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Fungi population and soil chemical and physical properties across different vegetation stands in andisols soil profiles

Year 2025, Volume: 14 Issue: 4, 345 - 358, 01.10.2025
https://doi.org/10.18393/ejss.1750278

Abstract

Knowledge about the forest stands and upland farming affect soil biological, physical, and chemical properties is crucial for land management. This research was to evaluate the relationship of fungi population and soil physical and chemical properties across different vegetation stands in Andisols soil profiles. Soil sampling was conducted on Mount Merbabu National Park (puspa (Schima noronhae Theaceae) and pine (Pinus merkusii Pinaceae)) and upland farming. Each stands was made a pedon with 3 replications, and each pedon was sampled at soil profile depths 0-100 cm (0-10, 10-20, 20-30, 30-50, 50-70, and 70-100 cm) so 54 soil samples were obtained. The soil samples were then analyzed: fungi population by the Spread Plate Count method, soil pH by pH meter, soil organic matter (SOM) by Walkley and Black method, soil moisture by gravimetric method, and soil porosity by estimating from bulk density and particle density values. The results showed that puspa had the highest means fungi population, SOM, and soil moisture which were significantly different from pine and upland farming; the highest fungi population and SOM content in each stands was produced in the top layer (0-10 cm) and decreases with increasing soil depth; the lowest soil moisture was obtained in the top layer and increases with increasing soil depth; and fungi population had a highly significant relationship with SOM and soil moisture in puspa (r = 0.809** and r = -0.591**), pine (r = 0.894** and r = -0.746**), and upland farming (r = 0.624** and r = -0.604**). Puspa had the highest fungi population, SOM, and soil moisture compared to other stands types, so that puspa can be recommended as a good type of revegetation plant for forest ecosystem conservation.

