Collembola dan Konservasi Tanah Berkelanjutan: Review atas Wawasan dari Scopus AI

H. Husamah, Abdulkadir Rahardjanto, Tutut Indria Permana

Abstract


Collembola or springtails, as an important but often overlooked component of soil biota, it plays an important role in nutrient cycles and soil stability. This article aims to analyze Collembola's role in soil health and ecosystem services, the impact of agricultural practices on their communities, sensitivity to environmental changes, and management recommendations based on Scopus AI-indexed data. The method used is a systematic literature review utilizing natural language and keyword search features from Scopus AI to gather relevant literature. The results of the study show that Collembola significantly contributes to organic matter decomposition, soil quality improvement, and erosion control. Additionally, conservation tillage practices and organic amendments have been shown to enhance Collembola species diversity. In conclusion, Collembola plays a key role in sustainable soil conservation, but further research is needed to understand the impact of climate change and agricultural practices on their ecological functions. This study also offers recommendations for more effective management strategies to support soil sustainability.


Keywords


Collembola; Conservation; Scopus AI; SDGs; Soil

Full Text:

PDF

References


Abdillah, S., I Albaladejo, J., Díaz-Pereira, E., & de Vente, J. (2021). Eco-holistic soil conservation to support land degradation neutrality and the sustainable development goals. CATENA, 196, 104823. https://doi.org/https://doi.org/10.1016/j.catena.2020.104823

Balzan, M. V, Sadula, R., & Scalvenzi, L. (2020). Assessing ecosystem services supplied by agroecosystems in Mediterranean Europe: A literature review. Land, 9(8). https://doi.org/10.3390/land9080245

Bender, S. F., & van der Heijden, M. G. A. (2015). Soil biota enhance agricultural sustainability by improving crop yield, nutrient uptake and reducing nitrogen leaching losses. Journal of Applied Ecology, 52(1), 228–239. https://doi.org/https://doi.org/10.1111/1365-2664.12351

Blouin, M., Hodson, M. E., Delgado, E. A., Baker, G., Brussaard, L., Butt, K. R., Dai, J., Dendooven, L., Peres, G., Tondoh, J. E., Cluzeau, D., & Brun, J.-J. (2013). A review of earthworm impact on soil function and ecosystem services. European Journal of Soil Science, 64(2), 161–182. https://doi.org/https://doi.org/10.1111/ejss.12025

Brennan, A., Fortune, T., & Bolger, T. (2006). Collembola abundances and assemblage structures in conventionally tilled and conservation tillage arable systems. Pedobiologia, 50(2), 135–145. https://doi.org/10.1016/j.pedobi.2005.09.004

Briones, M. J. I. (2014). Soil fauna and soil functions: A jigsaw puzzle. Frontiers in Environmental Science, 2(APR), 1–22. https://doi.org/10.3389/fenvs.2014.00007

Chang, W., Zhang, P., Li, J., Aspe, N. M., Hao, J., Lu, S., Wan, Z., & Wu, D. (2024). Impacts of millipedes on acari and collembola communities—A microcosm experiment. In Insects (Vol. 15, Issue 6). https://doi.org/10.3390/insects15060456

Chassain, J., Joimel, S., & Vieublé Gonod, L. (2023). Collembola taxonomic and functional diversity in conventional, organic and conservation cropping systems. European Journal of Soil Biology, 118. https://doi.org/10.1016/j.ejsobi.2023.103530

Collins, C., Dennehy, D., Conboy, K., & Mikalef, P. (2021). Artificial intelligence in information systems research: A systematic literature review and research agenda. International Journal of Information Management, 60, 102383. https://doi.org/https://doi.org/10.1016/j.ijinfomgt.2021.102383

Coulibaly, S. F. M., Coudrain, V., Hedde, M., Brunet, N., Mary, B., Recous, S., & Chauvat, M. (2017). Effect of different crop management practices on soil Collembola assemblages: A 4-year follow-up. Applied Soil Ecology, 119, 354–366. https://doi.org/10.1016/j.apsoil.2017.06.013

