Scholar
Martín-Pinto, P., Vaquerizo, H., Peñalver, F., Olaizola, J. & Oria-De-Rueda, J. A. Early effects of a wildfire on the diversity and production of fungal communities in Mediterranean vegetation types dominated by Cistus ladanifer and Pinus pinaster in Spain. For. Ecol. Manage. 225, 296–305 (2006).
Google Scholar
Comandini, O., Contu, M. & Rinaldi, A. C. An overview of Cistus ectomycorrhizal fungi. Mycorrhiza 16, 381–395 (2006).
Google Scholar
Zuzunegui, M. et al. Growth response of Halimium halimifolium at four sites with different soil water availability regimes in two contrasted hydrological cycles. Plant Soil 247, 271–281 (2002).
Google Scholar
Civeyrel, L. et al. Molecular systematics, character evolution, and pollen morphology of Cistus and Halimium (Cistaceae). Plant Syst. Evol. 295, 23–54 (2011).
Google Scholar
Leonardi, M., Furtado, A. N. M., Comandini, O., Geml, J. & Rinaldi, A. C. Halimium as an ectomycorrhizal symbiont: New records and an appreciation of known fungal diversity. Mycol. Prog. 19, 1495–1509 (2020).
Google Scholar
Oria-De-Rueda, J. A., Martín-Pinto, P. & Olaizola, J. Bolete productivity of cistaceous scrublands in northwestern Spain. Econ. Bot. 62, 323–330 (2008).
Google Scholar
Fernández, C., Vega, J. A. & Fonturbel, T. Does shrub recovery differ after prescribed burning, clearing and mastication in a Spanish heathland?. Plant Ecol. 216, 429–437 (2015).
Google Scholar
Ponte, E. D., Costafreda-Aumedes, S. & Vega-Garcia, C. Lessons learned from arson wildfire incidence in reforestations and natural stands in Spain. Forests 10, 1–18 (2019).
Google Scholar
Franco-Manchón, I., Salo, K., Oria-de-Rueda, J. A., Bonet, J. A. & Martín-Pinto, P. Are wildfires a threat to fungi in European Pinus forests? A case study of boreal and Mediterranean forests. Forests 10, 309 (2019).
Google Scholar
Mediavilla, O., Oria-de-Rueda, J. A. & Martin-Pinto, P. Changes in sporocarp production and vegetation following wildfire in a Mediterranean Forest Ecosystem dominated by Pinus nigra in Northern Spain. For. Ecol. Manage. 331, 85–92 (2014).
Google Scholar
Tomao, A., Antonio Bonet, J., Castaño, C. & De-Miguel, S. How does forest management affect fungal diversity and community composition? Current knowledge and future perspectives for the conservation of forest fungi. For. Ecol. Manage. 457, 117678 (2020).
Google Scholar
Espinosa, J., Rodríguez de Rivera, O., Madrigal, J., Guijarro, M. & Hernando, C. Predicting potential cambium damage and fire resistance in Pinus nigra Arn. ssp. salzmannii. For. Ecol. Manage. 474, 118372 (2020).
Google Scholar
Potts, J. B. & Stephens, S. L. Invasive and native plant responses to shrubland fuel reduction: Comparing prescribed fire, mastication and treatment season. Biol. Conserv. 142, 1657–1664 (2009).
Google Scholar
Agee, J. K. & Skinner, C. N. Basic principles of forest fuel reduction treatments. For. Ecol. Manage. 211, 83–96 (2005).
Google Scholar
Fernández, C., Vega, J. A. & Fonturbel, T. Fuel reduction at a Spanish heathland by prescribed fire and mechanical shredding: Effects on seedling emergence. J. Environ. Manage. 129, 621–627 (2013).
Google Scholar
Huggett, R. J., Abt, K. L. & Shepperd, W. Efficacy of mechanical fuel treatments for reducing wildfire hazard. For. Policy Econ. 10, 408–414 (2008).
Google Scholar
Fernández, C. & Vega, J. A. Shrub recovery after fuel reduction treatments and a subsequent fire in a Spanish heathland. Plant Ecol. 215, 1233–1243 (2014).
Google Scholar
Fernández, C., Vega, J. A. & Fonturbel, T. Does fire severity influence shrub resprouting after spring prescribed burning?. Acta Oecologica 48, 30–36 (2013).
Google Scholar
Ellsworth, J. W., Harrington, R. A. & Fownes, J. H. Seedling emergence, growth, and allocation of Oriental bittersweet: Effects of seed input, seed bank, and forest floor litter. For. Ecol. Manage. 190, 255–264 (2004).
