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arXiv · 2403.05741

The Turing Pattern Transition with the Growing Domain and Metabolic Rate Effects

Abstract

This study examines how patterns on mammal body surfaces change as they transition from juveniles to adults and with seasonal variations. Our previous research suggests that patterns formed in infancy may fade due to the growing domain effects, typically linked to the body's surface expanding as it grows, but this transition is influenced by various factors. Here, we focus on how heat, which can change with body growth, affects this process. Generally, smaller organisms lose heat more easily due to their higher surface area-to-volume ratio, while larger organisms retain heat more effectively. In fact, thermoregulation during infancy is a crucial factor directly influencing survival. We propose a theoretical model that incorporates both growing domain and metabolic rate effects to explain the mechanisms behind these pattern transitions. The model suggests that Turing patterns formed during juvenile stages disperse in adulthood due to domain growth and changes in metabolic rates affecting reaction rates. Numerical analysis shows that when both growing domain and metabolic rate effects are considered, patterns disperse more rapidly than when only growing domain effects are accounted for. Furthermore, we discuss potential correlations among pattern transitions, growth, and thermoregulation mechanisms, emphasizing the role of metabolic rates in maintaining body temperature. Our findings shed light on the intricate relationship between growth, thermoregulation, and pattern transitions in mammals, possibly useful for further research in this field.

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Shin Nishihara, Toru Ohira. 2024-03-09. The Turing Pattern Transition with the Growing Domain and Metabolic Rate Effects. https://arxiv.org/abs/2403.05741

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