Spatial patterns of large African cats : a large-scale study on density, home range size, and home range overlap of lions Panthera leo and leopards Panthera pardus
NAms, Vilis; Parker, Dan M.; Weise, Florian Johannes; Patterson, Bruce D.; Buij, Ralph; Wageningen, P.B.; Radloff, Frans G.T.; Vanak Ashoka, Abi Tamim; Tumenta, Pricelia N.; Hayward, Matt W.; Swanepoel, Lourens H.; Funston, Paul J.; Bauer, Hans; Power, R. John; O'Brien, John; O'Brien, Timothy G.; Tambling, Craig; DeIongh, Hans H.; Ferreira, Sam M.; Owen‑Smith, Norman; Cain, James W.; Fattebert, Julien; Croes, Barbra M.; Spong, Goran F.; Loveridge, Andrew J.; Houser, Ann Marie; Golabek, Krytyna A.; Begg, Colleen M.; Grant, Tanith; Trethoman, Paul; Musyoki, Charles; Menges, Vera; Creel, Scott; Balme, Guy A.; Pitman, Ross T.; Bissett, Charlene; Jenny, David; Schuette, Paul; Wilmers, Christopher C.; Hunter, Luke T.B.; Kinnaird, Margaret F.; Begg, Keith; Owen, Cailey R.; Steyn, Villiers; Bockmuehl, Dirk; Munro, Stuart J.; Mann, Gareth K.H.; DuPreez, Byron D.; Marker, Laurie L.; Huqa, Tuqa J.; Cozzi, Gabriele; Frank, Laurence G.; Nyoni, Phumuzile; Stein, Andrew B.; Kasiki, Samuel M.; MacDonald, David W.; Martins, Quinton, E.; VanVuuren, Rudie J.; Stratford, Ken; Bidner, Laura R.; Oriol-Cotteril, Alayne; Maputla, N.W. (Nakedi Walter); Maruping-Mzileni, Nkabeng; Parker, Tim; Van't Zelfde, Maarten; Isbell, Lynne A.; Beukes, Otto B.; Beukes, Maya
Date:
2023-04
Abstract:
1. Spatial patterns of and competition for resources by territorial carnivores are
typically explained by two hypotheses: 1) the territorial defence hypothesis
and 2) the searching efficiency hypothesis.
2. According to the territorial defence hypothesis, when food resources are abundant,
carnivore densities will be high and home ranges small. In addition,
carnivores can maximise their necessary energy intake with minimal territorial
defence. At medium resource levels, larger ranges will be needed, and it will
become more economically beneficial to defend resources against a lower
density of competitors. At low resource levels, carnivore densities will be low
and home ranges large, but resources will be too scarce to make it beneficial
to defend such large territories. Thus, home range overlap will be minimal
at intermediate carnivore densities.
3. According to the searching efficiency hypothesis, there is a cost to knowing
a home range. Larger areas are harder to learn and easier to forget, so carnivores
constantly need to keep their cognitive map updated by regularly
revisiting parts of their home ranges. Consequently, when resources are scarce,
carnivores require larger home ranges to acquire sufficient food. These larger
home ranges lead to more overlap among individuals’ ranges, so that overlap in home ranges is largest when food availability is the lowest. Since conspecific
density is low when food availability is low, this hypothesis predicts that
overlap is largest when densities are the lowest.
4. We measured home range overlap and used a novel method to compare
intraspecific home range overlaps for lions Panthera leo (n = 149) and leopards
Panthera pardus (n = 111) in Africa. We estimated home range sizes
from telemetry location data and gathered carnivore density data from the
literature.
5. Our results did not support the territorial defence hypothesis for either species.
Lion prides increased their home range overlap at conspecific lower
densities whereas leopards did not. Lion pride changes in overlap were primarily
due to increases in group size at lower densities. By contrast, the
unique dispersal strategies of leopards led to reduced overlap at lower densities.
However, when human-caused
mortality was higher, leopards increased
their home range overlap. Although lions and leopards are territorial, their
territorial behaviour was less important than the acquisition of food in determining
their space use. Such information is crucial for the future conservation
of these two iconic African carnivores.
Description:
SUPPORTING INFORMATION : APPENDIX S1. Site information. APPENDIX S2. Intuitive explanation of the autocorrelated kernel density estimator. APPENDIX S3. Sources of density data. APPENDIX S4. Mathematical modifications of Jetz et al.’s (2014) overlap equation. APPENDIX S5. Lion pride size data.