References

  • Abdallah, R.A.B., Khiareddine, H.J., Nefzi, A., Ayed, F., Remadi, M.D., 2019. Field suppression of Fusarium wilt and microbial population shifts in tomato rhizosphere following soil treatment with two selected endophytic bacteria. Eurasian Journal of Soil Science 8(3): 208-220.
  • Abdila, A., Japarang, N., Agustin, N., Hafni, W., Annisi, A. D., Karim, H., Azis, A.A., Junda, M., Jumadi, O., 2022. Soil microorganism population in corn fields upon application of polyacrylate fertilizers. Indonesian Journal of Agricultural Sciences 27(1): 8-21.
  • Alfaro, F.D., Manzano, M., Marquet, P.A., Gaxiola, A., 2017. Microbial communities in soil chronosequences with distinct parent material: the effect of soil pH and litter quality. Journal of Ecology 105(6): 1709-1722.
  • Alfiyah, F., Nugroho, Y., Rudy, G.S. 2020. The effect of slope classes and land cover on soil solum, effective root depth, and soil pH. Jurnal Sylva Scienteae 3(3): 499–508. [in Indonesian].
  • Alsabhan, A., Perveen, K., Alwadi, A., 2021. Heavy metal content and microbial population in the soil of Riyadh region, Saudi Arabia. Journal of King Saud University – Science 34(1): 101671.
  • Aminudin, Y., Lestari, P., Prasetyo, E., Utomo, S., 2021. The abundance of soil macrofauna on the Mount Merapi post-eruption in Mount Merapi National Park area. Gorontalo Journal of Forestry Research 4(2): 98-112. [in Indonesian].
  • Anggraeni, R., Mahrup, M., Kusnarta, I. G. M., Silawibawa, P., 2022. Variation of soil moisture and temperature regime in land with low cloud cover based on Terra Modis Map in Lombok Island. Journal of Soil Quality and Management 1(1): 7-15.
  • Annisa, D.W., Prijono, S., 2023. Analysis of hydraulic conductivity of saturated soil on various shade types in smallholder Sumbermanjing Wetan District. Journal of Soil and Land Resources 10(1): 15-23. [in Indonesian].
  • Aslani, F., Geisen, S., Ning. D., Tedersoo, L., Bahram, M., 2022. Towards revealing the global diversity and community assembly of soil eukaryotes. Ecology Letters 25: 65–76.
  • Balittanah, 2009. Technical Manual for Soil, Plant, Water, and Fertilizer Chemical Analysis. 2nd Edition. Soil Research Center. Bogor, Indonesia.
  • Baso, M.S.G., Hasanah, U., Monde, A., 2014. Variability of soil physical properties and C organic in forest land and cocoa plantation (Theobroma cacao L.) in Sejahtera Village, Palolo Sub-district, Sigi Regency. E-Journal Agrotekbis 2(6): 565–572. [in Indonesian].
  • Benu, M.M.M., Adutae, A.S., Mukkun, L., 2020. Impact of pesticide residues on the diversity of soil fungi on vegetable land. Journal of Soil Science and Environment 22(2): 80-88. [in Indonesian].
  • Bidkhani, N.O.G., Mobasheri, M.R., 2018. Influence of soil texture on the estimation of bare soil moisture content using MODIS images. European Journal of Remote Sensing 51(1): 911-920.
  • BPS-Statistics Indonesia., 2021. Regional statistics of Selo District 2021. BPS-Statistics Indonesia, Boyolali, Indonesia.
  • Brady, N.C., Weil, R.R., 2008. An introduction to the nature and properties of soil. 14th edition, Prentice Hall. Upper Saddle River, NJ. 1089 pp.
  • Brogowski, Z., Kwasowski, W., Madyniak, R., 2014. Calculating particle density, bulk density, and total porosity of soil based on its texture. Soil Science Annual 65(4): 139–149.
  • Brooks, K.N., Ffolliott, P.F., Magner, J.A., 2012. Hydrology and the Management of Watersheds. John Wiley & Sons. 533p.
  • Castano, C., Lindahl, B.D., Alday, J.G., Hagenbo, A., de Aragón, J.M., Parladé, J., Pera, J., Bonet, J.A., 2018. Soil microclimate changes affect soil fungal communities in a Mediterranean pine forest. New Phytologist 220(4): 1211-1221.
