Rodgers Essie M, Baldanzi Simone, Collins Michael, Dowd W Wesley, Feugere Lauric, Mottola Giovanna, Vermandele Fanny, Gomez Isaza Daniel F
School of Environmental and Conservation Sciences, College of Environmental and Life Sciences, Murdoch University, 90 South Street, Murdoch, WA 6150, Australia.
Centre for Sustainable Aquatic Ecosystems, Harry Butler Institute, Murdoch University, 90 South Street, Murdoch, WA 6150, Australia.
Conserv Physiol. 2025 Jul 30;13(1):coaf052. doi: 10.1093/conphys/coaf052. eCollection 2025.
In the Anthropocene, species are increasingly faced with multiple stressors that are more severe and less predictable than before. While multiple stressors often interact to affect organisms negatively, sometimes these interactions can be beneficial, enhancing resilience through cross-protection. Cross-protection interactions occur when exposure to one stressor, such as elevated temperature, enhances an organism's tolerance to a different stressor, like hypoxia, through shared protective mechanisms or signaling pathways. Understanding the potential for cross-protection to combat rapid and diverse environmental change is crucial for conservation, as it potentially alters the predicted consequences of such change. Here, we outline 10 key considerations for investigating cross-protection in a conservation context. These considerations include the importance of stressor intensity and timing, recognizing species-specific and sex-specific responses, and embracing temporal variability in environmental stressors. Additionally, predictions will depend upon uncovering the underlying mechanisms of cross-protection by integrating emerging approaches like omics and meta-analyses. By better understanding-and in some cases explicitly leveraging-cross-protective interactions, conservation practitioners may be able to develop more effective management plans to enhance species resilience, potentially mitigating the immediate effects of emerging stressors. These insights are vital for guiding future research directions and informing conservation policies and management practices to preserve biodiversity in the Anthropocene.
在人类世,物种越来越多地面临着比以往更严峻、更不可预测的多重压力源。虽然多重压力源常常相互作用对生物产生负面影响,但有时这些相互作用也可能是有益的,通过交叉保护增强恢复力。当暴露于一种压力源(如温度升高)通过共享的保护机制或信号通路增强生物体对另一种压力源(如缺氧)的耐受性时,就会发生交叉保护相互作用。了解交叉保护应对快速多样的环境变化的潜力对于保护工作至关重要,因为它可能会改变此类变化的预测后果。在此,我们概述了在保护背景下研究交叉保护的10个关键考量因素。这些考量因素包括压力源强度和时间的重要性、认识到物种特异性和性别特异性反应,以及考虑环境压力源的时间变异性。此外,预测将取决于通过整合组学和荟萃分析等新兴方法揭示交叉保护的潜在机制。通过更好地理解——在某些情况下明确利用——交叉保护相互作用,保护从业者或许能够制定更有效的管理计划来增强物种恢复力,有可能减轻新出现压力源的直接影响。这些见解对于指导未来研究方向以及为保护政策和管理实践提供信息以在人类世保护生物多样性至关重要。