Habitat modifies the relationship between grass and herbivore species richness in a South African savanna
Status PubMed-not-MEDLINE Jazyk angličtina Země Velká Británie, Anglie Médium electronic-ecollection
Typ dokumentu časopisecké články
PubMed
38623521
PubMed Central
PMC11016939
DOI
10.1002/ece3.11167
PII: ECE311167
Knihovny.cz E-zdroje
- Klíčová slova
- dominance control, grass diversity, grassland, grazer, plant–herbivore interactions, water and nutrient availability,
- Publikační typ
- časopisecké články MeSH
The savanna ecosystem is dominated by grasses, which are a key food source for many species of grazing animals. This relationship creates a diverse mosaic of habitats and contributes to the high grass species richness of savannas. However, how grazing interacts with environmental conditions in determining grass species richness and abundance in savannas is still insufficiently understood. In the Kruger National Park, South Africa, we recorded grass species and estimated their covers in 60 plots 50 × 50 m in size, accounting for varying proximity to water and different bedrocks. To achieve this, we located plots (i) near perennial rivers, near seasonal rivers, and on crests that are distant from all water sources and (ii) on nutrient-rich basaltic and nutrient-poor granitic bedrock. The presence and abundance of large herbivores were recorded by 60 camera traps located in the same plots. Grass cover was higher at crests and seasonal rivers than at perennial rivers and on basalts than on granites. The relationship between grass species richness and herbivore abundance or species richness was positive at crests, while that between grass species richness and herbivore species richness was negative at seasonal rivers. We found no support for controlling the dominance of grasses by herbivores in crests, but herbivore-induced microsite heterogeneity may account for high grass species richness there. In contrast, the decrease in grass species richness with herbivore species richness at seasonal rivers indicates that the strong grazing pressure over-rides the resistance of some species to grazing and trampling. We suggest that the relationships between grasses and herbivores may work in both directions, but the relationship is habitat-dependent, so that in less productive environments, the effect of herbivores on vegetation prevails, while in more productive environments along rivers the effect of vegetation and water supply on herbivores is more important.
Centre for Theoretical Studies Charles University Prague Czech Republic
Czech Academy of Sciences Biology Centre Institute of Entomology České Budějovice Czech Republic
Department of Ecology Faculty of Science Charles University Prague Czech Republic
Department of Mathematical Sciences Stellenbosch University Matieland South Africa
Scientific Services South African National Parks Skukuza South Africa
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Anderson, T. M. , Ritchie, M. E. , & McNaughton, S. J. (2007). Rainfall and soils modify plant community response to grazing in Serengeti National Park. Ecology, 88, 1191–1201. 10.1890/06-0399 PubMed DOI
Archibald, S. , & Hempson, G. P. (2016). Competing consumers: Contrasting the patterns and impacts of fire and mammalian herbivory in Africa. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences, 371, 20150309. 10.1098/rstb.2015.0309 PubMed DOI PMC
Archibald, S. , Hempson, G. P. , & Lehmann, C. (2019). A unified framework for plant life‐history strategies shaped by fire and herbivory. The New Phytologist, 224, 1490–1503. 10.1111/nph.15986 PubMed DOI
Bakker, E. S. , Ritchie, M. E. , Olff, H. , Milchunas, D. G. , & Knops, J. M. H. (2006). Herbivore impact on grassland plant diversity depends on habitat productivity and herbivore size. Ecology Letters, 9, 780–788. 10.1111/j.1461-0248.2006.00925.x PubMed DOI
Bates, D. M. , Mächler, M. , Bolker, B. , & Walker, S. (2015). Fitting linear mixed‐effects models using lme4. Journal of Statistical Software, 67, 1–48. 10.18637/jss.v067.i01 DOI
Belsky, A. J. (1992). Effects of grazing, competition, disturbance and fire on species composition and diversity in grassland communities. Journal of Vegetation Science, 3, 187–200. 10.2307/3235679 DOI
