Associations of vegetation, microbial communities, and soil properties with mineral-associated organic carbon in karst soils

Authors

  • Hefeng Wan Guizhou Institute of Biology, Guizhou Academy of Sciences, Guiyang, Guizhou, China
  • Lei Hao Guizhou Institute of Biology, Guizhou Academy of Sciences, Guiyang, Guizhou, China
  • Xiuyuan Yang Guizhou Institute of Biology, Guizhou Academy of Sciences, Guiyang, Guizhou, China
  • Jing Wang Guizhou Institute of Biology, Guizhou Academy of Sciences, Guiyang, Guizhou, China
  • Guohua Liu Guizhou Institute of Biology, Guizhou Academy of Sciences, Guiyang, Guizhou, China
  • Jiang Hong Guizhou Academy of Sciences, Guiyang, Guizhou, China

DOI:

https://doi.org/10.60923/issn.2281-4485/25018

Keywords:

mineral-associated organic carbon, karst soils, microbial community, soil texture, carbon stabilization

Abstract

Mineral-associated organic carbon (MAOC) is an important component of stable soil carbon pools, yet its distribution and controlling factors in karst ecosystems remain unclear due to strong soil heterogeneity. This study investigated the relationships between vegetation type, microbial communities, soil physicochemical properties, and MAOC amount in a karst watershed in Guizhou, China. Surface soils (0–20 cm) were collected from limestone-derived Leptosols under three vegetation types: grassland, arboreal forest, and shrubland. Soil physicochemical properties were analyzed in combination with high-throughput sequencing of bacterial 16S rRNA genes and fungal ITS regions. MAOC content was highest in arboreal forest soils (5.54 g/kg), followed by shrubland (2.83 g/kg) and grassland (1.84 g/kg). Microbial richness and diversity did not differ significantly among vegetation types, although bacterial diversity was consistently higher than that of fungi. Dominant bacterial phyla included Proteobacteria, Acidobacteriota, and Actinobacteriota, while fungal communities were dominated by Ascomycota, with relatively higher abundances of Basidiomycota and Rozellomycota in arboreal forest soils. Soil chemical properties showed no significant differences among vegetation types, whereas soil texture varied significantly. Across the study area, MAOC was positively associated with Actinobacteriota abundance, soil pH, and sand content, and negatively associated with clay and silt contents. These findings indicate that MAOC variation in karst soils is closely associated with vegetation type, soil texture, and microbial community composition. Arboreal forest soils were associated with relatively higher MAOC levels, highlighting the importance of vegetation–soil–microbe interactions in soil carbon stabilization and ecosystem quality in carbonate landscapes.

References

ANGST G., MUELLER K.E., NIEROP K.G.J., SIMP-SON M.J. (2021) Plant or microbial-derived? A review on the molecular composition of stabilized soil organic matter. Soil Biology and Biochemistry, 156: 108189. https://doi.org/10.1016/j.soilbio.2021.108189

BEGILL N., DON A., POEPLAU C. (2023) No detectable upper limit of mineral-associated organic carbon in temperate agricultural soils. Global Change Biology, 29: 4662–4669. https://doi.org/10.1111/gcb.16804

BI X., YAO Y., WANG Z.C., LI C.H., CAO D., WEN L.W., JING L., SUN B.F. (2024) Improving monitoring karst rocky desertification using high-frequency Landsat observations: A generalized framework and its application, to a typical karst region in southeast China. CATENA, 241: 108045. https://doi.org/10.1016/j.catena.2024.108045

DAI B., PENG T., ZHANG X.B., MO X.M., WANG S.J. (2023) Major types and formation mechanism of karst hills in plateau and discussion on karst landform zoning in Guizhou, China. Mountain Research, 41: 155–168. https://doi.org/10.16089/j.cnki.1008-2786.000738