Google Scholar
Castaño, C. et al. Resistance of the soil fungal communities to medium-intensity fire prevention treatments in a Mediterranean scrubland. For. Ecol. Manage. 472, 118217 (2020).
Google Scholar
Anderson, I. C., Bastias, B. A., Genney, D. R., Parkin, P. I. & Cairney, J. W. G. Basidiomycete fungal communities in Australian sclerophyll forest soil are altered by repeated prescribed burning. Mycol. Res. 111, 482–486 (2007).
Google Scholar
Hernández-Rodríguez, M. et al. Soil fungal community composition in a Mediterranean shrubland is primarily shaped by history of major disturbance, less so by current fire fuel reduction treatments. Unpublished (2015).
Oria de Rueda, J. A., Martín-Pinto, P. & Olaizola, J. Boletus edulis PRODUCTION IN XEROPHILIC AND PIROPHITIC SCHRUBS OF Cistus ladanifer AND Halimium lasianthum IN WESTERN SPAIN. in IV International Workshop on Edible Mycorrhizal Mushrooms (2005).
Hart, B. T. N., Smith, J. E., Luoma, D. L. & Hatten, J. A. Recovery of ectomycorrhizal fungus communities fifteen years after fuels reduction treatments in ponderosa pine forests of the Blue Mountains. Oregon. For. Ecol. Manage. 422, 11–22 (2018).
Google Scholar
Hernández-Rodríguez, M., Oria-de-Rueda, J. A., Pando, V. & Martín-Pinto, P. Impact of fuel reduction treatments on fungal sporocarp production and diversity associated with Cistus ladanifer L. ecosystems. For. Ecol. Manage. 353, 10–20 (2015).
Google Scholar
Fernandes, P. M. Scientific support to prescribed underburning in southern Europe: What do we know?. Sci. Total Environ. 630, 340–348 (2018).
Google Scholar
Day, N. J. et al. Wildfire severity reduces richness and alters composition of soil fungal communities in boreal forests of western Canada. Glob. Chang. Biol. 25, 2310–2324 (2019).
Google Scholar
Salo, K., Domisch, T. & Kouki, J. Forest wildfire and 12 years of post-disturbance succession of saprotrophic macrofungi (Basidiomycota, Ascomycota). For. Ecol. Manage. 451, 117454 (2019).
Google Scholar
Zakaria, A. J. & Boddy, L. Mycelial foraging by Resinicium bicolor: Interactive effects of resource quantity, quality and soil composition. FEMS Microbiol. Ecol. 40, 135–142 (2002).
Google Scholar
Hul, S. et al. Fungal community shifts in structure and function across a boreal forest fire chronosequence. Appl. Environ. Microbiol. 81, 7869–7880 (2015).
Google Scholar
Vázquez-Veloso, A. et al. Prescribed burning in spring or autumn did not affect the soil fungal community in Mediterranean Pinus nigra natural forests. For. Ecol. Manage. 512, 120161 (2022).
Google Scholar
Lindahl, B. D. et al. Spatial separation of litter decomposition and mycorrhizal nitrogen uptake in a boreal forest. New Phytol. 173, 611–620 (2007).
Google Scholar
Salomón, R., Rodríguez-Calcerrada, J., González-Doncel, I., Gil, L. & Valbuena-Carabaña, M. On the general failure of coppice conversion into high forest in Quercus pyrenaica stands: A genetic and physiological approach. Folia Geobot. 52, 101–112 (2017).
Google Scholar
Williams, R. J., Hallgren, S. W. & Wilson, G. W. T. Frequency of prescribed burning in an upland oak forest determines soil and litter properties and alters the soil microbial community. For. Ecol. Manage. 265, 241–247 (2012).
Google Scholar
Semenova-Nelsen, T. A., Platt, W. J., Patterson, T. R., Huffman, J. & Sikes, B. A. Frequent fire reorganizes fungal communities and slows decomposition across a heterogeneous pine savanna landscape. New Phytol. 224, 916–927 (2019).
Google Scholar
Oliver, A. K., Callaham, M. A. & Jumpponen, A. Soil fungal communities respond compositionally to recurring frequent prescribed burning in a managed southeastern US forest ecosystem. For. Ecol. Manage. 345, 1–9 (2015).
Google Scholar
Sanz-Benito, I., Mediavilla, O., Casas, A., Oria-de-Rueda, J. A. & Martín-Pinto, P. Effects of fuel reduction treatments on the sporocarp production and richness of a Quercus/Cistus mixed system. For. Ecol. Manage. 503, 119798 (2022).
