Improvement effect of biochar on soil microbial community structure and metabolites of decline disease bayberry
文献类型: 外文期刊
作者: Ren, Haiying 1 ; Guo, Hao 3 ; Islam, Mohammad Shafiqul 4 ; Zaki, Haitham E. M. 5 ; Wang, Zhenshuo 3 ; Wang, Hongyan 1 ; Qi, Xingjiang 1 ; Guo, Junning 4 ; Sun, Li 1 ; Wang, Qi 3 ; Li, Bin 4 ; Li, Gang 1 ; Radwan, Khlode S. A. 7 ;
作者机构: 1.Zhejiang Acad Agr Sci, Inst Hort, Inst Agroprod Safety & Nutr, State Key Lab Managing Biot & Chem Treats Qual & S, Hangzhou, Peoples R China
2.Xianghu Lab, Hangzhou, Peoples R China
3.China Agr Univ, Coll Plant Protect, Dept Plant Pathol, MOA Key Lab Pest Monitoring & Green Management, Beijing, Peoples R China
4.Zhejiang Univ, Inst Biotechnol, Hangzhou, Peoples R China
5.Minia Univ, Fac Agr, Hort Dept, El Minia, Egypt
6.Univ Technol & Appl Sci Sur, Appl Biotechnol Dept, Sur, Oman
7.Minia Univ, Fac Agr, Plant Pathol Dept, El Minia, Egypt
关键词: bayberry; decline disease; biochar; vegetative growth; fruit quality; physical and chemical properties; microorganism; metabolite
期刊名称:FRONTIERS IN MICROBIOLOGY ( 影响因子:5.2; 五年影响因子:6.2 )
ISSN:
年卷期: 2023 年 14 卷
页码:
收录情况: SCI
摘要: Decline disease is a new disease that has recently caused severe damage in bayberry industry. The effect of biochar on decline disease was determined by investigating the changes in the vegetative growth and fruit quality of bayberry trees as well as soil physical and chemical properties, microbial community structure, and metabolites. Results indicated that the application of biochar could improve the vigor and fruit quality of diseased trees, and rhizosphere soil microbial diversity at the levels of phyla, orders, and genera. The relative abundance of Mycobacterium, Crossiella, Geminibasidium, and Fusarium were significantly increased, while Acidothermus, Bryobacter, Acidibacter, Cladophialophora, Mycena, and Rickenella were significantly decreased by biochar in rhizosphere soil of decline diseased bayberry. Analysis of redundancies (RDA) of microbial communities and soil characteristics revealed that the composition of bacterial and fungal communities was significantly affected by the pH, organic matter, alkali hydrolyzable nitrogen, available phosphorus, available potassium, exchangeable calcium and exchangeable magnesium in bayberry rhizosphere soil, and the contribution rates to fungi were larger than those to bacteria at the genus level. Biochar greatly influenced the metabolomics distribution of rhizosphere soils of decline disease bayberry. One hundred and nine different metabolites from both the presence and absence of biochar, mainly include acid, alcohol, ester, amine, amino acid, sterol, sugar, and other secondary metabolites, of which the contents of 52 metabolites were increased significantly such as aconitic acid, threonic acid, pimelic acid, epicatechin, and lyxose. The contents of 57 metabolites decreased significantly, such as conduritol beta-expoxide, zymosterol, palatinitol, quinic acid, and isohexoic acid. There was a great difference between the absence and presence of biochar in 10 metabolic pathways, including thiamine metabolism, arginine and proline metabolism, glutathione metabolism, ATP-binding cassette (ABC) transporters, butanoate metabolism, cyanoamino acid metabolism, tyrosine metabolism, phenylalanine metabolism, phosphotransferase system (pts), and lysine degradation. There was a significant correlation between the relative content of microbial species and the content of secondary metabolites in rhizosphere soil at the levels of bacterial and fungal phyla, order, and genus. Overall, this study highlighted the significant influence of biochar in decline disease by regulating soil microbial community, physical and chemical properties, and secondary metabolites in rhizosphere soil, which provided a novel strategy for managing bayberry decline disease.
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