GEORGIOU K., JACKSON R.B., VINDUŠKOVÁ O., ABRAMOFF R.Z., AHLSTRÖM A., FENG W., HARDEN J.W., PELLEGRINI A.F.A., POLLEY H.W., SOONG J.L., RILEY W.J., TORN M.S. (2022) Global stocks and capacity of mineral-associated soil organic carbon. Nature Communications, 13: 3797. https://doi.org/10.1038/s41467-022-31540-9

GEORGIOU K., KOVEN C.D., WIEDER W.R., HARTMAN M.D., RILEY W.J., PETT-RIDGE J., BOUSKILL N.J., ABRAMOFF R.Z., SLESSAREV E.W., AHLSTRÖM A., PARTON W.J., PELLEGRINI A.F.A., PIERSON D., SULMAN B.N., ZHU Q., JACKSON R.B. (2024) Emergent temperature sensitivity of soil organic carbon driven by mineral associations. Nature Geoscience, 17:205–212. https://doi.org/10.1038/s41561-024-01384-7

HE J., LIU X., MENG W., CHEN X. (2024) Recent advances in studies of soil organic carbon stability in Karst areas. Frontiers in Forests and Global Change, 7: 1453615. https://doi.org/10.3389/ffgc.2024.1453615

HU P., ZHANG W., NOTTINGHAM A.T., XIAO D., KUZYAKOV Y., XU L., CHEN H., XIAO J., DUAN P., TANG T., ZHAO J., WANG K. (2024). Lithological controls on soil aggregates and minerals regulate microbial carbon use efficiency and necromass stability. Environmental Science and Technology, 58: 21186–21199. https://doi.org/10.1021/acs.est.4c07264

HUANG J.S., LIU W.X., YANG S., YANG L., PENG Z.H., DENG M.F., XU S., ZHANG B., AHMAD I., YANG Y.H., LIU L.L. (2021). Plant carbon inputs through shoot, root, and mycorrhizal pathways affect soil organic carbon turnover differently. Soil Biology and Biochemistry, 160: 108322. https://doi.org/10.1016/j.soilbio.2021.108322

LI J.N., CHEN S.X., LONG X.W., HU P., XIAO D., ZHANG W., MOLDOVAN O.T., ZHAO J., WANG K.. (2025a). Linking rock outcrop size and distance to soil multifunctionality in mountain ecosystems. Functional Ecology, 39: 1288–1301. https://doi.org/10.1111/1365-2435.70034

LI W.D., CHEN D., CHENG J.L., FANG Q.L., HU L.X., WANG T.Y., LI C.J., ZHAO B., LI Q.Q. (2025b) Characteristics and influencing factors of soil particulate and mineral-associated organic carbon in cropland soil across Sichuan basin. Environmental Science, 46: 388–398. https://doi.org/10.13227/j.hjkx.202402001

LI Y., FENG X., WU L.H., LUO G.J., LUO H.F. (2024a) Spatial-temporal evolution and quantitative attribution of habitat quality in typical karst counties of Guizhou plateau. Environmental Science, 45: 2793–2805. https://doi.org/10.13227/j.hjkx.202306238

LI Z., DUAN X., GUO X.B., GAO W., LI Y., ZHOU P., ZHU Q.H., O’DONNEL A.G., DAI K., WU J.S.. (2024b). Microbial metabolic capacity regulates the accrual of mine-ral-associated organic carbon in subtropical paddy soils. Soil Biology and Biochemistry, 195: 109457. https://doi.org/10.1016/j.soilbio.2024.109457

LIANG G.P., STARK J., WARING B.G. (2023). Mineral reactivity determines root effects on soil organic carbon. Nature Communications, 14: 4962. https://doi.org/10.1038/s41467-023-40768-y

LIAO J.J., YANG X., DOU Y.X., WANG B.R., XUE Z.J., SUN H., YANG Y., AN S.S.. (2023). Divergent contri-bution of particulate and mineral-associated organic matter to soil carbon in grassland. Journal of Environmental Management, 344:118536. https://doi.org/10.1016/j.jenvman.2023.118536

LV J.F., SHI J., WANG Z., PENG Y.M., WANG X. (2023). Effects of erosion and deposition on the extent and characteristics of organic carbon associated with soil mineral in Mollisol landscape. CATENA, 228: 107190. https://doi.org/10.1016/j.catena.2023.107190

