TY - JOUR
T1 - Climate change–mediated catastrophe exacerbates genomic vulnerability of a coastal cycad
AU - Chang, Jui Tse
AU - Nakamura, Koh
AU - Sun, Pei Wei
AU - Gutiérrez-Ortega, José Said
AU - Luo, Min Xin
AU - Chao, Chien Ti
AU - Ho, Shao Wei
AU - Sun, Yi
AU - Liao, Pei Chun
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/5
Y1 - 2026/5
N2 - Human-induced climate change severely threatens biodiversity, yet many studies focus on its direct effects on species maladaptation (e.g., genomic vulnerability), largely overlooking indirect impacts such as climate change-mediated catastrophic effects (CCCE). These CCCEs may be particularly profound for species susceptible to parasite attacks or habitat disturbances. We examined Cycas revoluta, a coastal species facing range-wide extirpation from two major CCCEs: sea-level rise and the recent invasion of a specialist scale insect. Using genome-wide SNP data and landscape analyses, we identified two temperature- and precipitation-structured conservation units (CUs) and assessed CCCEs on genomic vulnerability. Central Ryukyu populations (Okinawa) exhibited the highest maladaptation to future climate despite having less CCCEs. Conversely, in the northern Ryukyus, the CCCE is expected to devastate more climate-resilient populations, thereby exacerbating genomic vulnerability. Landscape analyses revealed inadequate natural genetic rescue, underscoring the need for assisted gene flow. Our findings are the first to demonstrate that overlooking indirect climate change effects biases genomic vulnerability assessments and misinforms conservation efforts. We proposed the CU-specific management for C. revoluta that accounts for threats of CCCE and emphasized the critical role of catastrophic events in evaluating genomic vulnerability for susceptible species.
AB - Human-induced climate change severely threatens biodiversity, yet many studies focus on its direct effects on species maladaptation (e.g., genomic vulnerability), largely overlooking indirect impacts such as climate change-mediated catastrophic effects (CCCE). These CCCEs may be particularly profound for species susceptible to parasite attacks or habitat disturbances. We examined Cycas revoluta, a coastal species facing range-wide extirpation from two major CCCEs: sea-level rise and the recent invasion of a specialist scale insect. Using genome-wide SNP data and landscape analyses, we identified two temperature- and precipitation-structured conservation units (CUs) and assessed CCCEs on genomic vulnerability. Central Ryukyu populations (Okinawa) exhibited the highest maladaptation to future climate despite having less CCCEs. Conversely, in the northern Ryukyus, the CCCE is expected to devastate more climate-resilient populations, thereby exacerbating genomic vulnerability. Landscape analyses revealed inadequate natural genetic rescue, underscoring the need for assisted gene flow. Our findings are the first to demonstrate that overlooking indirect climate change effects biases genomic vulnerability assessments and misinforms conservation efforts. We proposed the CU-specific management for C. revoluta that accounts for threats of CCCE and emphasized the critical role of catastrophic events in evaluating genomic vulnerability for susceptible species.
KW - Artificial bee colony
KW - Climate-smart conservation
KW - Cycad
KW - Kuroshio
KW - Pest invasion
KW - Reduced representation approach
UR - https://www.scopus.com/pages/publications/105033115070
UR - https://www.scopus.com/pages/publications/105033115070#tab=citedBy
U2 - 10.1016/j.biocon.2026.111777
DO - 10.1016/j.biocon.2026.111777
M3 - Article
AN - SCOPUS:105033115070
SN - 0006-3207
VL - 317
JO - Biological Conservation
JF - Biological Conservation
M1 - 111777
ER -