Borer, E. T. , Seabloom, E. W. , Gruner, D. S. , Harpole, W. S. , Hillebrand, H. , Lind, E. M. , Adler, P. B. , Alberti, J. , Anderson, T. M. , Bakker, J. D. , Biederman, L. , Blumenthal, D. , Brown, C. S. , Brudvig, L. A. , Buckley, Y. M. , Cadotte, M. , Chu, C. , Cleland, E. E. , Crawley, M. J. , … Yang, L. H. (2014). Herbivores and nutrients control grassland plant diversity via light limitation. Nature, 508, 517–520. 10.1038/nature13144 PubMed DOI
Burkepile, D. E. , Fynn, R. W. S. , Thompson, D. I. , Lemoine, N. P. , Koerner, S. E. , Eby, S. , Hagenah, N. , Wilcox, K. R. , Collins, S. L. , Kirkman, K. P. , Knapp, A. K. , & Smith, M. D. (2017). Herbivore size matters for productivity–richness relationships in African savannas. Journal of Ecology, 105, 674–686. 10.1111/1365-2745.12714 DOI
Chaneton, E. J. , & Facelli, J. M. (1991). Disturbance effects on plant community diversity: Spatial scales and dominance hierarchies. Vegetatio, 93, 143–155. 10.1007/BF00033208 DOI
Chikorowondo, G. , Muvengwi, J. , Mbiba, M. , & Gandiwa, E. (2017). Influence of abandoned cattle enclosures on plant assemblages and herbivory in a semi‐arid savanna. Ecological Research, 32, 1023–1033. 10.1007/s11284-017-1522-8 DOI
Cumming, D. H. M. (1982). The influence of large herbivores on savanna structure in Africa. In Huntley B. J. & Walker B. H. (Eds.), Ecology of tropical savannas (pp. 217–245). Springer. 10.1007/978-3-642-68786-0_11 DOI
Díaz, S. , Lavorel, S. , McIntyre, S. , Falczuk, V. , Casanoves, F. , Milchunas, D. G. , Skarpe, C. , Rusch, G. , Sternberg, M. , Noy‐meir, I. , Landsberg, J. , Zhang, W. , Clark, H. , & Campbell, B. D. (2007). Plant trait responses to grazing – A global synthesis. Global Change Biology, 13, 313–341. 10.1111/j.1365-2486.2006.01288.x DOI
du Toit, J. T. (2003). Large herbivores and savanna heterogeneity. In du Toit J. T., Rogers K. H., & Biggs H. C. (Eds.), The Kruger experience: Ecology and management of savanna heterogeneity (pp. 292–309). Island Press.
du Toit, J. T. , Rogers, K. H. , & Biggs, H. C. (eds). (2003). The Kruger experience: Ecology and management of savanna heterogeneity. Island Press.
Dye, P. J. , & Spear, P. T. (1982). Effects of bush clearing and rainfall variability on grass yield and composition in south‐west Zimbabwe. Zimbabwe Journal of Agricultural Research, 20, 103–118.
Estes, R. D. (2012). The behavior guide to African mammals. University of California Press.
Fenetahun, Y. , Yuan, Y. , Xinwen, X. , & Yongdong, W. (2021). Effects of grazing enclosures on species diversity, phenology, biomass and carrying capacity in Borana rangeland, Southern Ethiopia. Frontiers in Ecology and Evolution, 8, 623627. 10.3389/fevo.2020.623627 DOI
Fox, J. , & Weisberg, S. (2019). An R companion to applied regression (3rd ed.). Sage. https://socialsciences.mcmaster.ca/jfox/Books/Companion/
Gertenbach, W. P. D. (1983). Landscapes of the Kruger National Park. Koedoe, 26, 9–121. 10.4102/koedoe.v26i1.591 DOI
Hejda, M. , Čuda, J. , Pyšková, K. , Zambatis, G. , Foxcroft, L. C. , MacFadyen, S. , Storch, D. , Tropek, R. , & Pyšek, P. (2022). Water availability, bedrock, disturbance by herbivores, and climate determine plant diversity in south‐African savanna. Scientific Reports, 12, 1–19. 10.1038/s41598-021-02870-3 PubMed DOI PMC
Hempson, G. P. , Archibald, S. , Bond, W. J. , Ellis, R. P. , Grant, C. C. , Kruger, F. J. , Kruger, L. M. , Moxley, C. , Owen‐Smith, N. , Peel, M. J. S. , Smit, I. P. J. , & Vickers, K. J. (2015). Ecology of grazing lawns in Africa. Biological Reviews, 90, 979–994. 10.1111/brv.12145 PubMed DOI
Hofmann, R. R. , & Stewart, D. R. M. (1972). Grazer or browser: A classification based on the stomach‐structure and feeding habits of east African ruminants. Mammalia, 36, 226–240. 10.1515/mamm.1972.36.2.226 DOI
Jacobs, S. M. , & Naiman, R. J. (2008). Large African herbivores decrease herbaceous plant biomass while increasing plant species richness in a semi‐arid savanna toposequence. Journal of Arid Environments, 72, 891–903. 10.1016/j.jaridenv.2007.11.015 DOI
Kallay, M. , & Cohen, Y. (2008). The simplest predation‐prey model. Ecological Modelling, 218, 398–399. 10.1016/j.ecolmodel.2008.07.027 DOI
Kassambara, A. (2020). ggpubr: ‘ggplot2’ Based Publication Ready Plots. R package version 0.4.0. https://CRAN.R‐project.org/package=ggpubr
Kingdon, J. , Happold, D. , Hoffmann, M. , Butynski, T. , Happold, M. , & Kalina, J. (2013). Mammals of Africa. Volume I: Introductory chapters and Afrotheria. Bloomsbury Publishing.