Cuartero, J., Brunner, I., Schaub, M., Gwiazdowicz, D. J., Skubała, P., Qin, J., Krogh, P. H., & Frey, B. (2025). Comparing soil microarthropod communities derived directly from soil DNA metabarcoding with those from morphological assessment in a drought-prone and irrigated pine forest. Applied Soil Ecology, 209, 106042. https://doi.org/https://doi.org/10.1016/j.apsoil.2025.106042

Culliney, T. W. (2013). Role of arthropods in maintaining soil fertility. Agriculture, 3(4), 629–659. https://doi.org/10.3390/agriculture3040629

D’Annibale, A., Labouriau, R., Sørensen, P., Krogh, P. H., Christensen, B. T., & Eriksen, J. (2019). Effect of acidified cattle slurry on a soil collembolan community: A mesocosmos study. European Journal of Soil Biology, 94. https://doi.org/10.1016/j.ejsobi.2019.103117

da Costa, A. M., Fernandes, L. F. S., Pacheco, F. A. L., & Valera, C. A. (2025). Quality indicators to subsidize soil conservation under pasture in Brazil. Land Degradation & Development, 36(7), 2385–2404. https://doi.org/https://doi.org/10.1002/ldr.5504

de Oliveira Filho, L. C. I., Zeppelini, D., Sousa, J. P., Baretta, D., & Klauberg-Filho, O. (2020). Collembola community structure under different land management in subtropical Brazil. Annals of Applied Biology, 177(3), 294–307. https://doi.org/10.1111/aab.12622

Delgado-Baquerizo, M., Eldridge, D. J., Liu, Y. R., Liu, Z. W., Coleine, C., & Trivedi, P. (2025). Soil biodiversity and function under global change. PLoS Biology, 23(3 March), 1–18. https://doi.org/10.1371/journal.pbio.3003093

Elsevier. (2024). Scopus AI: Trusted content. Powered by responsible AI. Elsevier.

ETH Zurich. (2025). Discover the new AI-powered tools by the ETH Library: Scopus AI and Scite. ETH Zurich. https://library.ethz.ch/en/news-and-courses/news/news-articles/2025/02/discover-the-new-ai-powered-tools-by-the-eth-library-scopus-ai-and-scite.html

Fahad, S., Chavan, S. B., Chichaghare, A. R., Uthappa, A. R., Kumar, M., Kakade, V., Pradhan, A., Jinger, D., Rawale, G., Yadav, D. K., Kumar, V., Farooq, T. H., Ali, B., Sawant, A. V, Saud, S., Chen, S., & Poczai, P. (2022). Agroforestry systems for soil health improvement and maintenance. Sustainability, 14(22). https://doi.org/10.3390/su142214877

Fiorentino, A., Rajput, F. Z., Di Serio, A., Baldi, V., Guarino, F., Baldantoni, D., Ronga, D., Mazzei, P., Motta, O., Falanga, M., Cicatelli, A., & Castiglione, S. (2025). Role of plants and urban soils in carbon stock: Status, modulators, and sustainable management practices. Plants, 14(4). https://doi.org/10.3390/plants14040546

Giffard, B., Winter, S., Guidoni, S., Nicolai, A., Castaldini, M., Cluzeau, D., Coll, P., Cortet, J., Le Cadre, E., d’Errico, G., Forneck, A., Gagnarli, E., Griesser, M., Guernion, M., Lagomarsino, A., Landi, S., Bissonnais, Y. Le, Mania, E., Mocali, S., … Leyer, I. (2022). Vineyard management and its impacts on soil biodiversity, functions, and ecosystem services. Frontiers in Ecology and Evolution, 10(July). https://doi.org/10.3389/fevo.2022.850272

