Active restoration of post-mining forest benefits the activity density, but not the diversity of spider communities across the seasons in Ghana
Authors/Creators
- 1. Brandenburg University of Technology Cottbus-Senftenberg (BTU), Cottbus, Germany
- 2. Forest Aid Ghana, Kaneshie-Accra, Ghana
- 3. Museum of Nature Hamburg – Zoology, Leibniz Institute for the Analysis of Biodiversity Change (LIB, Hamburg, Germany
- 4. Royal Museum of Central Africa, Tervuren, Belgium
Description
Forest restoration often involves monitoring programmes to determine whether biodiversity levels and ecosystem services have changed over time. This study investigated changes in ground-hunting spider communities (families Ctenidae, Lycosidae and Zodariidae) in an actively restored forest, an unrestored gravel mine, and two alternative land-use types (agroforestry system and an arable field) to assess whether a two-decade post-mine restoration programme has been successful in restoring biodiversity to levels of a reference natural forest. The overall activity density of ground-hunting spiders (based on both juveniles and adult specimens) was highest in the natural and the restored forest in the dry season and lowest in the arable field and agroforestry system in the wet season. The inverse Simpson index was highest at the gravel site in the wet season, followed by natural forest in both seasons and lower values in the restored forest. The community composition of spiders differed significantly between land-use types (open versus forest habitats) and the interaction between land use and season also differed significantly. The species Pardosa injucunda and Trochosa gentilis dominated the communities in the restored forest, but Africactenus monitor dominated the natural forest and Hogna gratiosa dominated communities in the gravel site. Surprisingly, active forest restoration promoted the activity density of ground-hunting spiders displaced by mining activities to levels even higher than in the reference natural forest after two decades. However, the community composition of the restored forest was more similar to the agroforestry system than to the natural forest. These results highlight the benefits of restoring former mining sites but also show the trade-offs in terms of restoration goals, as natural forest biodiversity of spiders was not achieved after 20 years.
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References
- Abugre S, Sackey EK (2022) Diagnosis of perception of drivers of deforestation using the partial least squares path modeling approach. Trees, Forests and People 8: 100246. https://doi.org/10.1016/j.tfp.2022.100246
- Ahmed DA, Beidas A, Petrovskii SV, Bailey JD, Bonsall MB, Hood AS, Haase P (2023) Simulating capture efficiency of pitfall traps based on sampling strategy and the movement of ground‐dwelling arthropods. Methods in Ecology and Evolution 14(11): 2827–2843. https://doi.org/10.1111/2041-210X.14174
- Anderson MJ (2008) PERMANOVA+ for PRIMER: guide to software and statistical methods. PRIMER-E: 214.
- Asare D, Ansong M, Kyereh B, Damptey FG, Asante WA (2022) Mining methods exert differential effects on species recruitment at artisanal small-scale mining sites in Ghana. Heliyon 8(5): e09434. https://doi.org/10.1016/j.heliyon.2022.e09434
- Benamu MA (2020) The importance of spider diversity in agroecosystems and the effect of pesticides. Global Journal of Ecology 5: 60–61. https://doi.org/10.17352/gje.000023
- Bentsi-Enchill F, Damptey FG, Pappoe ANM, Ekumah B, Akotoye HK (2022) Impact of anthropogenic disturbance on tree species diversity, vegetation structure and carbon storage potential in an upland evergreen forest of Ghana, West Africa. Trees, Forests and People 8: 100238. https://doi.org/10.1016/j.tfp.2022.100238
- Bidegaray-Batista L, Arnedo M, Carlozzi A, Jorge C, Pliscoff P, Postiglioni R et al. (2017) Dispersal strategies, genetic diversity, and distribution of two wolf spiders (Araneae, Lycosidae): potential bio-indicators of ecosystem health of coastal dune habitats of South America. Behaviour and ecology of spiders: Contributions from the neotropical region, 109–135. https://doi.org/10.1007/978-3-319-65717-2_5
- Birkhofer K, Bezemer TM, Hedlund K, Setälä H (2012) Community composition of soil organisms under different wheat farming systems. Microbial ecology in sustainable agroecosystems, 89–111. https://doi.org/10.1201/b12339-6
- Birkhofer K, Buxton M, Feng L, Simba L, Diekötter T (2024) Conserving insects for the provision of ecosystem services. Routledge Handbook of Insect Conservation, 53–62. https://doi.org/10.4324/9781003285793-6
- Brown HCA, Appiah M, Quansah GW, Adjei EO, Berninger F (2024) Soil carbon and bio-physicochemical properties dynamics under forest restoration sites in southern Ghana. Geoderma Regional 38: e00838. https://doi.org/10.1016/j.geodrs.2024.e00838
- Bullock JM, Aronson J, Newton AC, Pywell RF, Rey-Benayas JM (2011) Restoration of ecosystem services and biodiversity: Conflicts and opportunities. Trends in Ecology & Evolution 26(10): 541–549. https://doi.org/10.1016/j.tree.2011.06.011
- Campuzano EF, Ibarra‐Núñez G, Machkour‐M´ Rabet S, Morón‐Ríos A, Jiménez ML (2020) Diversity and seasonal variation of ground and understory spiders from a tropical mountain cloud forest. Insect Science 27(4): 826–844. https://doi.org/10.1111/1744-7917.12693
- Cardoso P, Pekar S, Birkhofer K, Chuang A, Fukushima CS, Hebets EA, Mammola S (2024) Ecosystem services provided by spiders. Authorea Preprints. https://doi.org/10.22541/au.172538631.11011603/v1
- Clarke KR, Gorley RN, Somerfield PJ, Warwick RM (2014) Change in marine communities: an approach to statistical analysis and interpretation. 3rd edn., PRIMER-E, Plymouth.
