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Structure and spatial interactions of savanna trees along a local stress gradient in a semi-arid environment

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Abstract

Competition and facilitation vary inversely along environmental stress gradients. Here we ask how environmental stress along a slope gradient influences plant-plant interaction in a semi-arid savanna. We attempted to link spatial patterns and ecological interactions, so we analysed the spatial distribution of three Vachellia (Acacia) tree species and assessed the consequences of their interaction on plant structural variables (height, basal area, biomass and canopy cover) at Matopos Research Station, Zimbabwe. Spatial patterns among and between the tree species were assessed using both univariate and bivariate analysis. To understand the extent of tree species isolation, we applied the species mingling index. Canopy cover varied significantly between species at both ends of the stress gradient, while basal area did not differ among the three species at any slope position. The woodland showed differential recruitment levels for the three species across the catena, which may indicate future changes in composition. The mingling index showed that there was species isolation in the bottom and middle catena. Pair-wise interactions of plants reflected two common spatial patterns, clustering, interpreted as suggesting facilitation, and random, interpreted as neutral. In some cases these patterns changed with spatial scale, indicating that the stress gradient hypothesis (SGH) may be influenced by the spatial scale at which species are interacting. Our univariate analyses corroborate the evidence that plants in semi-arid environments have a clustered distribution and that catenas can produce differential recruitment levels of the different species.

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References

  • Baddeley A, Diggle PJ, Hardegen A, et al (2014) On tests of spatial pattern based on simulation envelopes. Ecol Monogr 84:477–489. https://doi.org/10.1890/13-2042.1

  • Baddeley A, Rubak E, Turner R (2015) Spatial Point Patterns Methodology and Applications with R. Chapman and Hall

  • Baldeck CA, Colgan MS, Féret JB, et al (2014) Landscape-scale variation in plant community composition of an African savanna from airborne species mapping. Ecol Appl 24:84–93. https://doi.org/10.1890/13-0307.1

  • Berdugo M, Maestre FT, Kéfi S, et al (2019) Aridity preferences alter the relative importance of abiotic and biotic drivers on plant species abundance in global drylands. J Ecol 107:190–202. https://doi.org/10.1111/1365-2745.13006

  • Bertness MD, Callaway R (1994) Positive interactions in communities. Trends Ecol Evol 9:191–193

  • Bertness MD, Shumways SW (1993) Competition and facilitation in marsh plants. Am Nat 142:718–724. https://doi.org/10.1002/anie.201508710

  • Bird MI, Veenendaal EM, Moyo C, et al (2000) Effect of fire and soil texture on soil carbon in a sub-humid savanna (Matopos, Zimbabwe). Geoderma 94:71–90. https://doi.org/10.1016/S0016-7061(99)00084-1

  • Bolker BM, Brooks ME, Clark CJ, et al (2009) Generalized linear mixed models: a practical guide for ecology and evolution. Trends Ecol. Evol. 24:127–135

  • Bond WJ, Smythe K-A, Balfour DA (2001) Acacia species turnover in space and time in an African savanna. J Biogeogr 28:117–128

  • Brown S, Gillespie AJR, Lugo AE (1989) Biomass estimation methods for tropical torests with applications to forest inventory data. For Sci 35:881–902

  • Callaway RM (1998) Competition and facilitation on elevation gradients in subalpine forests of the northern rocky mobuntains, USA. Oikos 82:561–573

  • Callaway RM (2007) Positive interactions and interdependence in plant communities. Springer, Dordrecth, The Netherlands

  • Callaway RM, Pugunaire F. (1999) Facilitation in plant communities. In: Pugnaire FI, Valladare F (eds) Handbook of functional plant ecology. Marcel Dekker, New York, pp. 623–648

    Google Scholar 

  • Callaway RM, Brooker RW, Choler P, et al (2002) Positive interactions among alpine plants increase with stress. Nature 417:844–847. https://doi.org/10.1038/nature00805.1.