  • Chandra, O.T., 2005. Comparative study of saturated hydraulics conductivity measurement in irrigated rice field plants. Journal of Pedon Tropica 1(2): 20-27.
  • Chauhan, S., Ganure, P., Dandin, C.J., 2022. Impact of abiotic conditions on fungal diversity and comparative analysis of soil quality of two distinct locations. bioRxiv, 2022-09.
  • Che, L., Cheng, M., Xing, L., Cui, Y., Wan, L., 2021. Effects of permafrost degradation on soil organic matter turnover and plant growth. Catena 208(3): 105721.
  • Chen, X., Wang, Y., Wang, Y., Zhang, Y., Shen, Y., He, X., Xiao, C., 2023. A natural moisture gradient affects soil fungal communities on the South Shore of Hulun Lake, Inner Mongolia, China. Journal of Fungi 9(5): 549.
  • Choudhary, M., Datta, A., Jat, H.S., Yadav, A.K., Gathala, M.K., Sapkota, T.B., Das, A.K., Sharma, P.C., Jat, M.L., Singh, R., Ladha, J.K., 2018. Changes in soil biology under conservation agriculture based sustainable intensification of cereal systems in Indo-Gangetic Plains. Geoderma 313:193−204.
  • da Silva, J.A.T., Karimi, J., Mohsenzadeh, S., Dobranszki, J., 2015. Allelopathic potential of select gymnospermous trees. Journal of Forest and Environmental Science 31(2): 109-118.
  • El Mouridi, Z., Ziri, R., Douaik, A., Bennani, S., Lembaid, I., Bouharou, L., Brhadda, N., Moussadek, R., 2023. Comparison between Walkley-Black and Loss on Ignition methods for organic matter estimation in different Moroccan Soils. Ecological Engineering & Environmental Technology 24(4): 253-259.
  • Emalinda, O., Monica, Q. J., Rasydin, A., Darfis, I., 2024. Study of soil biochemical properties on several slope classes in tea plantations (Camellia sinensis) people's Kenagarian Batang Barus District Gunung Talang. In Proceedings of the National Seminar on Agriculture 1: 206-214.
  • Engel, A., Simler-Williamson, A., Ravenscraft, A., Bittleston, L., de Graaff, M.A., 2024. Interactive efects of fungal community structure and soil moisture on Wyoming big sagebrush performance. Plant and Soil 508: 417-439.
  • Fadillah, N., Utomo, M., Afrianti, N.A., Sarno, S., 2022. Changes in soil chemical properties in soil profile due to the application of long-term N clearance system and fertilization on corn (Zea mays L.) plantations in Lampung State Polytechnic Experimental Garden. Journal of Agrotech Tropica 10(4): 627-632. [in Indonesian].
  • Fitriyani, I.H., Hazra, F., Rosita, D., 2023a. Correlation analysis of soil biological and chemical properties in several types land use in Bogor Regency. Journal of Soil and Land Resources 10(1): 119-123. [in Indonesian].
  • Fitriyani, I.H., Widyastuti, R., Yusuf, S.M., Wulandari, A.P., 2023b. Correlation analysis of soil biological, chemical, physical properties at various altitudes in Bandung, West Java. Journal of Soil Science and Environment 25(2): 64-70. [in Indonesian].
  • Gacura, M.D., Zak, D.R., Blackwood, C.B., 2024. From individual leaves to forest stands: importance of niche, distance decay, and stochasticity vary by ecosystem type and functional group for fungal community composition. FEMS Microbiology Ecology 100(3): fiae016.
  • Gao, L., Lei, B., Yu, Q., Nie, Y., Su, A., Zang M., Cai, S., Zhang, W., Fang, T., Yu, Y., 2024. Differential response patterns of soil fungal and bacterial communities to typical vegetation types in the Yellow River floodplain ecosystem. Journal of Freshwater Ecology 39(1): 2338571.
  • Gou, Z., Zhai, Z., Zhang, Q., Li, Y., Feng, X., Zhang, Y., Zhao, X., Ding, M., 2024. Characteristics of organic carbon in tobacco-growing soils with different pH. Bangladesh Journal of Botany 53(3): 745-755. Gunina, A., Kuzyakov, Y., 2021. From energy to (soil organic) matter. Global Change Biology 28(1): 2169-2182.
