The great oak forests of the Iberian Peninsula, which have anchored western Iberia’s landscapes for millennia, may be quietly changing hands. A new open-access study published in Discover Conservation projects that as the Mediterranean climate warms and dries, drought-tolerant oak species will progressively replace their moisture-dependent relatives across large swaths of Spain and Portugal. The research, led by Isabel Passos of the Polytechnic Institute of Castelo Branco together with colleagues at the University of Coimbra, the University of Porto and partner institutions, offers one of the most detailed spatial pictures yet of how the dominant trees of Iberian forests could be reshuffled over the coming decades.
The team focused on three oak species that dominate the climax forests of acidic substrates across the peninsula: cork oak (Quercus suber), Pyrenean oak (Quercus pyrenaica) and pedunculate oak (Quercus robur). These species sit at different points along a moisture gradient. Pedunculate oak, a temperate and humidity-loving species, thrives in the cool Atlantic north. Pyrenean oak, a marcescent species that holds its withered leaves through winter, occupies a transitional submediterranean zone. Cork oak, the iconic evergreen of Mediterranean silviculture, tolerates pronounced summer drought. Because the three species often coexist in the same landscapes, distributed along gradients from rocky ridge tops to moist valley bottoms, the researchers reasoned that climate change could trigger a domino effect: as each species retreats from its drier margins, a more drought-adapted congener may move in to take its place.
To test this idea, the researchers built high-resolution species distribution models at a one-square-kilometre resolution, integrating nearly a quarter of a million cleaned occurrence records from GBIF, national biodiversity databases and expert-curated sources. For pedunculate oak, the team applied a spatial thinning procedure that reduced more than 205,000 records to about 27,000, mitigating oversampling while preserving the species’ environmental coverage. The models combined nineteen bioclimatic indices from the CHELSA dataset with soil pH, soil texture, a Topographic Ruggedness Index and a Topographic Wetness Index, all chosen through hypothesis-driven screening that excluded collinear predictors.
The modelling framework was an ensemble approach implemented in the biomod2 package in R, combining eight techniques ranging from generalized linear models and generalized additive models to random forests, artificial neural networks and maximum entropy. Each model was validated over ten rounds of cross-validation, and only algorithms exceeding a True Skill Statistic threshold of 0.7 were averaged into the final ensembles. Performance was strong across the board: TSS values exceeded 0.83 and AUC scores surpassed 0.97 for all three species, with cork oak models performing best. Future projections drew on five general circulation models selected for their strong performance over Europe, run under two Shared Socioeconomic Pathways: an intermediate SSP3-7.0 scenario and a pessimistic SSP5-8.5 scenario, for the mid-century period 2041 to 2070 and the late-century period 2071 to 2100.
The environmental variables that best explained each species’ current distribution revealed their distinct ecological thresholds. For pedunculate oak, the minimum temperature of the coldest month was the dominant predictor, reflecting its tolerance of subzero winters, followed by topographic ruggedness and precipitation of the warmest quarter. Pyrenean oak’s distribution hinged on annual precipitation and warm-season rainfall together with soil pH, underscoring its dependence on water availability during the hot, dry summer. Cork oak, by contrast, was governed primarily by soil pH and mean annual temperature, favouring sites where winter minima stay above freezing. All three species are strictly silicicole, confined to acidic substrates, which means that climatically suitable areas on limestone soils will remain off-limits no matter how the climate shifts.
The projected trajectories diverge sharply. Pedunculate oak’s current range is expected to remain largely stable, with between 73 and 84 percent of its present suitable area persisting across scenarios, though its total suitable area declines slightly as losses outweigh gains. Cork oak emerges as the clear winner: its suitable range expands in every scenario and time frame, gaining between 32 and 44 percent of new territory, pushing northward and inland, with potential altitudinal advances reaching as far as the Pyrenees, while losing almost nothing at its southern edge. Pyrenean oak fares worst. Its total suitable area shrinks in all scenarios, with losses of up to nearly 60 percent of its current range concentrated in the southern and inland parts of the peninsula, and only limited compensatory gains at higher elevations.