SOKOL N.W., WHALEN E.D., JILLING A., KALLEN-BACH C.M., GEORGIOU K. (2022) Global distribution, formation and fate of mineral-associated soil organic matter under a changing climate: A trait-based perspective. Functional Ecology, 36: 1411–1429. https://doi.org/10.1111/1365-2435.14040

SONG W.J., LIANG Y.Z., TAO Z., ZHONG Q.X., HE Y.C. (2023) Advances on soil organic carbon dynamics mediated by microorganisms. Advances in Earth Science, 38: 1213–1223. https://doi.org/10.11867/j.issn.1001-8166.2023.076

SU X.., QU C., KANG J., GAO D., CAI P., CHEN W., HUANG Q. (2024) Microorganisms drive mineral-associated organic carbon formation. Science Bulletin, 69: 3327–3338. https://doi.org/10.1360/TB-2023-1049

TONG Y., XIANG H.Q., JIANG J., CHEN W. (2024) Interfacial interactions between minerals and organic mat-ter: Mechanisms and characterizations. Chemosphere, 359: 142383. https://doi.org/10.1016/j.chemosphere.2024.142383

UNDERWOOD T.R., BOURG I.C., ROSSO K.M. (2024) Mineral-associated organic matter is heterogeneous and structured by hydrophobic, charged, and polar interactions. Proceedings of the National Academy of Sciences of the United States of America, 121: e2413216121.https://doi.org/10.1073/pnas.2413216121

WU H.W., CUI H.L., FU C.X., LI R., QI F.Y., LIU Z.L., YANG G., XIAO K.Q.(2024) Unveiling the crucial role of soil microorganisms in carbon cycling: A review. Science of the Total Environment, 909: 168627. https://doi.org/10.1016/j.scitotenv.2023.168627

WU M.Y., CHEN L., CHEN S.G., CHEN Y.L., MA J.P., ZHANG Y.Q., PANG D.B., LI X.B. (2025) Soil microbial carbon and nitrogen limitation constraints soil organic carbon stability in arid and semi-arid grasslands. Journal of Environmental Management, 373: 123675. https://doi.org/10.1016/j.jenvman.2024.123675

XIAO L.Y., WU X.Q., GUO C.Q., LU Z.C., KHAN M.A., ZHENG C.H., ZHOU J.X. (2025) Thriving amidst adversity. Responses of karst vegetation to extreme compound droughts. Journal of Hydrology, 659: 133216. https://doi.org/10.1016/j.jhydrol.2025.133216

ZHANG Z.M. (2017). Soil organic carbon distribution and vegetation restoration in karst areas. PhD thesis, Guizhou University.

ZHOU Z.H., REN C.J., WANG C.K., DELGADO-BAQUERIZO M., LUO Y.Q., LUO Z.K., DU Z.G., ZHU B., YANG Y.H., JIAO S., ZHAO E.Z., CAI A.D., YANG G.H., WEI G.H. (2024) Global turnover of soil mineral associated and particulate organic carbon. Nature Communications, 15: 5329. https://doi.org/10.1038/s41467-024-49743-7

ZHU E.X., LIU Z.G., MA L.X., LUO J.N., KANG E.Z., WANG Y., ZHAO Y.P., JIA J., FENG X.J. (2024) Enhanced mineral preservation rather than microbial residue production dictates the accrual of mineral-associated organic carbon along a weathering gradient. . Geophysical Research Letters, 51: e2024GL108466. https://doi.org/10.1029/2024GL108466

Downloads

Published

2026-09-16

How to Cite

Wan, H., Hao, L., Yang, X., Wang, J., Liu, G., & Hong, J. (2026). Associations of vegetation, microbial communities, and soil properties with mineral-associated organic carbon in karst soils. EQA - International Journal of Environmental Quality, 75, 62–73. https://doi.org/10.60923/issn.2281-4485/25018

Issue

Section

Articles