  • Han, W.J., Wang, G.M., Liu, J.L., Ni, J., 2021. Effects of vegetation type, season, and soil properties on soil microbial community in subtropical forests. Applied Soil Ecology 158: 103813.
  • Hawkes, C.V., Kivlin, S.N., Rocca, J.D., Huguet, V., Thomsen, M.A., Suttle, K.B., 2011. Fungal community responses to precipitation. Global Change Biology 17(4): 1637-1645.
  • Henny, H., Hasriati, N., Ridwan, M., 2023. Andisol soil properties and feasibility of potato farming with tractor tillage and organic fertilizer in Kerinci Regency. Journal of Tropical Agricultural Engineering and Biosystems 11: 63-72.
  • Hidayat, R., Abdullah, U. H., Wilis, R., Farida, N., 2023. Correlation between biomass C potential and soil quality index in different types of dry land use in Aceh Besar District. Nusantara Journal of Community Service 4(3): 1725-1730. [in Indonesian].
  • Hu, L., Wang, X., Song, X., Dai, D., Ding, L., Degen, A. A., Wang, C., 2023. Vertical patterns of soil bacterial and fungal communities along a soil depth gradient in a natural picea crassifolia forest in Qinghai Province, China. Forests 14(5): 1016.
  • Huang, C., He, Y., Zhou, L., Liu, R., Chen, H., Du, Z., Fu, Y., Zhu, Y., Zhou, Y., Wu, C., Zhou, X., 2024. Opposite effects of soil pH on bacteria and fungi β diversity in forests at a continental scale. Journal of Environmental Management 370, 122428.
  • Indrajaya, Y., Handayani, W., 2008. Potency of Merkus Pine (Pinus merkusii Jungh. et de Vriese) forest as landslide control in Java. Forest Info 5(3): 231-240. [in Indonesian].
  • Jaramillo, D.F.J., 2014. El suelo: origen, propiedades, espacialidad. Universidad Nacional de Colombia, Sede Medellín, Facultad de Ciencias, Escuela de Geociencias. 555p.
  • Koebernick, N., Daly, K. R., Keyes, S. D., George, T. S., Brown, L. K., Raffan, A., Cooper, L.J., Naved, M., Bengough, A.G., Sinclair, I., Hallett, P.D., Roose, T., 2017 High‐resolution synchrotron imaging shows that root hairs influence rhizosphere soil structure formation. New Phytologist 216(1): 124-135.
  • Kopecký, M., Peterka, J., Kolář, L., Konvalina, P., Maroušek, J., Váchalová, R., Herout, M., Strunecký, O., Batt, J., Tran, D.K., 2021. Influence of selected maize cultivation technologies on changes in the labile fraction of soil organic matter sandy-loam cambisol soil structure. Soil and Tillage Research 207: 104865.
  • Kravchenko, A., Falconer, R.E., Grinev, D.V., Otten, W., 2011. Fungal colonization in soils with different management histories: modeling growth in three-dimensional pore volumes. Ecological Applications 21(4): 1202–1210.
  • Lestari, I.D., 2023. Identification of macroscopic fungi species diversity in Liang Bukal Forest Area, Upper Moyo, Sumbawa. Journal of Education 7(2): 8-18. [in Indonesian].
  • Lin, W.R., Wang, P.H., Chen, W.C., Lai, C.M., Winder, R.S., 2016. Responses of soil fungal populations and communities to the thinning of Cryptomeria Japonica Forests. Microbes and Environments 31(1): 19–26.
  • Lubis, V.N., Rauf, A., Bintang., 2016. The characteristics of soil physics for various standing crops in Petani Watershed Deli Serdang Regency North Sumatera. Journal of Agrotechnology 4(3): 2048-2054. [in Indonesian].
  • Maturin, L., Peeler, J.T., 2001. Bacteriological Analytical Manual, Chapter 3: Aerobic Plate Count. FDA, USA. Available at [Access date: : 10.12.2024]: https://www.fda.gov/media/178943/download?attachment
  • Mayer, M., Prescott, C. E., Abaker, W.E.A., Augusto, L., Cécillon, L., Ferreira, G.W.D., James, J., Jandl, R., Katzensteiner, K., Laclau, J.P., Laganière, J., Nouvellon, Y., Paré, D., Stanturf, J.A., Vanguelova, E.I., Vesterdal, L., 2020. Influence of forest management activities on soil organic carbon stocks: A knowledge synthesis. Forest Ecology and Management 466: 118127.