- Dankittipakul P, Jocque R, Singtripop T (2012) Systematics and biogeography of the spider genus Mallinella Strand, 1906, with descriptions of new species and new genera from Southeast Asia (Araneae, Zodariidae). Zootaxa 3369(1): 1–327. https://doi.org/10.11646/zootaxa.3369.1.1
- Damptey FG, Birkhofer K, Nsiah PK, de la Riva EG (2020) Soil properties and biomass attributes in a former gravel mine area after two decades of forest restoration. Land 9(6): 209. https://doi.org/10.3390/land9060209
- Damptey FG, de la Riva EG, Birkhofer K (2021) Trade-offs and synergies between food and fodder production and other ecosystem services in an actively restored forest, natural forest and an agroforestry system in Ghana. Frontiers in Forests and Global Change 4: 630959. https://doi.org/10.3389/ffgc.2021.630959
- Damptey FG, Djoudi EA, Birkhofer K (2023) Effects of post-mining forest restoration and alternative land uses on ground-dwelling arthropods in Ghana. Community Ecology 24(2): 215–228. https://doi.org/10.1007/s42974-023-00144-8
- Dippenaar-Schoeman AS, Jocqué R (1997) African spiders: an identification manual. Pretoria: ARC-Plant Protection Research Institute.
- Dippenaar-Schoeman AS, Van den Berg AM, Van den Berg MA, Foord SH (2005) Spiders in avocado orchards in the Mpumalanga Lowveld of South Africa: species diversity and abundance (Arachnida: Araneae). African Plant Protection 11: 8–16.
- FAO and UNEP (2020) The State of the World's Forests 2020. The State of the World's Forests 2020. https://doi.org/10.4060/ca8642en
- Fitzgerald M, Nackoney J, Potapov P, Turubanova S (2021) Agriculture is the primary driver of tree cover loss across the Forestière region of the Republic of Guinea, Africa. Environmental Research Communications 3(12): 121004. https://doi.org/10.1088/2515-7620/ac4278
- Foord SH, Mafadza MM, Dippenaar-Schoeman AS, Van Rensburg BJ (2008) Micro-scale heterogeneity of spiders (Arachnida: Araneae) in the Soutpansberg, South Africa: a comparative survey and inventory in representative habitats. African Zoology 43(2): 156–174. https://doi.org/10.3377/1562-7020-43.2.156
- Foord SH, Dippenaar-Schoeman AS, Haddad CR, Lyle R, Lotz LN, Sethusa T, Raimondo D (2020) The South African National Red List of spiders: Patterns, threats, and conservation. The Journal of Arachnology 48(2): 110–118. https://doi.org/10.1636/0161-8202-48.2.110
- Frenzel T, Rischen T, Fischer K (2022) Humid grassland fallows promote spider diversity in a traditionally managed landscape. Basic and Applied Ecology 63: 59–70. https://doi.org/10.1016/j.baae.2022.05.007
- Hansen MC, Stehman SV, Potapov PV (2010) Quantification of global gross forest cover loss. Proceedings of the National Academy of Sciences of the United States of America 107(19): 8650–8655. https://doi.org/10.1073/pnas.0912668107
- Henrard A, Jocqué R (2017) Morphological and molecular evidence for new genera in the Afrotropical Cteninae (Araneae, Ctenidae) complex. Zoological Journal of the Linnean Society 180: 82–154. https://doi.org/10.1111/zoj.12461
- Jocqué R (1993) We'll meet again, an expression remarkably applicable to the historical biogeography of Australian Zodariidae. Memoirs of the Queensland Museum 33: 561–564.
