Aug 2026· Evolutionary Applications· Vol 19· 1 citation· 127 references
Medicine
TL;DR
Clear genomic differentiation among regions and populations is suggested, as well as an uneven spatial distribution of adaptive alleles associated with drought and heat stress, together suggesting different degrees of local adaptation to climate across the landscape.
Abstract
Neotropical seasonally dry biomes are amongst the world's most threatened ecosystems and are predicted to lose more biodiversity with climate change. The capacity of natural populations to respond to these changes depends on their genetic variation, but is poorly understood in most Neotropical seasonally dry forest species. Here, we used genome‐wide single nucleotide polymorphism (SNP) data for 109 individuals across 12 Colombian populations of Enterolobium cyclocarpum, a widespread deciduous legume tree found in seasonally dry tropical forests, human‐disturbed and open landscapes from Central and Northern South America, to (1) explore population structure across the landscape, (2) determine local adaptation to heat and drought stress, and (3) assess genomic offset and adaptive potential under future climate change. Our results suggest clear genomic differentiation among regions and populations, as well as an uneven spatial distribution of adaptive alleles associated with drought and heat stress, together suggesting different degrees of local adaptation to climate across the landscape. Furthermore, all regions investigated (i.e., Caribbean, inter‐Andean valleys, and Orinoquía) showed limited adaptive potential under future climate change scenarios. For some regions, gene flow may help buffer the effects of environmental change by bringing in adaptive alleles, however, this will likely be insufficient to counteract predicted mal‐adaptation in certain regions, such as in the Orinoquía. Our results suggest that both barriers to gene flow (e.g., orography) and varying heat and drought stress conditions have shaped the genomic composition and adaptive potential of the species. Enterolobium cyclocarpum populations have adapted locally to current climate, but this adaptation may not be sufficient to cope with future climate change, particularly where population connectivity is low. Our findings have relevance for the conservation of species in highly threatened Neotropical biomes, such as seasonally dry tropical forests, which are expected to experience rising temperatures and greater drought under future climate change.
Tree populations can respond to climate change through migration, phenotypic plasticity, or genetic evolution. Despite long generation times of forest tree species, recent studies suggest that their evolutionary responses may occur rapidly. Using oaks as a model system, we synthesize evidence from 88 common garden stud...
J. Ramírez‐Valiente, J. Ortego, A. Kremer· bioRxiv· 0 citations
Climate change is increasing drought and heat stress in European forests, raising concerns about the capacity of long-lived tree species to respond to rapidly changing environmental conditions. While local adaptation has been documented in many forest trees, it remains unclear whether newly established seedlings, which...
Marieke Lenga, L. Opgenoorth, K. Heer et al.· bioRxiv· 0 citations
By moving beyond traditional biome‐centric approaches to sample continuously across a massive ecotone, we investigate how species richness, community composition, and dominance of woody plants change across a strong longitudinal precipitation gradient and identify thresholds in water availability that drive shift...
Pablo Salazar Zarzosa, Alexs Arana, J. Durán et al.· Journal of Biogeography· 0 citations
Abstract Seasonal climatic variability is a fundamental driver of ecological processes in tropical forests, yet its influence relative to habitat heterogeneity remains insufficiently understood for many insect groups. Butterflies are particularly responsive to environmental change and are widely recognised as sensitive...
Lilian Okumu Lukale, M. Tsingalia· Journal of Tropical Ecology· 0 citations
Simple Summary Global warming threatens native sheep breeds that have adapted to unique local climates, yet we still lack clear knowledge about how these sheep adjust at the genetic level and how well they will cope with hotter, drier weather in the future. This study collected genetic material from six types of local...
Climate change drives shifts in forest vegetation zones, and the major tree species of warm–temperate evergreen broad-leaved forests in South Korea are also expected to undergo changes in their potential distributions under future climate conditions. This study applied a Committee Averaging (CA) ensemble species distri...
Jong-Hoon Park, J. Lee, Han Doo Shin et al.· Forests· 0 citations
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