Literature DB >> 28604284

Thermal Performance Curves and the Metabolic Theory of Ecology-A Practical Guide to Models and Experiments for Parasitologists.

Péter K Molnár1, Jason P Sckrabulis1, Karie A Altman1, Thomas R Raffel1.   

Abstract

Climate change will affect host-parasite dynamics in complex ways. The development of forecast models is necessary for proactive disease management, but past studies have frequently reported thermal performance data in idiosyncratic ways that have limited use for parameterizing thermal host-parasite models. Development of improved forecast models will require strong collaborations between experimental parasitologists and disease modelers. The purpose of this article is to facilitate such collaborations by reviewing practical considerations for describing thermal performance curves of parasite and host performance traits, and using them to predict climate change impacts on host-parasite systems. In the first section, we provide an overview of how thermal performance curves can be embedded in life-cycle-based dynamical models of parasitism, and we outline how such models can capture the net effect of multiple nonlinear temperature dependencies affecting the host-parasite dynamics. We also discuss how macroecological generalities based on the metabolic theory of ecology (MTE) can be used to determine a priori parameter estimates for thermal performance curves to derive null models for data-deficient species, but we note that most of the generalities suggested by MTE remain to be tested for parasites. In the second section, we discuss empirical knowledge gaps for the temperature dependence of parasite and host performance traits, and we outline the types of data that need to be collected to inform MTE-based models for data-deficient species. We specifically emphasize the importance of (1) capturing the entire thermal response of performance traits, including lower and upper temperature thresholds, and (2) experimentally or statistically separating out the thermal responses of different performance traits (e.g., development and mortality) rather than only reporting composite measures (e.g., apparent development). Not adhering to these principles can lead to biased climate change impact predictions. In the third section, we provide a practical guide outlining how experimentalists can contribute to fill data gaps by measuring the temperature dependence of host and parasite performance traits in ways that are systematic, statistically rigorous, and consistent with the requirements of life cycle-based host-parasite models. This guide includes recommendations and practical examples illustrating (1) the use of perturbation analyses to determine experimental priorities, (2) experimental design tips for quantifying thermal response curves, and (3) statistical methods for estimating the parameters of thermal performance curves. Our hope is that this article helps researchers to maximize the value and use of future data collections for both empirical and modelling studies investigating the way in which temperature influences parasitism.

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Mesh:

Year:  2017        PMID: 28604284     DOI: 10.1645/16-148

Source DB:  PubMed          Journal:  J Parasitol        ISSN: 0022-3395            Impact factor:   1.276


  16 in total

1.  Temperature-mediated inhibition of a bumblebee parasite by an intestinal symbiont.

Authors:  Evan C Palmer-Young; Thomas R Raffel; Quinn S McFrederick
Journal:  Proc Biol Sci       Date:  2018-10-31       Impact factor: 5.349

2.  Experimental evidence of warming-induced disease emergence and its prediction by a trait-based mechanistic model.

Authors:  Devin Kirk; Pepijn Luijckx; Natalie Jones; Leila Krichel; Clara Pencer; Péter Molnár; Martin Krkošek
Journal:  Proc Biol Sci       Date:  2020-10-14       Impact factor: 5.349

3.  Temperature dependence of parasitic infection and gut bacterial communities in bumble bees.

Authors:  Evan C Palmer-Young; Lyna Ngor; Rodrigo Burciaga Nevarez; Jason A Rothman; Thomas R Raffel; Quinn S McFrederick
Journal:  Environ Microbiol       Date:  2019-11-04       Impact factor: 5.491

4.  Skewed temperature dependence affects range and abundance in a warming world.

Authors:  Amy Hurford; Christina A Cobbold; Péter K Molnár
Journal:  Proc Biol Sci       Date:  2019-08-07       Impact factor: 5.349

5.  Hot and sour: parasite adaptations to honeybee body temperature and pH.

Authors:  Evan C Palmer-Young; Thomas R Raffel; Jay D Evans
Journal:  Proc Biol Sci       Date:  2021-12-01       Impact factor: 5.349

Review 6.  Scaling effects of temperature on parasitism from individuals to populations.

Authors:  Devin Kirk; Mary I O'Connor; Erin A Mordecai
Journal:  J Anim Ecol       Date:  2022-08-09       Impact factor: 5.606

7.  Temperature-dependent development and freezing survival of protostrongylid nematodes of Arctic ungulates: implications for transmission.

Authors:  Pratap Kafle; Stephanie J Peacock; Sarah Grond; Karin Orsel; Susan Kutz
Journal:  Parasit Vectors       Date:  2018-07-09       Impact factor: 3.876

8.  Understanding how temperature shifts could impact infectious disease.

Authors:  Jason R Rohr; Jeremy M Cohen
Journal:  PLoS Biol       Date:  2020-11-24       Impact factor: 8.029

9.  Empirical evidence that metabolic theory describes the temperature dependency of within-host parasite dynamics.

Authors:  Devin Kirk; Natalie Jones; Stephanie Peacock; Jessica Phillips; Péter K Molnár; Martin Krkošek; Pepijn Luijckx
Journal:  PLoS Biol       Date:  2018-02-07       Impact factor: 8.029

10.  Rapid adaptation of the Irish potato famine pathogen Phytophthora infestans to changing temperature.

Authors:  E-Jiao Wu; Yan-Ping Wang; Lurwanu Yahuza; Meng-Han He; Dan-Li Sun; Yan-Mei Huang; Yu-Chan Liu; Li-Na Yang; Wen Zhu; Jiasui Zhan
Journal:  Evol Appl       Date:  2019-12-03       Impact factor: 5.183

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