Kingdon, J. , & Hoffmann, M. (2013a). Mammals of Africa. Volume V: Carnivores, pangolins, equids and rhinoceroses. Bloomsbury Publishing.
Kingdon, J. , & Hoffmann, M. (2013b). Mammals of Africa. Volume VI: Pigs, hippopotamuses, chevrotain, giraffes, deer and bovids. Bloomsbury Publishing.
Koerner, S. E. , Smith, M. D. , Burkepile, D. E. , Hanan, N. P. , Avolio, M. L. , Collins, S. L. , Knapp, A. K. , Lemoine, N. P. , Forrestel, E. J. , Eby, S. , Thompson, D. I. , Aguado‐Santacruz, G. A. , Anderson, J. P. , Anderson, T. M. , Angassa, A. , Bagchi, S. , Bakker, E. S. , Bastin, G. , Baur, L. E. , … Zelikova, T. J. (2018). Change in dominance determines herbivore effects on plant biodiversity. Nature Ecology & Evolution, 2, 1925–1932. 10.1038/s41559-018-0696-y PubMed DOI
La Plante, E. , & Souza, L. (2018). Plant dominance in a sub‐alpine montane meadow: Biotic vs. abiotic controls of subordinate diversity within and across sites. PeerJ, 6, e5619. 10.7717/peerj.5619 PubMed DOI PMC
Lenth, R. (2021). emmeans: Estimated marginal means, aka least‐square means. R package version 1. 7.1‐1. https://CRAN.R‐project.org/package=emmeans
Li, J. , Zheng, Z. , Xie, H. , Zhao, N. , & Gao, Y. (2017). Increased soil nutrition and decreased light intensity drive species loss after eight years grassland enclosures. Scientific Reports, 7, 1–9. 10.1038/srep44525 PubMed DOI PMC
Malard, J. , Adamowski, J. , Nassar, J. B. , Anandaraja, N. , Tuy, H. , & Melgar‐Quiñonez, H. (2020). Theoretical criteria and empirical evaluation of functional form equations for predator‐prey systems. Ecological Modelling, 437, 109264. 10.1016/j.ecolmodel.2020.109264 DOI
McNaughton, S. J. (1984). Grazing lawns: Animals in herds, plant form, and coevolution. The American Naturalist, 124, 863–886. 10.1086/284321 DOI
Milchunas, D. G. , Sala, O. E. , & Lauenroth, W. K. (1988). A generalized model of the effects of grazing by large herbivores on grassland community structure. The American Naturalist, 132, 87–106. 10.1086/284839 DOI
Mucina, L. , & Rutherford, M. C. (2006). The vegetation of South Africa, Lesotho and Swaziland. South African National Biodiversity Institute, Pretoria, South Africa.
Mueller‐Dombois, D. , & Ellenberg, H. (1974). Aims and methods of vegetation ecology. John Wiley & Sons.
Olff, H. , & Ritchie, M. E. (1998). Effects of herbivores on grassland plant diversity. Trends in Ecology & Evolution, 13, 261–265. 10.1016/S0169-5347(98)01364-0 PubMed DOI
Olivier, R. C. D. , & Laurie, W. A. (1974). Habitat utilization by hippopotamus in the Mara River. African Journal of Ecology, 12, 249–271. 10.1111/j.1365-2028.1974.tb01036.x DOI
Owen‐Smith, N. (1997). Distinctive features of the nutritional ecology of browsing versus grazing ruminants. Zeitschrift Fur Saugetierkunde‐International Journal of Mammalian Biology, 62, 176–191.
Pinheiro, J. , Bates, D. , DebRoy, S. , Sarkar, D. , & R Core Team . (2017). nlme: Linear and Nonlinear Mixed Effects Models. R package version 3.1‐152. https://CRAN.R‐project.org/package=nlme
Proulx, M. , & Mazumder, A. (1998). Reversal of grazing impact on plant species richness in nutrient‐poor vs. nutrient‐rich ecosystems. Ecology, 79, 2581–2592. 10.1890/0012-9658(1998)079[2581:ROGIOP]2.0.CO;2 DOI
Pyšek, P. , Hejda, M. , Čuda, J. , Zambatis, G. , Pyšková, K. , MacFadyen, S. , Storch, D. , Tropek, R. , & Foxcroft, L. C. (2020). Into the great wide open: Do alien plants spread from rivers to dry savanna in the Kruger National Park? NeoBiota, 60, 61–77. 10.3897/NEOBIOTA.60.54608 DOI
R Core Team . (2022). R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna. https://www.R‐project.org/
Ritchie, M. E. , & Olff, H. (1999). Herbivore diversity and plant dynamics: Compensatory and additive effects. In Olff H., Brown V. K., & Drent R. H. (Eds.), Herbivores between plants and predators (pp. 301–332). Blackwell Science.