When the researchers overlaid the range dynamics of different species, the turnover patterns became strikingly clear. Wherever one species loses suitability while another gains or holds steady in the same grid cells, a potential replacement is flagged. The dominant signal is a turnover from Pyrenean oak to cork oak, projected across roughly 20 to 47 percent of Pyrenean oak’s currently suitable range depending on the scenario, intensifying toward the end of the century and under harsher emissions. This replacement is expected to begin at the species’ southern fringes and spread into the interior. A smaller turnover, from pedunculate oak to Pyrenean oak, is projected across about 5 to 8 percent of the former’s range, mostly in low-altitude inland areas at the southern edge of its distribution. In some coastal zones of western and northeastern Iberia, cork oak may ultimately replace both of the other species where they both become unsuitable.
A crucial dimension of the study is its analysis of protected areas. Between a quarter and nearly half of the projected turnover zones fall inside classified conservation sites, including Natura 2000 areas designated under the European Union’s Habitats Directive, national parks and nature reserves. The turnover from Pyrenean oak to cork oak carries a direct policy consequence: it implies a shift from habitat 9230, the Galicio-Portuguese oak woods, to habitat 9330, cork oak forests, within sites whose management plans were written for the habitats of the past. The researchers argue that conservation targets in these sites will need periodic revision to maintain habitat continuity under changing climates, and that protected areas can serve as demonstration cases for adaptive management on the privately owned lands that dominate the Portuguese landscape.
The authors are careful to frame these projections as shifts in potential climatic and edaphic suitability rather than deterministic predictions of stand-level replacement. The models do not explicitly simulate dispersal, disturbance regimes or biotic interactions, and oak species are notoriously slow to migrate relative to the pace of climate change. Yet the convergent trends across multiple climate models and scenarios lend weight to the central inference: that a gradual Mediterraneanization of the Iberian landscape is underway, marked by longer summer dry periods and reduced annual precipitation, in which drought-adapted oaks progressively occupy the space vacated by their moisture-dependent relatives.
The practical implications reach deep into forestry. The researchers recommend protecting natural regeneration of the species likely to dominate in the future, since cork oak individuals already occur near Pyrenean oak stands on rocky outcrops and within forests. Where natural regeneration is insufficient, they point to seed sowing and planting techniques, including autumn sowing to maximize root development before summer drought, selection of larger acorns, protection from seed predators such as wild boar, and the use of large containers to avoid root deformation. They also advocate multi-provenance strategies that draw reproductive material from southern or low-altitude populations already adapted to drier conditions, combined with mixed-species stands to hedge risk. If guided by such adaptive management, the authors conclude, species turnover need not spell the loss of Iberian forests; it may instead be the mechanism by which they retain canopy cover, ecological function and resilience through a century of rapid environmental change.
Subject of Research: Projected climate-driven species turnover among Iberian oak forests
Article Title: Exploring turnover dynamics in Iberian Oak forests under climate change scenarios
Article References: Passos, I., Figueiredo, A., Gonçalves, J., Ribeiro, M. M., & Vila-Viçosa, C. (2026). Exploring turnover dynamics in Iberian Oak forests under climate change scenarios. Discover Conservation, 3(1), Article 14. https://doi.org/10.1007/s44353-026-00084-0
Image Credits: AI Generated
DOI: 10.1007/s44353-026-00084-0
Keywords: climate change, oak forests, Quercus suber, Quercus pyrenaica, Quercus robur, species distribution models, species turnover, Iberian Peninsula, Mediterranean forests, forest management, conservation, habitat suitability
Cite Scienmag News
Sloane Callahan. (September 30, 2026). Climate Change Could Rewrite the Map of Iberian Oak Forests by Century’s End. Scienmag. https://scienmag.com/climate-change-could-rewrite-the-map-of-iberian-oak-forests-by-centurys-end/
Sloane Callahan. "Climate Change Could Rewrite the Map of Iberian Oak Forests by Century’s End." Scienmag, 30 September 2026, https://scienmag.com/climate-change-could-rewrite-the-map-of-iberian-oak-forests-by-centurys-end/. Accessed 30 September 2026.
Sloane Callahan. "Climate Change Could Rewrite the Map of Iberian Oak Forests by Century’s End." Scienmag. September 30, 2026. https://scienmag.com/climate-change-could-rewrite-the-map-of-iberian-oak-forests-by-centurys-end/