- Jocqué R, Alderweireldt M (2006) Lycosidae: The grassland spiders. Acta Zoologica Bulgarica (Suppl. 1): 125–130.
- Jocqué R, Samu F, Bird T (2005) Density of spiders (Araneae: Ctenidae) in Ivory Coast rainforests. Journal of Zoology 266(1): 105–110. https://doi.org/10.1017/S0952836905006746
- Joseph GS, Mauda EV, Seymour CL, Munyai TC, Dippenaar-Schoeman A, Foord SH (2018) Landuse change in savannas disproportionately reduces functional diversity of invertebrate predators at the highest trophic levels: Spiders as an example. Ecosystems 21(5): 930–942. https://doi.org/10.1007/s10021-017-0194-0
- Juakaly MJL, Jocqué R (2021) Resilience of epigeal spiders (Araneae) after clear-felling for agriculture in a Central African rainforest. Arachnology 18(8): 849–858. https://doi.org/10.13156/arac.2021.18.8.849
- La Flor YA, Perry KI, Collis LM, Phelan PL, Gardiner MM (2024) Biotic and abiotic factors drive multi-trophic interactions among spiders at different spatial scales in urban greenspaces. Journal of Urban Ecology 10: juae008. https://doi.org/10.1093/jue/juae008
- Keylock C (2005) Simpson diversity and the Shannon–Wiener index as special cases of a generalized entropy. Oikos 109(1): 203–207. https://doi.org/10.1111/j.0030-1299.2005.13735.x
- Kumi S, Nsiah PK, Ahiabu HK, Sackey E (2024) Barriers and opportunities in effective management of forest landscape restoration: Tain II degraded forest restoration, Ghana. Trees, Forests and People 15: 100483. https://doi.org/10.1016/j.tfp.2023.100483
- Kyerematen R, Adu-Acheampong S, Acquah-Lamptey D, Anderson RS (2020) Using Orthoptera and Hymenoptera indicator groups as evidence of degradation in a mining concession (Tarkwa gold mine) in Ghana. International Journal of Tropical Insect Science 40(1): 221–224. https://doi.org/10.1007/s42690-019-00053-2
- Liu L, Fu D, Luo Y (2024) Grassland expansions promoted global diversification of the Pardosa wolf spiders during the late Cenozoic (Araneae, Lycosidae). Zoosystematics and Evolution 100(4): 1287–1296. https://doi.org/10.3897/zse.100.128885
- Marc P, Canard A, Ysnel F (1999) Spiders (Araneae) useful for pest limitation and bioindication. Agriculture, Ecosystems & Environment 74(1–3): 229–273. https://doi.org/10.1016/S0167-8809(99)00038-9
- Masolele RN, Marcos D, De Sy V, Abu IO, Verbesselt J, Reiche J, Herold M (2024) Mapping the diversity of land uses following deforestation across Africa. Scientific Reports 14(1): 1681. https://doi.org/10.1038/s41598-024-52138-9
- Menéndez-Acuña M, Salas-Rodríguez M, Montiel-Parra G, Sotuyo S, Rosas-Echeverría MV (2023) Seasonality and Long-Term Effect of Environmental Variables on the Orb Weaver Spider Community of a Tropical Dry Forest in the Balsas Basin, Mexico. Diversity 15(3): 466. https://doi.org/10.3390/d15030466
- Müller J, Brandl R, Cadotte MW, Heibl C, Bässler C, Weiß I, Seibold S (2022) A replicated study on the response of spider assemblages to regional and local processes. Ecological Monographs 92(3): e1511. https://doi.org/10.1002/ecm.1511
- Nero BF (2021) Structure, composition and diversity of restored forest ecosystems on mine-spoils in South-Western Ghana. PLoS ONE 16(6): e0252371. https://doi.org/10.1371/journal.pone.0252371
- Nyffeler M, Birkhofer K (2017) An estimated 400–800 million tons of prey are annually killed by the global spider community. Naturwissenschaften 104(3–4): 1–12. https://doi.org/10.1007/s00114-017-1440-1
- Nzigidahera B, Desnyder W, Jocqué R (2011) An overview of the Afrotropical species of Mallinella (Araneae, Zodariidae) with the description of a remarkable new species from Burundi. Journal of Afrotropical Zoology 7: 19–27.