Scholes, R. J. (1990). The influence of soil fertility on the ecology of southern African dry savannas. Journal of Biogeography, 17, 415–419. 10.2307/2845371 DOI
Skarpe, C. (1991). Impact of grazing in savanna ecosystems. Ambio, 20, 351–356.
Šmilauer, P. , & Lepš, J. (2014). Multivariate analysis of ecological data using Canoco 5 (2nd ed.). Cambridge University Press.
Smit, I. P. J. , & Grant, C. C. (2009). Managing surface‐water in a large semi‐arid savanna park: Effects on grazer distribution patterns. Journal for Nature Conservation, 17, 61–71. 10.1016/j.jnc.2009.01.001 DOI
Staver, A. C. , & Bond, W. J. (2014). Is there a ‘browse trap’? Dynamics of herbivore impacts on trees and grasses in an African savanna. Journal of Ecology, 102, 595–602. 10.1111/1365-2745.12230 DOI
Staver, A. C. , Wigley‐Coetsee, C. , & Botha, J. (2019). Grazer movements exacerbate grass declines during drought in an African savanna. Journal of Ecology, 107, 1482–1491. 10.1111/1365-2745.13106 DOI
ter Braak, C. J. , & Šmilauer, P. (2012). Canoco reference manual and user's guide: Software for ordination, version 5.0. Microcomputer Power, Ithaca, NY, USA.
Thrash, I. (1998a). Impact of water provision on herbaceous vegetation in Kruger National Park, South Africa. Journal of Arid Environments, 38, 437–450. 10.1006/jare.1997.0318 DOI
Thrash, I. (1998b). Impact of large herbivores at artificial watering points compared to that at natural watering points in Kruger National Park, South Africa. Journal of Arid Environments, 38, 315–324. 10.1006/jare.1997.0331 DOI
Thrash, I. , Theron, G. K. , & Bothma, J. d. P. (1993). Impact of water provision on herbaceous community composition in the Kruger National Park, South Africa. African Journal of Range and Forage Science, 10, 31–35. 10.1080/10220119.1993.9638318 DOI
Todd, S. W. (2006). Gradients in vegetation cover, structure and species richness of Nama‐Karoo shrublands in relation to distance from livestock watering points. Journal of Applied Ecology, 43, 293–304. 10.1111/j.1365-2664.2006.01154.x DOI
van der Maarel, E. (1979). Transformation of cover‐abundance values in phytosociology and its effects on community similarity. Vegetatio, 38, 97–114. 10.1007/BF00052021 DOI
van Oudtshoorn, F. (2018). Guide to grasses of southern Africa (3rd ed.). Briza Publications.
Veldhuis, M. P. , Howison, R. A. , Fokkema, R. W. , Tielens, E. , & Olff, H. (2014). A novel mechanism for grazing lawn formation: Large herbivore‐induced modification of the plant–soil water balance. Journal of Ecology, 102, 1506–1517. 10.1111/1365-2745.12322 DOI
Venter, F. J. , Scholes, R. J. , & Eckhardt, H. C. (2003). The abiotic template and its associated vegetation pattern. In du Toit J. T., Rogers K. H., & Biggs H. C. (Eds.), The Kruger experience: Ecology and management of savanna heterogeneity (pp. 83–129). Island Press.
Walker, B. H. (Ed.). (1987). Determinants of tropical savannas. IRL Press.
Wickham, H. , Averick, M. , Bryan, J. , Chang, W. , McGowan, L. , François, R. , Grolemund, G. , Hayes, A. , Henry, L. , Hester, J. , Kuhn, M. , Pedersen, T. , Miller, E. , Bache, S. , Müller, K. , Ooms, J. , Robinson, D. , Seidel, D. , Spinu, V. , … Yutani, H. (2019). Welcome to the tidyverse. Journal of Open Source Software, 4, 1686. 10.21105/joss.01686 DOI
Zambatis, N. (2003). Determinants of grass production and composition in the Kruger National Park. MSc dissertation. University of KwaZulu‐Natal, Durban, South Africa.