0
Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Marine & Wildlife Sign in to save

Interactive effects of intrinsic and extrinsic factors on metabolic rate

Philosophical Transactions of the Royal Society B Biological Sciences 2024 27 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 55 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Douglas S. Glazier, Vojsava Gjoni

Summary

This review explores how biological factors like body size and activity level interact with environmental factors like temperature and predation to influence metabolic rate in animals. Researchers found that most of these interactions are synergistic, meaning the combined effect is greater than either factor alone, which has important implications for predicting how organisms respond to changing environments.

Metabolism energizes all biological processes, and its tempo may importantly influence the ecological success and evolutionary fitness of organisms. Therefore, understanding the broad variation in metabolic rate that exists across the living world is a fundamental challenge in biology. To further the development of a more reliable and holistic picture of the causes of this variation, we review several examples of how various intrinsic (biological) and extrinsic (environmental) factors (including body size, cell size, activity level, temperature, predation and other diverse genetic, cellular, morphological, physiological, behavioural and ecological influences) can interactively affect metabolic rate in synergistic or antagonistic ways. Most of the interactive effects that have been documented involve body size, temperature or both, but future research may reveal additional 'hub factors'. Our review highlights the complex, intimate inter-relationships between physiology and ecology, knowledge of which can shed light on various problems in both disciplines, including variation in physiological adaptations, life histories, ecological niches and various organism-environment interactions in ecosystems. We also discuss theoretical and practical implications of interactive effects on metabolic rate and provide suggestions for future research, including holistic system analyses at various hierarchical levels of organization that focus on interactive proximate (functional) and ultimate (evolutionary) causal networks. This article is part of the theme issue 'The evolutionary significance of variation in metabolic rates'.

Sign in to start a discussion.

More Papers Like This

Article Tier 2

Interactive effects of warming and microplastics on metabolism but not feeding rates of a key freshwater detritivore

Freshwater detritivores were exposed to microplastics at environmentally realistic concentrations under two temperature conditions to separate and combine effects, finding that warming and microplastics interacted to significantly increase metabolic rates but had no combined effect on feeding rates. The results highlight the importance of considering multiple stressors when assessing freshwater organism responses to microplastics under climate change.

Article Tier 2

Combined threats of climate change and contaminant exposure through the lens of bioenergetics

Researchers reviewed how chemical contaminant exposure combines with climate change to affect animal energy budgets, with a focus on Arctic wildlife exposed to pollutants like persistent organic chemicals and microplastics. They found that both stressors independently increase the energy organisms need to survive, and when combined, the effects can be additive or even multiplicative. The study suggests that animals already stressed by warming temperatures may be especially vulnerable to the additional burden of environmental contaminants.

Article Tier 2

Species Sensitivity to Toxic Substances: Evolution, Ecology and Applications

This review explores why different species vary in their sensitivity to toxic substances, examining the evolutionary and ecological factors that drive these differences. Researchers analyzed how traits like metabolic capacity, body size, and life history influence how organisms respond to chemical exposure. The study provides a framework for improving ecotoxicological predictions by better understanding the biological basis of species sensitivity.

Article Tier 2

Predicting effects of multiple interacting global change drivers across trophic levels

Researchers proposed a framework using reaction norms to predict how multiple interacting global change drivers simultaneously affect vital rates and population dynamics across trophic levels, addressing a key challenge in ecology and conservation.

Article Tier 2

Interactions of microplastics with organic, inorganic and bio-pollutants and the ecotoxicological effects on terrestrial and aquatic organisms

This review systematically examines how microplastics interact with organic pollutants, heavy metals, and biological contaminants in the environment. Researchers found that microplastics can adsorb and transport these pollutants, creating complex combinations that may be more toxic to organisms than either pollutant alone. The study highlights the risks these interactions pose to both ecosystem health and human well-being.

Share this paper