  • Callaway RM, Kikodze D, Chiboshvili M, Khetsuriani L (2005) Unpalatable plants protect neighbors from grazing and increase plant community diversity. Ecology 86:1856–1862. https://doi.org/10.1890/04-0784

  • Coates Palgrave K (2002) Trees of southern Africa. New edition revised and updated by Meg Coates Palgrave. Cape T Struik 1212:118

  • Condit R, Sukumar R, Hubbell SP, Foster RB (1998) Predicting population trends from size distributions: A direct test in a tropical tree community. Am Nat 152:495–509

  • Davies AB, Baldeck CA, Asner GP (2016) Termite mounds alter the spatial distribution of African savanna tree species. J Biogeogr 43:301–313. https://doi.org/10.1111/jbi.12633

  • Dawson TE (1993) Hydraulic lift and water use by plants: implications for water balance, performance and plant-plant interactions. Oecologia 95:565–574. https://doi.org/10.1007/BF00317442

  • Dohn J, Dembélé F, Karembé M, et al (2013) Tree effects on grass growth in savannas: Competition, facilitation and the stress-gradient hypothesis. J Ecol 101:202–209. https://doi.org/10.1111/1365-2745.12010

  • Genz A, Bretz F, Miwa T, et al (2016) Multivariate normal and t distributions. R Packag. version 1.0-5 <www.r-project.org>

  • Getzin S, Worbes M, Wiegand T, Wiegand K (2011) Size dominance regulates tree spacing more than competition within height classes in tropical Cameroon. J Trop Ecol 27:93–102. https://doi.org/10.1017/S0266467410000453

  • Getzin S, Wiegand K, Wiegand T, et al (2015) Adopting a spatially explicit perspective to study the mysterious fairy circles of Namibia. Ecography (Cop) 38:1–11. https://doi.org/10.1111/ecog.00911

  • Getzin S, Yizhaq H, Bell B, et al (2016) Discovery of fairy circles in Australia supports self-organization theory. Proc Natl Acad Sci 113:3551–3556. https://doi.org/10.1073/pnas.1522130113

  • Graz PF (2004) The behaviour of the species mingling index Msp in relation to species dominance and dispersion. Eur J For Res 123:87–92. https://doi.org/10.1007/s10342-004-0016-8

  • Haase P (1995) Spatial pattern analysis in ecology based on Ripley’s K-function: Introduction and methods of edge correction. J Veg Sci 6:575–582. https://doi.org/10.2307/3236356

  • Haase P, Pugnaire FI, Clark SC, Incoll LD (1997) Spatial pattern in Anthyllis cytisoides shrubland on abandoned land in southeastern Spain . J Veg Sci 8:627–634. https://doi.org/10.2307/3237366

  • Hay ME (1986) Associational plant defenses and the maintenance of species diversity: Turning competitors into accomplices. Am Nat 128:617–641

  • He Q, Bertness MD (2014) Extreme stress, niches, and positive species interactions along stress gradinets. Ecology 95:1437–1443

  • He Q, Bertness MD, Altieri AH (2013) Global shifts towards positive species interactions with increasing environmental stress. Ecol Lett 16:695–706. https://doi.org/10.1111/ele.12080

  • Hector A, Schmid B, Beierkuhnlein C, et al (1999) Plant diversity and productivity experiments in European grasslands. Science (80- ) 286:1123–1127. https://doi.org/10.1126/science.286.5442.1123

  • Helm C V., Witkowski ETF (2012) Characterising wide spatial variation in population size structure of a keystone African savanna tree. For Ecol Manage 263:175–188. https://doi.org/10.1016/j.foreco.2011.09.024

  • Holzapfel C, Tielbörger K, Parag HA, et al (2006) Annual plant-shrub interactions along an aridity gradient. Basic Appl Ecol 7:268–279. https://doi.org/10.1016/j.baae.2005.08.003

  • Hothorn T, Bretz F, Westfall P, et al (2016) Simultaneous inference in general parametric models. R Packag. version 1.4-4 <www.r-project.org>

  • Isbell F, Craven D, Connolly J, et al (2015) Biodiversity increases the resistance of ecosystem productivity to climate extremes. Nature 526:574–577. https://doi.org/10.1038/nature15374

  • Khomo L, Hartshorn AS, Rogers KH, Chadwick OA (2011) Impact of rainfall and topography on the distribution of clays and major cations in granitic catenas of southern Africa. Catena 87:119–128. https://doi.org/10.1016/j.catena.2011.05.017