  • Mezzatesta, D., Oyuela, A. M., Gobbi, A., Pistorio, M., Hestbjerg, H. L., Buscema, F., Píccoli, P., Berli, F., 2024. Soil-associated fungal and prokaryotic diversity influenced by stoniness, depth and vintage in a high-altitude vineyard. OENO One 58(4): 1-12.
  • Morgan, R.P.C., 2005. Soil Erosion and Conservation. 3rd edition. Blackwell Publishing, Oxford. 304p.
  • Muchane, M.N., Sileshi, G.W., Gripenberg, S., Jonsson, M., Pumariño, L., Barrios, E., 2020. Agroforestry boosts soil health in the humid and sub-humid tropics: A Meta-Analysis. Agriculture, Ecosystems & Environment 295: 106899.
  • Mukrin, M., Yusran, Y., Toknok, B., 2019. Soil fungi and bacteria population in agroforestry and mixed farms in Ngata Katuvua Dongi-Dongi Sub-District Palolo District Sigi Central Sulawesi Province. Journal of Forest Sains 16(2): 77-84. [in Indonesian].
  • Mulyani, S., Zahrah, S., Sulhaswardi, S., 2021. Analysis of the texture, nutrients contents, and total of microbial soil post gold mining area (PETI) from some sub-districts in Kuantan Singingi District. Journal of Agrotechnology 11(2): 67-74. [in Indonesian].
  • Mundra, S., Kjonaas, O.J., Margado, L.N., Krabberod, A.K., Ransedokken, Y., Kauserud, H., 2021. Soil depthmatters: shift in composition andinter-kingdom co-occurrence patternsof microorganisms in forest soils. FEMS Microbiology Ecology 97(3): fiab022.
  • Nadal-Romero, E., Otal-Laín, I., Lasanta, T., Sánchez-Navarrete, P., Errea, P., Cammeraat, E., 2018. Woody encroachment and soil carbon stocks in subalpine areas in the Central Spanish Pyrenees. Science of the Total Environment 636: 727–736.
  • Nelson, D.W., Sommers, L.E., 1996. Total carbon organic carbon and organic matter. In: Methods of Soil Analysis: Part 3 Chemical Methods, 5.3. Sparks, D.L. Page, A.L., Helmke, P.A., Loeppert, R.H., Soltanpour, P.N., Tabatabai, M.A., Johnston, C.T., Sumner, M.E. (Eds.). SSSA Book Series No. 5. ASA-SSSA Madison WI, USA, pp. 961–1010.
  • Nita, C.E., Bambang, S., Wani, H.U., 2015. Effect of tillage and organic materials (blotong and kettle ash) on soil porosity and sugarcane plant growth on Ultisol. Journal of Soil and Land Resources 2(1): 119-127. [in Indonesian].
  • Novák, V., Hlaváčiková, H., 2019. Soil-water content and its measurement. In: Applied Soil Hydrology. Theory and Applications of Transport in Porous Media. Novák, V., Hlaváčiková, H. (Eds.). vol 32. Springer, pp 49–61.
  • Novara, A., Pisciotta, A., Minacapilli, M., Maltese, A., Capodici, F., Cerdà, A., Gristina, L., 2018. The impact of soil erosion on soil fertility and vine vigor. A multidisciplinary approach based on field, laboratory and remote sensing approaches. Science of the Total Environment 622–623: 474–480.
  • Patterson, R., 2021. Estimating soil permeability from soil texture and structure: A simple interpretation. Lanfax Laboratories. Available at [Access date: : 10.12.2024]: https://lanfaxlabs.com/Soil%20texture%20-T20-4.pdf
  • Pepper, I.L., Gerba, C.P., Brendecke, J.W., 2004. Environmental microbiology: a laboratory manual. Academic Press Inc.
  • Prescott, C. E., 2010. Litter decomposition: what controls it and how can we alter it to sequester more carbon in forest soils? Biogeochemistry 101(1): 133–49.
  • Priyadi, P., Kurniawati, N., Nugroho, P.A., 2018. Biological activity of rubber plantation-derived soil at various moisture conditions. Journal of EnviScience (Environment Science) 2(1): 10-15. [in Indonesian].
  • Qi, J.Y., Wang, X., Zhao, X., Pu, C., Kan, Z.R., Li, C., Liu, P., Xiao, X.P., Lal, R., Zhang, H.L., 2019. Temporal variability of soil organic carbon in paddies during 13-year conservation tillage. Land Degradation & Development 30:1840-1850.
  • Rayment, G.E., Lyons, D.J., 2011. Soil chemical methods: Australasia. CSIRO publishing. 495p.
