Principles and Patterns of Bat Movements:From Aerodynamics to Ecology
- Voigt, Christian C. [ Leibniz Inst Zoo & Wildlife Res, Dept Evolutionary Ecol, D-10315 Berlin, Germany ] [ Free Univ Berlin, Inst Biol, D-14195 Berlin, Germany ]
- Frick, Winifred F. [ Bat Conservat Int, Austin, TX 78716 USA ] [ Univ Calif Santa Cruz, Ecol & Evolutionary Biol, Santa Cruz, CA 95064 USA ]
- Holderied, Marc W. [ Univ Bristol, Sch Biol Sci, Bristol BS8 1TQ, Avon, England ]
- Holland, Richard [ Bangor Univ, Sch Biol Sci, Bangor LL57 2UW, Gwynedd, Wales ]
- Kerth, Gerald [ Ernst Moritz Arndt Univ Greifswald, Appl Zool & Conservat, D-17489 Greifswald, Germany ]
- Mello, Marco A. R. [ Univ Fed Minas Gerais, Dept Gen Biol, BR-31270901 Belo Horizonte, MG, Brazil ]
- Plowright, Raina K. [ Montana State University: Microbiology & Cell Biology ]
- Swartz, Sharon [ Brown Univ, Dept Ecol & Evolutionary Biol, Providence, RI 02912 USA ] [ Brown Univ, Sch Engn, Providence, RI 02912 USA ]
- Yovel, Yossi [ Tel Aviv Univ, Dept Zool, Fac Life Sci, Tel Aviv, Israel ] [ Tel Aviv Univ, Sagol Sch Neurosci, Tel Aviv, Israel ]
Movement ecology as an integrative discipline has advanced associated fields because it presents not only a conceptual framework for understanding movement principles but also helps formulate predictions about the consequences of movements for animals and their environments. Here, we synthesize recent studies on principles and patterns of bat movements in context of the movement ecology paradigm. The motion capacity of bats is defined by their highly articulated, flexible wings. Power production during flight follows a U-shaped curve in relation to speed in bats yet, in contrast to birds, bats use mostly exogenous nutrients for sustained flight. The navigation capacity of most bats is dominated by the echolocation system, yet other sensory modalities, including an iron-based magnetic sense, may contribute to navigation depending on a bat's familiarity with the terrain. Patterns derived from these capacities relate to antagonistic and mutualistic interactions with food items. The navigation capacity of bats may influence their sociality, in particular, the extent of group foraging based on eavesdropping on conspecifics' echolocation calls. We infer that understanding the movement ecology of bats within the framework of the movement ecology paradigm provides new insights into ecological processes mediated by bats, from ecosystem services to diseases.