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化肥与有机肥部分配施改善稻田土壤生化特性、水稻产量并恢复细菌群落多样性

Partial Substation of Organic Fertilizer With Chemical Fertilizer Improves Soil Biochemical Attributes, Rice Yields, and Restores Bacterial Community Diversity in a Paddy Field.

作者信息

Iqbal Anas, He Liang, Ali Izhar, Yuan Pengli, Khan Abdullah, Hua Zhang, Wei Shanqing, Jiang Ligeng

机构信息

College of Life Science and Technology, Guangxi University, Nanning, China.

College of Agriculture, Guangxi University, Nanning, China.

出版信息

Front Plant Sci. 2022 Jun 2;13:895230. doi: 10.3389/fpls.2022.895230. eCollection 2022.

Abstract

Conventional farming systems are highly reliant on chemical fertilizers (CFs), which adversely affect soil quality, crop production and the environment. One of the major current challenges of current agriculture is finding ways to increase soil health and crop yield sustainably. Manure application as a substitute for CF is an alternative fertilization strategy for maintaining soil health and biodiversity. However, little is known about the complex response of soil bacterial communities and soil nutrients to manure and CFs application. This study reports the response of soil nutrients, rice yield, and soil microbial community structure to 2 years of continuous manure and CFs application. The study consisted of six treatments: no N fertilizer control (Neg-Con); 100% CF (Pos-Con); 60% cattle manure (CM) + 40% CF (High-CM); 30% CM + 70% CF (Low-CM); 60% poultry manure (PM) + 40% CF (High-PM), and 30% PM + 70% CF (Low-PM). We used high-throughput sequencing of 16S ribosomal RNA gene amplicons to characterize the soil bacterial communities. Results revealed that the addition of manure significantly altered the soil bacterial community composition and structure; and enhanced the relative abundance of phyla Proteobacteria, Chloroflexi, Firmicutes, Acidobacteria, and Planctomycetes. Organic fertilizer treatments, particularly high CM and PM had the highest measured soil bacterial diversity of all treatments. Similarly, integrated application of manure and CFs increased the soil biochemical traits [i.e., pH, total N (TN), soil organic C (SOC), microbial biomass N (MBN), and microbial biomass C (MBC)] and rice grain yield. Average increases in SOC, TN, MBN, and MBC were 43.66, 31.57, 24.34, and 49.45%, respectively, over the years in the High-PM compared with Pos-Con. Redundancy analysis showed that the dominant bacteria phyla were correlated with soil pH, SOC, TN, and microbial biomass, but the relative abundance of Proteobacteria was strongly correlated with environmental factors such as soil pH, SOC, TN, and MBC. We employed a structural equation model to examine the relationship between microbial biomass, soil nutrients and grain yield among treatments. This analysis supported the hypothesis that soil nutrient content and availability directly affect rice grain yield while soil bacteria indirectly affect grain yield through microbial biomass production and nutrient levels. Overall, the findings of this research suggest that the integrated application of CF and manure is a better approach for improving soil health and rice yield.

摘要

传统耕作系统高度依赖化肥,这对土壤质量、作物产量和环境产生不利影响。当前农业面临的主要挑战之一是找到可持续提高土壤健康和作物产量的方法。施用粪肥作为化肥的替代品是维持土壤健康和生物多样性的一种替代施肥策略。然而,关于土壤细菌群落和土壤养分对粪肥和化肥施用的复杂反应,人们了解甚少。本研究报告了连续两年施用粪肥和化肥后土壤养分、水稻产量和土壤微生物群落结构的反应。该研究包括六种处理:不施氮肥对照(Neg-Con);100%化肥(Pos-Con);60%牛粪(CM)+40%化肥(高CM);30%CM+70%化肥(低CM);60%家禽粪便(PM)+40%化肥(高PM),以及30%PM+70%化肥(低PM)。我们使用16S核糖体RNA基因扩增子的高通量测序来表征土壤细菌群落。结果表明,添加粪肥显著改变了土壤细菌群落组成和结构;并提高了变形菌门、绿弯菌门、厚壁菌门、酸杆菌门和浮霉菌门的相对丰度。有机肥处理,特别是高CM和PM处理,在所有处理中土壤细菌多样性最高。同样,粪肥和化肥的综合施用提高了土壤生化特性[即pH值、总氮(TN)、土壤有机碳(SOC)、微生物生物量氮(MBN)和微生物生物量碳(MBC)]和水稻籽粒产量。与Pos-Con相比,多年来高PM处理中SOC、TN、MBN和MBC的平均增幅分别为43.66%、31.57%、24.34%和49.45%。冗余分析表明,优势细菌门与土壤pH值、SOC、TN和微生物生物量相关,但变形菌门的相对丰度与土壤pH值、SOC、TN和MBC等环境因素密切相关。我们采用结构方程模型来研究各处理间微生物生物量、土壤养分和籽粒产量之间的关系。该分析支持了以下假设:土壤养分含量和有效性直接影响水稻籽粒产量,而土壤细菌通过微生物生物量生产和养分水平间接影响籽粒产量。总体而言,本研究结果表明,化肥和粪肥的综合施用是改善土壤健康和水稻产量的更好方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/706f/9201382/947b4c857d67/fpls-13-895230-g001.jpg

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