Gonçalves, F., Carlos, C., Crespo, L., Zina, V., Oliveira, A., Salvação, J., Pereira, J. A., & Torres, L. (2021). Soil arthropods in the Douro Demarcated Region Vineyards: General characteristics and ecosystem services provided. Sustainability, 13(14). https://doi.org/10.3390/su13147837

Gruss, I., Lallaouna, R., Twardowski, J., Magiera-Dulewicz, J., & Twardowska, K. (2024). Collembola growth in heavy metal-contaminated soils. Scientific Reports, 14(1), 27998. https://doi.org/10.1038/s41598-024-79766-5

Harta, I., Simon, B., Vinogradov, S., & Winkler, D. (2021). Collembola communities and soil conditions in forest plantations established in an intensively managed agricultural area. Journal of Forestry Research, 32(5), 1819–1832. https://doi.org/10.1007/s11676-020-01238-z

Hishi, T., Kawakami, E., & Katayama, A. (2022). Changes in the abundance and species diversity of Collembola community along with dwarf bamboo density gradient in a mountainous temperate forest of Japan. Applied Soil Ecology, 180, 104606. https://doi.org/https://doi.org/10.1016/j.apsoil.2022.104606

Husamah, H. (2014). Struktur komunitas collembola tanah pada tipe habitat hutan, pertanian, dan pemukiman sepanjang daerah aliran Sungai Brantas Hulu Kota Batu sebagai bahan pengembangan buku pengayaan ekologi hewan tanah di perguruan tinggi (Issue 1). Universitas Negeri Malang.

Husamah, H., Rahardjanto, A., & Hudha, A. M. (2017). Ekologi hewan tanah. UMM Press.

Husamah, H., Rohman, F., & Sutomo, H. (2016). The community structure of Collembola in three type of habitats along the upstream Brantas River Basin of Batu City. BIOEDUKASI, 9(1), 45–50.

Joimel, S, Jules, A., & Vieublé Gonod, L. (2022). Collembola dispersion, selection, and biological interactions in urban ecosystems: a review. Environmental Chemistry Letters, 20(3), 2123–2133. https://doi.org/10.1007/s10311-022-01406-z

Joimel, Sophie, Chassain, J., Artru, M., & Faburé, J. (2022). Collembola are among the most pesticide-sensitive soil fauna groups: A meta-analysis. Environmental Toxicology and Chemistry, 41(10), 2333–2341. https://doi.org/10.1002/etc.5428

Joimel, Sophie, Schwartz, C., Bonfanti, J., Hedde, M., Krogh, P. H., Pérès, G., Pernin, C., Rakoto, A., Salmon, S., Santorufo, L., & Cortet, J. (2021). Functional and taxonomic diversity of collembola as complementary tools to assess land use effects on soils biodiversity. Frontiers in Ecology and Evolution, 9(July), 1–9. https://doi.org/10.3389/fevo.2021.630919

Korotkevich, A. Y., Kuznetsova, N. A., & Goncharov, A. A. (2024). Effect of detrital subsidy on the Collembola community structure in winter wheat agroecosystems. Applied Soil Ecology, 203, 105676. https://doi.org/https://doi.org/10.1016/j.apsoil.2024.105676

Lagendijk, D. D. G., Cueva-Arias, D., Van Oosten, A. R., & Berg, M. P. (2022). Impact of three co-occurring physical ecosystem engineers on soil Collembola communities. Oecologia, 198(4), 1085–1096. https://doi.org/10.1007/s00442-022-05152-5

LibCognizance. (2024). Elsevier Scopus AI: cutting-edge AI for improved scholarly research. LibCognizance. https://www.libcognizance.com/2024/02/elsevier-introduces-scopus-ai-advanced.html

Liu, Y., Wang, B., Wang, Y., Gao, Q., Yao, F., Wu, H., & Sun, X. (2025). Intercropping outweighs straw incorporation driving community and functional diversity of microarthropods after 5 years of tillage practices. Agriculture, Ecosystems and Environment, 377. https://doi.org/10.1016/j.agee.2024.109251