  • Ritonga, A.G., Rauf, A., Jamilah., 2016. The characteristics of soil biology in various land use in Petani Watershed Deli Serdang Regency Sumatera Utara. Journal of Agroecotechnology Universitas Sumatera Utara 4(3): 108037. [in Indonesian].
  • Robinson, D.A., Thomas, A., Reinsch, S., Lebron, I., Feeney, C.J., Maskell, L.C., Wood, C.M., Seaton., F.M., Emmett, B.A., Cosby, B. J., 2022. Analytical modelling of soil porosity and bulk density across the soil organic matter and land-use continuum. Scientific Reports 12(1): 7085.
  • Roose, E.J., Lal, R., Feller, C., Barthes, B., Stewart, B.A., 2006. Soil erosion and carbon dynamics (Advances in Soil Science): CRC Press. Taylor & Francis Group, LLC. 378p.
  • Rosalina, F., Maipauw, N.J., 2019. Soil chemical properties in some vegetation types. Journal Median 11(1): 1-9.
  • Siahaan, F.A., Irawanto, R., Rahadiantoro, A., Abiwijaya, I.K., 2018. Topsoil properties under different vegetation in Purwodadi Botanical Garden. Indonesian Soil and Climate Journal 42(2): 91-98. [in Indonesian].
  • Soil Survey Staff, 2014. Keys to Soil Taxonomy. United State Department of Agriculture (USDA), Natural Resources Conservation Service (NRCS), 10th ed. 332p.
  • Surya, J.A., Nuraini, Y., Widianto, W., 2017. Assessment of soil porosity in the application of several types of organic matter in robusta coffee plantations. Journal of Soil and Land Resources 4(1): 463-471. [in Indonesian].
  • Sutarman, o., 2019. Soil Microbiology. Umsida Press, Sidoarjo, Indonesia. 106p.
  • Suyana, J., Idris, S., Muliawati, E.S., Cahyono, O. 2025. Characteristics of soil physical properties based on soil profile depth in forest stands and upland farms in Andisols. Journal of Aridland Agriculture 11(7): 62–68.
  • Suyana, J., Komariah., Senge, M., 2010. Conservation techniques for soil erosion control in tobacco-based farming system at steep land areas of Progo Hulu Subwatershed, Central Java, Indonesia. International Journal of Agricultural and Biosystems Engineering 4(5): 287-294.
  • Suyana, J., Krismonanto, W., Muliawati, E.S., Widijanto, H., 2022b. Characteristics of vegetation, nutrient nitrogen and soil organic carbon in forest stands of Mount Merbabu National Park and upland farming. Journal of Watershed Management Research 6(2): 141-160.
  • Suyana, J., Krismonanto, W., Muliawati, E.S., Widijanto, H., Hartati, S., 2022a. The characteristics of soil organic carbon (SOC) at forest stands of Mount-Merbabu National Park and upland farming. 9th International Conference on Sustainable Agriculture and Environment. IOP Conf. Series: Earth and Environmental Science 1114: 012052.
  • Suyana, J., Nugraheni, N., 2022. Effect of mulch and strengthened terrace strips on erosion, sediment enrichment ratio, and nutrient loss through erosion. Journal of Tropical Soils 27(3): 133-145.
  • Szypłowska, A., Lewandowski, A., Yagihara, S., Saito, H., Furuhata, K., Szerement, J., Kafarskia, M., Wilczeka, A., Majcherg, J., Woszczyka, A., Skierucha, W., 2021. Dielectric models for moisture determination of soils with variable organic matter content. Geoderma 401: 115288.
  • Taylor, D. L., Sinsabaugh, R. L., 2015. The soil fungi: occurrence, phylogeny, and ecology. In: Soil microbiology, Ecology, and Biochemistry. Paul, E.A. (Ed.). Academic Press, pp. 77-109.
  • Tomao, A., Bonet, J.A., Castaño, C., de-Miguel, S., 2020. How does forest management affect fungal diversity and community composition? Current knowledge and future perspectives for the conservation of forest fungi. Forest Ecology and Management 457: 117678.
  • Upton, R., Sielaff, A., Hofmockel, K., Xu, X., Polley, H., Wilsey, B., 2020. Soil depth and grassland origin cooperatively shape microbial community co‐occurrence and function. Ecosphere 11(1): e02973.
