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Neurobiology and changing ecosystems: Toward understanding the impact of anthropogenic influences on neurons and circuits

Frontiers in Neural Circuits 2022 12 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 35 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Angie Michaiel, Amy Bernard

Summary

This review examines how rapid anthropogenic environmental changes -- including habitat contamination, degradation, and climate change -- affect neurobiological systems in animals, focusing on cellular and biophysical mechanisms of neurons and circuits. The authors discuss how nervous systems evolved over millions of years to detect and respond to environmental change and assess whether the unprecedented pace of current anthropogenic changes may exceed animals' adaptive neurobiological capacity.

Body Systems

Rapid anthropogenic environmental changes, including those due to habitat contamination, degradation, and climate change, have far-reaching effects on biological systems that may outpace animals' adaptive responses. Neurobiological systems mediate interactions between animals and their environments and evolved over millions of years to detect and respond to change. To gain an understanding of the adaptive capacity of nervous systems given an unprecedented pace of environmental change, mechanisms of physiology and behavior at the cellular and biophysical level must be examined. While behavioral changes resulting from anthropogenic activity are becoming increasingly described, identification and examination of the cellular, molecular, and circuit-level processes underlying those changes are profoundly underexplored. Hence, the field of neuroscience lacks predictive frameworks to describe which neurobiological systems may be resilient or vulnerable to rapidly changing ecosystems, or what modes of adaptation are represented in our natural world. In this review, we highlight examples of animal behavior modification and corresponding nervous system adaptation in response to rapid environmental change. The underlying cellular, molecular, and circuit-level component processes underlying these behaviors are not known and emphasize the unmet need for rigorous scientific enquiry into the neurobiology of changing ecosystems.

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