Google Scholar
Santos-Silva, C., Gonçalves, A. & Louro, R. Canopy cover influence on macrofungal richness and sporocarp production in montado ecosystems. Agrofor. Syst. 82, 149–159 (2011).
Google Scholar
Lin, W. R. et al. The impacts of thinning on the fruiting of saprophytic fungi in Cryptomeria japonica plantations in central Taiwan. For. Ecol. Manage. 336, 183–193 (2015).
Google Scholar
Aragón, G., López, R. & Martínez, I. Effects of Mediterranean dehesa management on epiphytic lichens. Sci. Total Environ. 409, 116–122 (2010).
Google Scholar
Hämäläinen, A., Kouki, J. & Lohmus, P. The value of retained Scots pines and their dead wood legacies for lichen diversity in clear-cut forests: The effects of retention level and prescribed burning. For. Ecol. Manage. 324, 89–100 (2014).
Google Scholar
Schimmel, J. & Granstrom, A. Fire severity and vegetation response in the boreal Swedish. Ecol. Soc. Am. 77, 1436–1450 (1996).
Hinojosa, M. B., Albert-Belda, E., Gómez-Muñoz, B. & Moreno, J. M. High fire frequency reduces soil fertility underneath woody plant canopies of Mediterranean ecosystems. Sci. Total Environ. 752, 141877 (2021).
Google Scholar
Clemmensen, K. E. et al. Carbon sequestration is related to mycorrhizal fungal community shifts during long-term succession in boreal forests. New Phytol. 205, 1525–1536 (2015).
Google Scholar
Tedersoo, L. et al. Disentangling global soil fungal diversity. Science 346, 1052–1053 (2014).
Google Scholar
Adamo, I. et al. Sampling forest soils to describe fungal diversity and composition. Which is the optimal sampling size in Mediterranean pure and mixed pine oak forests?. Fungal Biol. https://doi.org/10.1016/j.funbio.2021.01.005 (2021).
Google Scholar
Tedersoo, L. et al. Regional-scale in-depth analysis of soil fungal diversity reveals strong pH and plant species effects in northern Europe. Front. Microbiol. 11, 1953 (2020).
Google Scholar
Peay, K., Garbelotto, M. & Bruns, T. Evidence of dispersal limitation in soil microorganisms: Isolation reduces species richness on mycorrhizal tree islands. Ecology 91, 3631–3640 (2010).
Google Scholar
Koivula, M. & Vanha-Majamaa, I. Experimental evidence on biodiversity impacts of variable retention forestry, prescribed burning, and deadwood manipulation in Fennoscandia. Ecol. Process. 9, 1–22 (2020).
Google Scholar
Fox, S. et al. Fire as a driver of fungal diversity—A synthesis of current knowledge. Mycologia 00, 1–27 (2022).
Raudabaugh, D. B. et al. Where are they hiding? Testing the body snatchers hypothesis in pyrophilous fungi. Fungal Ecol. 43, 100870 (2020).
Google Scholar
Izzo, A., Canright, M. & Bruns, T. D. The effects of heat treatments on ectomycorrhizal resistant propagules and their ability to colonize bioassay seedlings. Mycol. Res. 110, 196–202 (2006).
Google Scholar
Kipfer, T., Moser, B., Egli, S., Wohlgemuth, T. & Ghazoul, J. Ectomycorrhiza succession patterns in Pinus sylvestris forests after stand-replacing fire in the Central Alps. Oecologia 167, 219–228 (2011).
Google Scholar
Glassman, S. I., Levine, C. R., Dirocco, A. M., Battles, J. J. & Bruns, T. D. Ectomycorrhizal fungal spore bank recovery after a severe forest fire: Some like it hot. ISME J. 10, 1228–1239 (2016).
Google Scholar
Buscardo, E. et al. Impact of wildfire return interval on the ectomycorrhizal resistant propagules communities of a Mediterranean open forest. Fungal Biol. 114, 628–636 (2010).
Google Scholar
Pringle, A., Vellinga, E. & Peay, K. The shape of fungal ecology: Does spore morphology give clues to a species’ niche?. Fungal Ecol. 17, 213–216 (2015).
Google Scholar
Zhang, K., Cheng, X., Shu, X., Liu, Y. & Zhang, Q. Linking soil bacterial and fungal communities to vegetation succession following agricultural abandonment. Plant Soil 431, 19–36 (2018).