Mamabolo, E., Pryke, J. S., & Gaigher, R. (2024). Soil fauna diversity is enhanced by vegetation complexity and no-till planting in regenerative agroecosystems. Agriculture, Ecosystems and Environment, 367. https://doi.org/10.1016/j.agee.2024.108973

Mawan, A., Hartke, T. R., Deharveng, L., Zhang, F., Buchori, D., Scheu, S., & Drescher, J. (2022). Response of arboreal Collembola communities to the conversion of lowland rainforest into rubber and oil palm plantations. BMC Ecology and Evolution, 22(1), 144. https://doi.org/10.1186/s12862-022-02095-6

Natalio, A. I. M., Back, M. A., Richards, A., & Jeffery, S. (2024). Dynamics of Collembola ecomorphological groups within a no-till arable system. Agricultural and Forest Entomology. https://doi.org/10.1111/afe.12666

Neher, D. A., & Barbercheck, M. E. (2019). Soil Microarthropods and soil health: Intersection of decomposition and pest suppression in agroecosystems. Insects, 10(12). https://doi.org/10.3390/insects10120414

Pandian, K., Mustaffa, M. R. A. F., Mahalingam, G., Paramasivam, A., John Prince, A., Gajendiren, M., Rafiqi Mohammad, A. R., & Varanasi, S. T. (2024). Synergistic conservation approaches for nurturing soil, food security and human health towards sustainable development goals. Journal of Hazardous Materials Advances, 16, 100479. https://doi.org/https://doi.org/10.1016/j.hazadv.2024.100479

Pompermaier, V. T., Potapov, A. M., & Nardoto, G. B. (2022). Legacy effects of nutrient addition reduces and displaces trophic niches in Collembola communities in a Brazilian woodland savanna. Applied Soil Ecology, 177. https://doi.org/10.1016/j.apsoil.2022.104547

Potapov, A. M., Beaulieu, F., Birkhofer, K., Bluhm, S. L., Degtyarev, M. I., Devetter, M., Goncharov, A. A., Gongalsky, K. B., Klarner, B., Korobushkin, D. I., Liebke, D. F., Maraun, M., Mc Donnell, R. J., Pollierer, M. M., Schaefer, I., Shrubovych, J., Semenyuk, I. I., Sendra, A., Tuma, J., … Scheu, S. (2022). Feeding habits and multifunctional classification of soil-associated consumers from protists to vertebrates. Biological Reviews, 97(3), 1057–1117. https://doi.org/https://doi.org/10.1111/brv.12832

Preisler, A. (2024). Correctness and Quality of References generated by AI-based Research Assistant Tools: The Case of SCOPUS AI, ELICIT, SCISPACE and SCITE in the Field of Business Administration (Issue September). University of Graz.

Schröder, P. (2008). Mesofauna. In Perspectives for agroecosystem management: balancing environmental and socio-economic demands (pp. 293–306). Elsevier. https://doi.org/10.1016/B978-044451905-4.50012-X

Siddiky, M. R. K., Schaller, J., Caruso, T., & Rillig, M. C. (2012). Arbuscular mycorrhizal fungi and collembola non-additively increase soilaggregation. Soil Biology and Biochemistry, 47, 93–99. https://doi.org/10.1016/j.soilbio.2011.12.022

Sofo, A., Mininni, A. N., & Ricciuti, P. (2020). Soil macrofauna: A key factor for increasing soil fertility and promoting sustainable soil use in fruit orchard agrosystems. Agronomy, 10(4). https://doi.org/10.3390/agronomy10040456

Steffen, R. B., Antoniolli, Z. I., & Steffen, G. P. K. (2007). Native collembola reproduction in laboratory conditions. Ciencia Florestal, 17(3), 265–269. https://doi.org/10.5902/198050981958

