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Rockström, J., Kassam, A., Friedrich, T., Reicosky, D., Dumansky, J., Goddard, T. & Peiretti, R.A. 2026. Global Sustainability. 9. Article e11, pages 1-27. https://doi.org/10.1017/sus.2025.10045
Schiavo, J.A., Lopes, V.R., Araújo, A.R., Macedo, M.C.M.,Oliveira, N. de S., Coêlho, R. da S., Souza, C.B. da Silva, Farias, P.G. da Silva, Panachuki, E., Couto, A.M. & Oelbermann, M. 2025. Applied and Environmental Soil Science. 2025 (1). Article 8491885. https://doi.org/10.1155/aess/8491885
Yuan, C., Ma, Z., Liu, S., Nie, H., Feng, G., Wang, S. & Luo, S. 2025. Frontiers in Microbiology. 16. Article 173092. https://doi.org/10.3389/fmicb.2025.1730920
Nthebere, K., Prakash, T.R., Bhimireddy, P., Chandran, L.P., Gudapati, J., Admala, M. & Prasad, K. 2025 Heliyon. 11 (1) Article e41196. https://doi.org/10.1016/j.heliyon.2024.e41196
Attia, A., Woli, P., Long, C.R., Rouquette, F.M., Smith, G.R., Datta, A., Felke, T. & Rajan, N. 2025. Journal of Environmental Management. 391. Article 126352. https://doi.org/10.1016/j.jenvman.2025.126352
Fagodiya, R.K., Verma, K., Sharma, G., Rai, A.K., Prajapat, K., Singh, R., Sheoran, P., Basak, N., Chandra, P., Sharma, D.P., Yadav, R.K. & Biswas, A.K. 2025. Soil and Tillage Research. 254. Article 106697. https://doi.org/10.1016/j.still.2025.106697
Madzivanzira, T., Mvumi, B.M., Nazare, R.M., Nyakudya, E., Mtambanengwe, F. & Mapfumo, P. 2025.Advances in Agriculture. 1. Article 4837619. https://doi.org/10.1155/aia/4837619
Zhou, Y., Ferdinand, M.S., van Wesemael, J., Dvorakova, K., Baret, P.V., Van Oost, K. & van Wesemael, B. 2025. Remote Sensing of Environment. 328. Article 114858. https://doi.org/10.1016/j.rse.2025.114858
Kim, D.H., Wade, T., Brym, Z., Ogisma, L., Bhattarai, R., Bai, X., Bhadha, J. & Her, Y. 2025. Journal of Environmental Management. 387. Article 125833. https://doi.org/10.1016/j.jenvman.2025.125833
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Hasanain, Md., Singh, V.K., Rathore, S.S., Meena, V.S., Singh, R.K., et al., (9 more). Biomass and Bioenergy. 208. Article 108864. https://doi.org/10.1016/j.biombioe.2025.108864
Jia, Y., Sun, Y., Zhang, D., Yang, W., Pang, J., Siddique, K.H.. & Qu, Z. 2025. Agronomy-Basel. 15 (5) Article 1007. https://doi.org/10.3390/agronomy15051007
Khosa, M.K., Barik, K., Aksakal, E., Jahangir, Md MR., Didenko, N.O. & Islam, K.R. 2025. Plos One. 20 (5) Article e0322891. https://doi.org/10.1371/journal.pone.0322891
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This Brazilian paper looks at Crop–livestock–forest integration (CLFI) systems that can enhance soil organic carbon (SOC) content within various aggregate size classes, thereby improving soil productivity and its capacity for atmospheric carbon (C) sequestration. Treatments included long term CFLI with pasture rotation, CFLI with crop rotation, continuous conventional cropping (CCC), permanent pasture without and with fertilizer. The native Cerrado was used as the check. Results showed that after 23 years of CCC, SOC was reduced by 53%. compared to the Cerrado check. The CFLI treatments had much less SOC loss. They conclude that "the findings highlight the potential of CLFI systems to store carbon in the soil and promote macroaggregate formation, comparable to pastures established for 25 years and the native Cerrado.