  • le Roux PC, McGeoch MA (2010) Interaction intensity and importance along two stress gradients: Adding shape to the stress-gradient hypothesis. Oecologia 162:733–745. https://doi.org/10.1007/s00442-009-1484-9

  • Liancourt P, Le Bagousse-Pinguet Y, Rixen C, Dolezal J (2017) SGH: Stress or strain gradient hypothesis? Insights from an elevation gradient on the roof of the world. Ann Bot 120:29–38. https://doi.org/10.1093/aob/mcx037

  • Loosmore NB, Ford ED, David E (2006) Statistical inference using the G or K point pattern. Ecology 87:1925–1931

  • Lortie CJ, Callaway RM (2006) Re-analysis of meta-analysis: support for the stress-gradient hypothesis. J Ecol 94:7–16. https://doi.org/10.1111/j.1365-2745.2005.01066.x

  • Maestre FT, Cortina J (2004) Do positive interactions increase with abiotic stress? A test from a semi-arid steppe. Proc R Soc B Biol Sci 271:S331–S333. https://doi.org/10.1098/rsbl.2004.0181

  • Maestre FT, Bautista S, Cortina J, Bellot J (2001) Potential for using facilitation by grasses to establish shrubs on a semiarid degraded steppe. Ecol Appl 11:1641–1655

  • Maestre FT, Butista S, Cortina J (2003) Positive, negative, and net effects in grass-shrub interactions in mediterranean semiarid grasslands. Ecology 84:3186–3197

  • Maestre FT, Valladares F, Reynolds JF (2005) Is the change of plant–plant interactions with abiotic stress predictable? A meta-analysis of field results in arid environments. J Ecol 93:748–757. https://doi.org/10.1111/j.1365-2745.2005.01017.x

  • Maestre FT, Valladares F, Reynolds JF (2006) The stress-gradient hypothesis does not fit all relationships between plant-plant interactions and abiotic stress: Further insights from arid environments. J Ecol 94:17–22. https://doi.org/10.1111/j.1365-2745.2005.01089.x

  • Maestre FT, Callaway RM, Valladares F, Lortie CJ (2009) Refining the stress-gradient hypothesis for competition and facilitation in plant communities. J Ecol 97:199–205. https://doi.org/10.1111/j.1365-2745.2008.01476.x

  • Michalet R, Brooker RW, Cavieres LA, et al (2006) Do biotic interactions shape both sides of the humped-back model of species richness in plant communities? Ecol Lett 9:767–773. https://doi.org/10.1111/j.1461-0248.2006.00935.x

  • Muvengwi J, Mbiba M, Ndagurwa HGT, Kabvuratsiye N (2016) Pulsing hydrology and topography determine the structure and spatial distribution of Cubitermes mounds in a savanna ecosystem. Catena 145:99–106. https://doi.org/10.1016/j.catena.2016.05.009

  • Muvengwi J, Ndagurwa HGT, Nyenda T, et al (2017) Spatial pattern analysis of encroaching tree species (Vachellia karroo and Vachellia nilotica) after fire suppression in a semi-arid savanna. J Trop Ecol 33:411–414. https://doi.org/10.1017/S0266467417000384

  • Muvengwi J, Mbiba M, Chikumbindi J, et al (2018) Population structure and spatial point-pattern analysis of a mono stand of Acacia polyacantha along a catena in a savanna ecosystem. For Ecol Manage 409:499–508. https://doi.org/10.1016/j.foreco.2017.11.056

  • O’Brien MJ, Pugnaire FI, Armas C, et al (2017) The shift from plant–plant facilitation to competition under severe water deficit is spatially explicit. Ecol Evol 7:2441–2448. https://doi.org/10.1002/ece3.2875

  • Pei J, Yang W, Cai Y, et al (2018) Relationship between vegetation and environment in an arid-hot valley in Southwestern China. Sustainability 10:. https://doi.org/10.3390/su10124774

  • Pennings SC, Selig ER, Houser L, Bertness MD (2003) Geographic variation in positive and negative interactions among salt marsh plants. Ecology 84:1527–1538

  • Pillay T, Ward D (2012) Spatial pattern analysis and competition between Acacia karroo trees in humid savannas. Plant Ecol 213:1609–1619. https://doi.org/10.1007/s11258-012-0115-4

