Research map: Soil type-associated factors correlate with bacterial wilt incidence in tropical fields: a case study from Hainan, China

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  1. Direct evidence for microbial-derived soil organic matter formation and its ecophysiological controls · Cynthia M. Kallenbach · 2016 · 1842 citations · Cited by this paper
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  13. Ralstonia solanacearum – A soil borne hidden enemy of plants: Research development in management strategies, their action mechanism and challenges · Zhaojun Wang · 2023 · 142 citations · Cited by this paper
  14. Impacts of multiple trophic and climatic factors on the growth kinetics of Fusarium spp. associated with wheat head blight · 2026 · Related
  15. Molecular interaction between plants and Trichoderma species against soil-borne plant pathogens · Pranab Dutta · 2023 · 137 citations · Cited by this paper
  16. Granular biofertilizer containing Bacillus amyloliquefaciens (HY 4–3-4) suppresses root rot disease and promotes growth of yardlong bean (Vigna unguiculata subsp. sesquipedalis) · 2026 · Related
  17. A Rhizosphere-Derived Consortium of Bacillus subtilis and Trichoderma harzianum Suppresses Common Scab of Potato and Increases Yield · Zhenshuo Wang · 2019 · 131 citations · Cited by this paper
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  19. Phosphorus availability influences disease-suppressive soil microbiome through plant-microbe interactions · Yifan Cao · 2024 · 92 citations · Cited by this paper
  20. Effect of copper nanoparticles as a component of IDM module for the management of leaf spot disease of turmeric caused by Colletotrichum capsici (Syd.) Butler and Bisby · 2026 · Related
  21. Carbon starvation raises capacities in bacterial antibiotic resistance and viral auxiliary carbon metabolism in soils · Qicheng Xu · 2024 · 83 citations · Cited by this paper
  22. Cover crops restore declining soil properties and suppress bacterial wilt by regulating rhizosphere bacterial communities and improving soil nutrient contents · Gaofu Qi · 2020 · 59 citations · Cited by this paper
  23. The relative importance of soil moisture in predicting bacterial wilt disease occurrence · Gaofei Jiang · 2021 · 44 citations · Cited by this paper
  24. Meta-analysis Reveals That the Genus Pseudomonas Can Be a Better Choice of Biological Control Agent against Bacterial Wilt Disease Caused by Ralstonia solanacearum · M. Chandrasekaran · 2016 · 40 citations · Cited by this paper
  25. Biochar and its coupling with microbial inoculants for suppressing plant diseases: A review · Zhongwang Liu · 2023 · 31 citations · Cited by this paper
  26. Thyme oil treatment controls bacterial wilt disease symptoms by inducing antioxidant enzyme activity in Solanum tuberosum · Nashwa M. A. Sallam · 2021 · 24 citations · Cited by this paper
  27. Resistance to bacterial wilt caused by Ralstonia solanacearum depends on the nutrient condition in soil and applied fertilizers: A meta-analysis · Yifan Cao · 2022 · 24 citations · Cited by this paper
  28. pH and Nitrate Drive Bacterial Diversity in Oil Reservoirs at a Localized Geographic Scale · Ying Xu · 2023 · 23 citations · Cited by this paper
  29. Effect of Crop Rotation on Tomato Bacterial Wilt (Ralstonia solanacearum) and Survival of the Pathogen in the Rhizospheres and Roots of Different Crops in Ethiopia · Getachew Ayana · 2017 · 21 citations · Cited by this paper
  30. Biochar mediated control of soil-borne phytopathogens · Burak Alaylar · 2021 · 17 citations · Cited by this paper
  31. Soil-borne disease suppressiveness after short and long term application of fermented, composted or fresh organic amendment treatments in arable soils · Maartje van der Sloot · 2024 · 14 citations · Cited by this paper
  32. Efficacy of 2,4-Di-tert-butylphenol in Reducing Ralstonia solanacearum Virulence: Insights into the Underlying Mechanisms · Le Yang · 2024 · 14 citations · Cited by this paper
  33. Induction of spontaneous phenotype conversion in Ralstonia solanacearum by addition of iron compounds in liquid medium · Hiroki Nakahara · 2021 · 9 citations · Cited by this paper
  34. Deciphering the effects of crop rotation on tobacco bacterial wilt through general and specific disease suppression · Haikun Ma · 2023 · 9 citations · Cited by this paper
  35. A Ralstonia solanacearum effector regulates plant cell death by disrupting the homeostasis of the BPA1-ACD11 complex · Bingbing Xue · 2025 · 5 citations · Cited by this paper

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