| [1] |
Kopittke PM, Menzies NW, Wang P, McKenna BA, Lombi E. 2019. Soil and the intensification of agriculture for global food security. |
| [2] |
Pachani S, Kashyap N. 2020. Soil health and its quality: a review. |
| [3] |
Rosa L, Rulli MC, Ali S, Chiarelli DD, Dell'Angelo J, et al. 2021. Author Correction: energy implications of the 21st century agrarian transition. |
| [4] |
Khodaei D, Javanmardi F, Khaneghah AM. 2021. The global overview of the occurrence of mycotoxins in cereals: a three-year survey. |
| [5] |
Liu H, Zhang W, He Q, Aikemu R, Xu H, et al. 2024. Re-localization of a repeat-containing fungal effector by apoplastic protein Chitinase-like 1 blocks its toxicity. |
| [6] |
Sleiderink J, Deru JGC, van der Weide R, van Eekeren N. 2024. Effects of reduced tillage and prolonged cover cropping in maize on soil quality and yield. |
| [7] |
Zhao D, Wu Y, Liu Z, Yu W, Xu Y, et al. 2026. Straw deep incorporation improves subsoil and rhizosphere soil microenvironment to increase wheat yield. |
| [8] |
Ling J, Zhou J, Wu G, Zhao DQ, Wang ZT, et al. 2024. Deep-injected straw incorporation enhances subsoil quality and wheat productivity. |
| [9] |
Ma Z, Zhang X, Zheng B, Yue S, Zhang X, et al. 2021. Effects of plastic and straw mulching on soil microbial P limitations in maize fields: dependency on soil organic carbon demonstrated by ecoenzymatic stoichiometry. |
| [10] |
Sokol NW, Slessarev E, Marschmann GL, Nicolas A, Blazewicz SJ, et al. 2022. Life and death in the soil microbiome: how ecological processes influence biogeochemistry. |
| [11] |
Shi S, Gong X, Cheng S, Tao D, Chen X, et al. 2025. Maize growth as a function of cover crop-mediated soil microbiome. |
| [12] |
Lutz S, Bodenhausen N, Hess J, Valzano-Held A, Waelchli J, et al. 2023. Soil microbiome indicators can predict crop growth response to large-scale inoculation with arbuscular mycorrhizal fungi. |
| [13] |
Wu Q, Zhang L, Xia H, Yu C, Dou K, et al. 2017. Omics for understanding synergistic action of validamycin A and Trichoderma asperellum GDFS1009 against maize sheath blight pathogen. |
| [14] |
Shofman G, Degani O. 2025. Interspecies crosstalk between Magnaporthiopsis maydis and Fusarium verticillioides in mutually infected maize plants. |
| [15] |
Poole N, Donovan J, Erenstein O. 2021. Viewpoint: Agri-nutrition research: Revisiting the contribution of maize and wheat to human nutrition and health. |
| [16] |
Polak-Śliwińska M, Paszczyk B. 2021. Trichothecenes in food and feed, relevance to human and animal health and methods of detection: a systematic review. |
| [17] |
Schultes SR, Rüger L, Niedeggen D, Freudenthal J, Frindte K, et al. 2025. Photosynthate distribution determines spatial patterns in the rhizosphere microbiota of the maize root system. |
| [18] |
Philippot L, Chenu C, Kappler A, Rillig MC, Fierer N. 2024. The interplay between microbial communities and soil properties. |
| [19] |
Wu G, Ling J, Zhao DQ, Xu YP, Liu ZX, et al. 2022. Deep-injected straw incorporation improves subsoil fertility and crop productivity in a wheat-maize rotation system in the North China Plain. |
| [20] |
International Organization for Standardization (ISO). 2005. Soil quality − determination of pH. ISO, Geneva. https://www.iso.org/standard/40879.html |
| [21] |
Nelson DW, Sommer LE. 1996. Total carbon, organic carbon, and organic matter. In Methods of Soil Analysis: Part 3 Chemical Methods, eds. Sparks DL, Page AL, Helmke PA, Loeppert RH, Soltanpour PN, et al. Madison, WI, USA: Soil Science Society of America, American Society of Agronomy. pp. 961−1010 doi: 10.2136/sssabookser5.3.c34 |
| [22] |
Bao SD. 2000. Soil and Agricultural Chemistry Analysis. 3rd Edition. Beijing: China Agriculture Press |
| [23] |
Frostegård Å, Tunlid A, Bååth E. 2011. Use and misuse of PLFA measurements in soils. |
| [24] |
Qu R, Liu G, Yue M, Wang G, Peng C, et al. 2023. Soil temperature, microbial biomass and enzyme activity are the critical factors affecting soil respiration in different soil layers in Ziwuling Mountains, China. |
| [25] |
Lievens B, Brouwer M, Vanachter ACRC, Cammue BPA, Thomma BPHJ. 2006. Real-time PCR for detection and quantification of fungal and oomycete tomato pathogens in plant and soil samples. |
| [26] |
Cruz P, Buttner MP. 2008. Development and evaluation of a real-time quantitative PCR assay for Aspergillus flavus. |
| [27] |
Husson O. 2013. Redox potential (Eh) and pH as drivers of soil/plant/microorganism systems: a transdisciplinary overview pointing to integrative opportunities for agronomy. |
| [28] |
de Vries FT, Griffiths RI, Bailey M, Craig H, Girlanda M, et al. 2018. Soil bacterial networks are less stable under drought than fungal networks. |
| [29] |
Delgado-Baquerizo M, Reich PB, Trivedi C, Eldridge DJ, Abades S, et al. 2020. Multiple elements of soil biodiversity drive ecosystem functions across biomes. |
| [30] |
Bahram M, Hildebrand F, Forslund SK, Anderson JL, Soudzilovskaia NA, et al. 2018. Structure and function of the global topsoil microbiome. |
| [31] |
Six J, Bossuyt H, Degryze S, Denef K. 2004. A history of research on the link between (micro) aggregates, soil biota, and soil organic matter dynamics. |
| [32] |
Button ES, Pett-Ridge J, Murphy DV, Kuzyakov Y, Chadwick DR, et al. 2022. Deep-C storage: biological, chemical and physical strategies to enhance carbon stocks in agricultural subsoils. |
| [33] |
Teng J, Hou R, Dungait JAJ, Zhou G, Kuzyakov Y, et al. 2024. Conservation agriculture improves soil health and sustains crop yields after long-term warming. |
| [34] |
Kuang E, Xu M, Colinet G, Chi F, Su Q, et al. 2020. Degradation characteristics of maize straw under different buried depths in northeast black soil and their effects on soil carbon and nitrogen. |
| [35] |
Dasgupta D, Camuy-Vélez LA, Nath D, Zitnick-Anderson K, Aberle E, et al. 2026. Fertilizer level has a stronger effect than tillage intensity on crop microbiome recruitment. |
| [36] |
Banerjee S, Schlaeppi K, van der Heijden MGA. 2018. Keystone taxa as drivers of microbiome structure and functioning. |
| [37] |
Lal R. 2004. Carbon emission from farm operations. |
| [38] |
Chen X, Xu X, Lu Z, Zhang W, Yang J, et al. 2020. Carbon footprint of a typical pomelo production region in China based on farm survey data. |
| [39] |
Wells J, Trendl A, Owen A, Barrett J, Gridley J, et al. 2025. A scalable tool for farm-level carbon accounting: evidence from UK agriculture. |