Google Scholar
Xiang, X. et al. Arbuscular mycorrhizal fungal communities show low resistance and high resilience to wildfire disturbance. Plant Soil 397, 347–356 (2015).
Google Scholar
Dove, N. C., Klingeman, D. M., Carrell, A. A., Cregger, M. A. & Schadt, C. W. Fire alters plant microbiome assembly patterns: Integrating the plant and soil microbial response to disturbance. New Phytol. 230, 2433–2446 (2021).
Google Scholar
Fernandes, P. M. Fire-smart management of forest landscapes in the Mediterranean basin under global change. Landsc. Urban Plan. 110, 175–182 (2013).
Google Scholar
Fontúrbel, M. T., Fernández, C. & Vega, J. A. Prescribed burning versus mechanical treatments as shrubland management options in NW Spain: Mid-term soil microbial response. Appl. Soil Ecol. 107, 334–346 (2016).
Google Scholar
Geml, J. et al. Large-scale fungal diversity assessment in the Andean Yungas forests reveals strong community turnover among forest types along an altitudinal gradient. Mol. Ecol. 23, 2452–2472 (2014).
Google Scholar
Chu, H. et al. Effects of slope aspects on soil bacterial and arbuscular fungal communities in a boreal forest in China. Pedosphere 26, 226–234 (2016).
Google Scholar
Geml, J. Soil fungal communities reflect aspect-driven environmental structuring and vegetation types in a Pannonian forest landscape. Fungal Ecol. 39, 63–79 (2019).
Google Scholar
Castaño, C. et al. Soil microclimate changes affect soil fungal communities in a Mediterranean pine forest. New Phytol. 220, 1211–1221 (2018).
Google Scholar
Collado, E. et al. Mushroom productivity trends in relation to tree growth and climate across different European forest biomes. Sci. Total Environ. 689, 602–615 (2019).
Google Scholar
Ihrmark, K., Bödeker, I. & Cruz-Martinez, K. New primers to amplify the fungal ITS2 region—Evaluation by 454-sequencing of artificial and natural communities. FEMS Microbiol. Ecol. 82, 666–677 (2012).
Google Scholar
White, T., Bruns, S., Lee, S. & Taylor, J. Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics. In PCR Protocols: A Guide to Methods and Applications (eds Innis, M. A. et al.) 315–322 (Academic Press, 1990).
Kent, M. Vegetation Description and Data Analysis: A Practical Approach (Wiley, 2011).
Edgar, R. C. Search and clustering orders of magnitude faster than BLAST. Bioinformatics 26, 2460–2461 (2010).
Google Scholar
Kõljalg, U. et al. Towards a unified paradigm for sequence-based identification of fungi. Mol. Ecol. 22, 5271–5277 (2013).
Google Scholar
Abarenkov, K. et al. Plutof-a web based workbench for ecological and taxonomic research, with an online implementation for fungal its sequences. Evol. Bioinforma. 2010, 189–196 (2010).
Põlme, S. et al. FungalTraits: A user-friendly traits database of fungi and fungus-like stramenopiles. Fungal Divers. 105, 1–16 (2020).
Google Scholar
Agerer, R. Fungal relationships and structural identity of their ectomycorrhizae. Mycol. Prog. 5, 67–107 (2006).
Google Scholar
Tedersoo, L. & Smith, M. E. Lineages of ectomycorrhizal fungi revisited: Foraging strategies and novel lineages revealed by sequences from belowground. Fungal Biol. Rev. 27, 83–99 (2013).
Google Scholar
Pinheiro, J., Bates, D., DebRoy, S., Sarkar, D. & Team, R. C. Nlme: Linear and Nonlinear Mixed Effects Models. R Package Version 3.1–128. http://CRAN.R-project.org/package=nlme (2016).
Chao, A. & Chiu, C. Species richness: Estimation and comparison. Wiley StatsRef https://doi.org/10.1002/9781118445112.stat03432.pub2 (2016).
Google Scholar
Chiu, C. H., Wang, Y. T., Walther, B. A. & Chao, A. An improved nonparametric lower bound of species richness via a modified good-turing frequency formula. Biometrics 70, 671–682 (2014).
Google Scholar
Oksanen, J. et al. Vegan: Community Ecology Package. R package version 2.4–2. https://CRAN.R-project.org/package=vegan. (2017).
Oksanen, J., Blanchet, F., Kindt, R. & Al, E. vegan: Community Ecology Package. R package version 2.3–0. (2015).
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