168 results on '"Jiao, Shuo"'
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2. Response and adaptation of agricultural ecosystems to global changes
3. Species pool, local assembly processes: Disentangling the mechanisms determining bacterial α‐ and β‐diversity during forest secondary succession
4. Multiple spatial scales of bacterial and fungal structural and functional traits affect carbon mineralization
5. Deciphering microbiomes dozens of meters under our feet and their edaphoclimatic and spatial drivers
6. The neglected roles of adjacent natural ecosystems in maintaining bacterial diversity in agroecosystems
7. Grass-legume mixtures maintain forage biomass under microbial diversity loss via gathering Pseudomonas in root zone soil
8. Agricultural tillage practice and rhizosphere selection interactively drive the improvement of soybean plant biomass
9. Metagenomics insights into responses of rhizobacteria and their alleviation role in licorice allelopathy
10. Neighboring plant community attributes drive rhizobiome assemblages of a focal plant in a Kobresia meadow
11. Data Supplement from Gene–Environment Interaction Involving Recently Identified Colorectal Cancer Susceptibility Loci
12. Supplementary Material 2 from A Pooled Analysis of Smoking and Colorectal Cancer: Timing of Exposure and Interactions with Environmental Factors
13. Supplementary Figure 1 from A Pooled Analysis of Smoking and Colorectal Cancer: Timing of Exposure and Interactions with Environmental Factors
14. Data Supplement from Gene–Environment Interaction Involving Recently Identified Colorectal Cancer Susceptibility Loci
15. Supplementary Material 1 from A Pooled Analysis of Smoking and Colorectal Cancer: Timing of Exposure and Interactions with Environmental Factors
16. Supplementary Material 1 from A Pooled Analysis of Smoking and Colorectal Cancer: Timing of Exposure and Interactions with Environmental Factors
17. Plant domestication shapes rhizosphere microbiome assembly and metabolic functions
18. Data Supplement from Gene–Environment Interaction Involving Recently Identified Colorectal Cancer Susceptibility Loci
19. Data Supplement from Gene–Environment Interaction Involving Recently Identified Colorectal Cancer Susceptibility Loci
20. Data from Gene–Environment Interaction Involving Recently Identified Colorectal Cancer Susceptibility Loci
21. Data Supplement from Gene–Environment Interaction Involving Recently Identified Colorectal Cancer Susceptibility Loci
22. Data from Gene–Environment Interaction Involving Recently Identified Colorectal Cancer Susceptibility Loci
23. Data Supplement from Gene–Environment Interaction Involving Recently Identified Colorectal Cancer Susceptibility Loci
24. Supplementary Figure 1 from A Pooled Analysis of Smoking and Colorectal Cancer: Timing of Exposure and Interactions with Environmental Factors
25. Supplementary Material 2 from A Pooled Analysis of Smoking and Colorectal Cancer: Timing of Exposure and Interactions with Environmental Factors
26. Data Supplement from Gene–Environment Interaction Involving Recently Identified Colorectal Cancer Susceptibility Loci
27. Data Supplement from Gene–Environment Interaction Involving Recently Identified Colorectal Cancer Susceptibility Loci
28. Data from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
29. Supplementary Table 4 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
30. Supplementary Table 6 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
31. Supplementary Table 3 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
32. Supplementary Table 2 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
33. Supplementary Table 5 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
34. Data from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
35. Supplementary Table 5 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
36. Supplementary Table 1 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
37. Supplementary Table 3 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
38. Supplementary Figure 1 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
39. Supplementary Table 7 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
40. Supplementary Table 4 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
41. Supplementary Table 6 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
42. Supplementary Figure 1 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
43. Supplementary Table 1 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
44. Supplementary Table 2 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
45. Supplementary Table 7 from Characterization of Gene–Environment Interactions for Colorectal Cancer Susceptibility Loci
46. The climate‐driven distribution and response to global change of soil‐borne pathogens in agroecosystems
47. Depth-dependent effects of tree species identity on soil microbial community characteristics and multifunctionality
48. Contrasting patterns and drivers of soil micronutrient availability in paddy and maize fields of eastern China
49. The neglected role of micronutrients in predicting soil microbial structure
50. Core phylotypes enhance the resistance of soil microbiome to environmental changes to maintain multifunctionality in agricultural ecosystems
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