- Ong SQ, Hamid SA (2022) Next generation insect taxonomic classification by comparing different deep learning algorithms. PLoS ONE 17(12): e0279094. https://doi.org/10.1371/journal.pone.0279094
- Potapov AM, Beaulieu F, Birkhofer K, Bluhm SL, Degtyarev MI, Devetter M, Scheu S (2022) Feeding habits and multifunctional classification of soil‐associated consumers from protists to vertebrates. Biological Reviews of the Cambridge Philosophical Society 97(3): 1057–1117. https://doi.org/10.1111/brv.12832
- Quijano Cuervo L, Martínez-Hernández N, Sabogal-González A (2017) Temporal variation of the abundance and some population aspects of Micrathena species (Araneae: Araneidae) in a Dry Tropical Forest (DTF) from Colombian Caribbean. Ecología Austral 27(02): 99–311. https://doi.org/10.25260/EA.17.27.2.0.112
- Ritchie H, Spooner F, Roser M (2021) Forests and Deforestation. OurWorldinData.org. https://ourworldindata.org/forests-and-deforestation [Online Resource]
- Roewer CF (1959) Araneae Lycosaeformia II (Lycosidae)(Fortsetzung und Schluss). Explor. Parc natn. Upemba Miss. 55: 519–1040.
- Schirmel J, Thiele J, Entling MH, Buchholz S (2016) Trait composition and functional diversity of spiders and carabids in linear landscape elements. Agriculture, Ecosystems & Environment 235: 318–328. https://doi.org/10.1016/j.agee.2016.10.028
- Schowalter T (2017) Arthropod diversity and functional importance in old-growth forests of North America. Forests 8(4): 97. https://doi.org/10.3390/f8040097
- Somerfield PJ, Clarke KR (2013) Inverse analysis in non-parametric multivariate analyses: Distinguishing groups of associated species which covary coherently across samples. Journal of Experimental Marine Biology and Ecology 449: 261–273. https://doi.org/10.1016/j.jembe.2013.10.002
- Spears L (2012) Spider community composition and structure in a shrub-steppe ecosystem: the effects of prey availability and shrub architecture. All Graduate Theses and Dissertations, 1207. https://doi.org/10.26076/f608-744f
- Steyn TL, Van der Donckt JF, Jocqué R (2003) The Ctenidae (Araneae) of the rainforests in eastern Côte d'Ivoire. Annls. Mus. R. Afr. centr. (Zool. ) 290: 129–166.
- Sudhikumar AV, Mathew MJ, Sunish E, Murugesan S, Sebastian PA (2005) Preliminary studies on the spider fauna in Mannavan shola forest, Kerala, India (Araneae). European Arachnology (Supplement 1): 319–327.
- Thorbek P, Bilde T (2004) Reduced numbers of generalist arthropod predators after crop management. Journal of Applied Ecology 41(3): 526–538. https://doi.org/10.1111/j.0021-8901.2004.00913.x
- Underwood EC, Quinn JF (2010) Response of ants and spiders to prescribed fire in oak woodlands of California. Journal of Insect Conservation 14(4): 359–366. https://doi.org/10.1007/s10841-010-9265-7
- Vymazalová P, Košulič O, Hamřík T, Šipoš J, Hédl R (2021) Positive impact of traditional coppicing restoration on biodiversity of ground-dwelling spiders in a protected lowland forest. Forest Ecology and Management 490: 119084. https://doi.org/10.1016/j.foreco.2021.119084
- Weeks Jr RD, Holtzer TO (2000) Habitat and season in structuring ground-dwelling spider (Araneae) communities in a shortgrass steppe ecosystem. Environmental Entomology 29(6): 1164–1172. https://doi.org/10.1603/0046-225X-29.6.1164
- World Bank Group (2020) Annual Report 2020: Angola, Nigeria, and South Africa. World Bank Group, Washington, DC, 2020. www.worldbank.org
- Zapata W, Vergara-Moreno D, Carrillo-Pallares M, Segovia-Paccini A, Navas SGR, Malumbres-Olarte J (2023) Seasonal diversity of spider assemblages (Araneae: Arachnida) in the "Guillermo Piñeres" Botanical Garden, Turbaco–Colombia. Neotropical Biodiversity 9(1): 17–28. https://doi.org/10.1080/23766808.2022.2157948
- Ziesche TM, Roth M (2008) Influence of environmental parameters on small-scale distribution of soil-dwelling spiders in forests: What makes the difference, tree species or microhabitat? Forest Ecology and Management 255(3–4): 738–752. https://doi.org/10.1016/j.foreco.2007.09.060