  • Prieto I, Armas C, Pugnaire FI (2012) Water release through plant roots: New insights into its consequences at the plant and ecosystem level. New Phytol 193:830–841. https://doi.org/10.1111/j.1469-8137.2011.04039.x

  • Pugnaire FI., Haase P, Puigdefabregas J (1996) Facilitation between higher plant species in a semiarid environment. Ecology 77:1420–1426

  • Pugnaire FI, Armas C, Valladares F (2004) Soil as a mediator in plant-plant interactions in a semi-arid community. J Veg Sci 15:85–92

  • Rattray JM (1957) The grasses and grass associations of southern Rhodesia. Rhod Agric J 54:197–234

  • Ripley BD (1976) The second-order analysis of stationary point processes. J Appl Probab 13:255–266

  • Schimel D., Stillwell M. A., Woodmansee R. G. (1985) Biogeochemistry of C , N , and P in a soil catena of the shortgrass steppe. Ecology 66:276–282

  • Scholes RJ, Archer SR (1997) Tree-grass interactions in Savannas. Annu Rev Ecol Syst 28:517–544

  • Scholes RJ, Walker B. (1993) An African savanna: synthesis of the Nylsvley Study. Cambridge Univ. Press, Cambridge, UK:

  • Soliveres S, Maestre FT, Bowker MA, et al (2014) Functional traits determine plant co-occurrence more than environment or evolutionary relatedness in global drylands. Perspect Plant Ecol Evol Syst 16:164–173. https://doi.org/10.1016/j.ppees.2014.05.001

  • Soliveres S, Maestre FT, Ulrich W, et al (2015a) Intransitive competition is widespread in plant communities and maintains their species richness. Ecol Lett 18:790–798. https://doi.org/10.1111/ele.12456

  • Soliveres S, Smit C, Maestre FT (2015b) Moving forward on facilitation research: response to changing environments and effects on the diversity, functioning and evolution of plant communities. Biol Rev Camb Philos Soc 90:297–313. https://doi.org/10.1111/brv.12110

  • Stoyan D, Penttinen A (2000) Recent applications of point process methods in forestry statistics. Stat Sci 15:61–78. https://doi.org/10.1126/science.1193771

  • Tirado R, Bråthen KA, Pugnaire FI (2015) Mutual positive effects between shrubs in an arid ecosystem. Sci Rep 5:1–8. https://doi.org/10.1038/srep14710

  • Vadigi S, Ward D (2012) Fire and nutrient gradient effects on the sapling ecology of four Acacia species in the presence of grass competition. Plant Ecol 213:1793–1802

  • Van Wyk B, Van Wyk P (1997) Field guide to trees of Southern Africa. Struik Publishers, Cape Town, RSA

  • Velázquez E, Martínez I, Getzin S, et al (2016) An evaluation of the state of spatial point pattern analysis in ecology. Ecography (Cop) 39:1042–1055. https://doi.org/10.1111/ecog.01579

  • Venter FJ, Scholes RJ, Eckhardt HC (2003) The abiotic template and its associated vegetation pattern. In: Du Toit JT, Biggs HC, Rogers KH (eds) The Kruger experience: ecology and management of savanna heterogeneity. Island Press, Washington, pp. 81–129

  • Wiegand T, Moloney KA (2004) Rings, circles, and null models for point pattern analysis in ecology. Oikos 104:209–229. https://doi.org/10.1016/S0304-3835(04)00205-8

  • Witkowski ETF, O’Connor TG (1996) Topo-edaphic, floristic and physiognomic gradients of woody plants in a semi-arid African savanna woodland. Vegetatio 124:9–23

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Acknowledgements

We thank the management at Matopos Research Station for permission to undertake this study, and the University of the Witwatersrand, Johannesburg for funding.

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JM, HN, MM and ETFW designed the study. JM and HN collected and analysed the data. JM, HN, MM and ETFW discussed the results and wrote the paper.

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Correspondence to Justice Muvengwi.

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Muvengwi, J., Ndagurwa, H.G.T., Mbiba, M. et al. Structure and spatial interactions of savanna trees along a local stress gradient in a semi-arid environment. Folia Geobot 55, 195–209 (2020). https://doi.org/10.1007/s12224-020-09374-4

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