  • van der Heijden, M.G.A., Bardgett, R.D., van Straalen, N.M., 2008. The unseen majority: soil microbes as drivers of plant diversity and productivity in terrestrial ecosystems. Ecology Letters 113: 296–310.
  • Walkley, A., Black, I.A., 1934. An examination of Degtjareff method for determining soil organic matter and proposed modification of chromic acid titration method. Soil Science 37: 29-37.
  • Wang, Y., Chen, L., Xiang, W.H., Ouyang, S., Zhang, T., Zhang, X., Zeng, Y., Hu, Y., Luo, G., Kuzyakov, Y., 2021. Forest conversion to plantations: a meta-analysis of consequences for soil and microbial properties and functions. Global Change Biology 27: 5643–5656.
  • Whalen, E.D., Lounsbury, N., Geyer, K., Anthony, M., Morrison, E., van Diepen, L.T.A., Moine, J.L., Nadelhoffer, K., vanden Enden, L., Simpson, M.J., Frey, S.D., 2021. Root control of fungal communities and soil carbon stocks in a temperate forest. Soil Biology and Biochemistry 161: 108390.
  • Xiao, L., Zhou, S., Zhao, R., Greenwood, P., Kuhn, N.J., 2020. Evaluating soil organic carbon stock changes induced by no-tillage based on fixed depth and equivalent soil mass approaches. Agriculture, Ecosystems & Environment 300: 106982.
  • Yang, Y. S., Guo, J.F., Chen, G.S., Xie, J.S., Gao, R., Li, Z., Jin, Z., 2005. Litter production, seasonal pattern and nutrient return in seven natural forests compared with a plantation in southern China. Forestry 78(4): 403-415.
  • Yin, J., Chen, H., Duan, P., Zhu, K., Ma, Y., Xu, Y., Guo, J., Li, R., Chen, Q., 2023. Soil microbial communities as potential regulators of N2O sources in highly acidic soils. Soil Ecology Letters 5: 230178.
  • Yuhanidz, Y., Suryatmana, P., Fitriatin, B.N., 2019. Effect of inoculant and ramie compost on efficiency degradation hidrocarbon, population total fungi and ramie. Journal of Science and Technology Research 24(2): 88-96.
  • Zhang, B., Zhu, S., Li, J., Fu, F., Guo, L., Li, J., Zhang, Y., Liu, Y., Chen, G., Zhang, G., 2024. Elevational distribution patterns and drivers factors of fungal community diversity at different soil depths in the Abies georgei var. smithii forests on Sygera Mountains, southeastern Tibet, China. Frontiers in Microbiology 15: 1444260.
  • Zhang, H., Liu, T., Wang Y., Tang, M., 2019b. Exogenous arbuscular mycorrhizal fungi increase soil organic carbon and change microbial community in poplar rhizosphere. Plant, Soil and Environment 65(3): 152–158.
  • Zhang, J., Li, Y., Yang, T., Liu, D., Liu, X., Jiang, N. 2021. Spatiotemporal variation of moisture in rooted-soil. Catena 200: 105144.
  • Zhang, Y.Y., Wu, W., Liu, H., 2019a. Factors affecting variations of soil pH in different horizons in hilly regions. Plos one 14(6): e0218563.
  • Zhao, Y., Hu, X., Li, X., 2020. Analysis of the intra-aggregate pore structures in three soil types using X-ray computed tomography. Catena 193: 104622.
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Details

Primary Language English
Subjects Soil Sciences and Plant Nutrition (Other)
Journal Section Articles
Authors

Jaka Suyana 0009-0004-1720-0524

Dhany Eko Prasetyo 0009-0009-5704-6441

Sindi Fauziah This is me 0009-0000-3790-9814

Endang Setia Muliawati This is me 0000-0002-8473-9480

Ongko Cahyono 0000-0001-5781-7538

Publication Date October 1, 2025
Submission Date December 10, 2024
Acceptance Date July 19, 2025
Published in Issue Year 2025 Volume: 14 Issue: 4

Cite

APA Suyana, J., Prasetyo, D. E., Fauziah, S., … Muliawati, E. S. (2025). Fungi population and soil chemical and physical properties across different vegetation stands in andisols soil profiles. Eurasian Journal of Soil Science, 14(4), 345-358. https://doi.org/10.18393/ejss.1750278