Supriyono, Wibawa, A. P., Suyono, & Kurniawan, F. (2024). Advancements in natural language processing: Implications, challenges, and future directions. Telematics and Informatics Reports, 16, 100173. https://doi.org/https://doi.org/10.1016/j.teler.2024.100173

Telo da Gama, J. (2023). The role of soils in sustainability, climate change, and ecosystem services: Challenges and opportunities. Ecologies, 4(3), 552–567. https://doi.org/10.3390/ecologies4030036

Theißen, B., & Russell, D. J. (2009). The relevance of collembola in monitoring soil-ecological effects of GMOs. Gefahrstoffe Reinhaltung der Luft, 69(10), 391–394. https://www.scopus.com/inward/record.uri?eid=2-s2.0-77954496504&partnerID=40&md5=8870a1dda855b1c1f68765794b0e929c

Tóth, Z., Vasileiadis, V. P., & Dombos, M. (2025). An arthropod-based assessment of biological soil quality in winter wheat fields across Hungary. Agriculture, Ecosystems and Environment, 378. https://doi.org/10.1016/j.agee.2024.109325

Vanhée, B., & Devigne, C. (2018). Differences in collembola species assemblages (Arthropoda) between spoil tips and surrounding environments are dependent on vegetation development. Scientific Reports, 8(1), 18067. https://doi.org/10.1038/s41598-018-36315-1

Winter, S., Bauer, T., Strauss, P., Kratschmer, S., Paredes, D., Popescu, D., Landa, B., Guzmán, G., Gómez, J. A., Guernion, M., Zaller, J. G., & Batáry, P. (2018). Effects of vegetation management intensity on biodiversity and ecosystem services in vineyards: A meta-analysis. Journal of Applied Ecology, 55(5), 2484–2495. https://doi.org/https://doi.org/10.1111/1365-2664.13124

Xiang, Q., Chen, Q.-L., Yang, X.-R., Li, G., & Zhu, D. (2022). Soil mesofauna alter the balance between stochastic and deterministic processes in the plastisphere during microbial succession. Science of The Total Environment, 849, 157820. https://doi.org/https://doi.org/10.1016/j.scitotenv.2022.157820

Yang, X., Li, G., & Xiu, W. (2025). Responses of a soil-inhabiting collembolan (Entomobrya proxima Folsom) to organic fertilizer addition illustrated by functional traits and gut bacterial community. Frontiers in Microbiology, 16(February), 1–11. https://doi.org/10.3389/fmicb.2025.1509447

Yin, R., Gruss, I., Eisenhauer, N., Kardol, P., Thakur, M. P., Schmidt, A., Xu, Z., Siebert, J., Zhang, C., Wu, G.-L., & Schädler, M. (2019). Land use modulates the effects of climate change on density but not community composition of Collembola. Soil Biology and Biochemistry, 138. https://doi.org/10.1016/j.soilbio.2019.107598

Yu, D., Yao, J., Chen, X., Sun, J., Wei, Y., Cheng, Y., Hu, F., & Liu, M. (2022). Ecological intensification alters the trait-based responses of soil microarthropods to extreme precipitation in agroecosystem. Geoderma, 422. https://doi.org/10.1016/j.geoderma.2022.115956

Zhang, Y., Zhang, A.-J., Luo, R.-Y., & Pang, X.-Y. (2022). Response of soil Collembola to nitrogen and phosphorus deposition: A review. Chinese Journal of Applied Ecology, 33(9), 2585–2592. https://doi.org/10.13287/j.1001-9332.202209.034nayah, B., Febrianti, A. B., & Nafisa, S. (2020). Acute and Subchronic Toxicity of Momordica charantia L Fruits Ethanolic Extract in Liver and Kidney. Systematic Reviews in Pharmacy, 11(12).




DOI: https://doi.org/10.31289/jibioma.v7i1.6156

Refbacks

  • There are currently no refbacks.


Copyright (c) 2025 Jurnal Ilmiah Biologi UMA (JIBIOMA)

Fakultas Biologi
Universitas Medan Area
Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 International License