Bacillus subtilis can promote cotton phenotype, yield, nutrient uptake and water use efficiency under drought stress by optimizing rhizosphere microbial community in arid area

IF 6.2 1区 农林科学 Q1 AGRICULTURAL ENGINEERING Industrial Crops and Products Pub Date : 2025-03-05 DOI:10.1016/j.indcrop.2025.120784
Peiqi Ren , Beibei Zhou , Yanpeng Bi , Xiaopeng Chen , Shaoxiong Yao , Xiaolong Yang
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Abstract

Drought severely impacts crop productivity and fertilizer efficiency in arid regions, hindering sustainable agriculture. Enhancing plant drought tolerance and fertilizer efficiency is crucial for adaptation. Bacillus subtilis can improve soil structure and rhizosphere activity, boosting nitrogen utilization and crop yields. This study investigates Bacillus subtilis' potential to mitigate drought stress and enhance cotton growth, aiming to establish a water-bacteria interaction-based irrigation model. Cotton (Tahe 2), the popular variety in local, was selected as the experimental crop, and planted in test pits (3.3 m×2 m×3 m) under varying Bacillus subtilis rates (0 kg·ha⁻¹ and 45 kg·ha⁻¹) and drought stress -levels (H for conventional irrigation, 350 mm and L for 80 % of conventional irrigation, 280 mm). Each treatment has three replicates. The results showed Bacillus subtilis increased soil water retention by 1.07 %-33.08 % and nitrogen use efficiency by 8.94 %-9.28 %. Cotton growth was also improved, with plant height increasing by 6.45 %-10.5 %, stem diameter by 1.2 %-10.5 %, and leaf area index by 5.3 %-6.97 %. Photosynthesis was enhanced, with leaf internal water use efficiency up by 1.02 %-4.21 % and instantaneous water use efficiency by 0.33 %-9.7 %. Yields increased by 8.94 %-9.28 %, and water use efficiency by 5.49 %-19.22 %. Furthermore, bacterial network analysis and the neutral community model revealed that Bacillus subtilis altered the microbial community and rhizosphere environment, increasing the complexity of the bacterial network. This optimized the availability of water and nutrients for root uptake, enhanced the biological utilization of carbon and nitrogen, and supported microbial metabolism and plant growth. These effects reduced the adverse impact of drought stress, alleviated environmental pressures, and fostered a healthier and more sustainable soil ecosystem. In conclusion, combining deficit irrigation (280 mm) with Bacillus subtilis (45 kg·ha⁻¹) can effectively alleviate water scarcity and increase cotton yield in arid regions, providing valuable insights for sustainable agricultural development.
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枯草芽孢杆菌通过优化干旱区根际微生物群落,促进干旱胁迫下棉花的表型、产量、养分吸收和水分利用效率
干旱严重影响了干旱地区的作物生产力和肥效,阻碍了农业的可持续发展。提高植物抗旱性和肥效是适应气候变化的关键。枯草芽孢杆菌可以改善土壤结构和根际活性,提高氮素利用率和作物产量。本研究探讨枯草芽孢杆菌缓解干旱胁迫和促进棉花生长的潜力,旨在建立一个基于水-细菌相互作用的灌溉模型。选择当地流行的棉花(塔河2号)作为试验作物,在不同枯草芽孢杆菌率(0 kg·ha⁻¹和45 kg·ha⁻¹)和干旱水平(H为常规灌溉,350 mm和L为常规灌溉的80 %,280 mm)的试验坑(3.3 m×2 m×3 m)中种植。每个处理有三个重复。结果表明,枯草芽孢杆菌使土壤保水率提高1.07 % ~ 33.08 %,氮素利用效率提高8.94 % ~ 9.28 %。棉株高提高了6.45 % ~ 10.5 %,茎粗提高了1.2 % ~ 10.5 %,叶面积指数提高了5.3 % ~ 6.97 %。光合作用增强,叶片内部水分利用效率提高1.02 % ~ 4.21 %,瞬时水分利用效率提高0.33 % ~ 9.7 %。增产8.94 % ~ 9.28 %,水分利用效率提高5.49 % ~ 19.22 %。此外,细菌网络分析和中性群落模型表明,枯草芽孢杆菌改变了微生物群落和根际环境,增加了细菌网络的复杂性。这优化了根系吸收水分和养分的有效性,提高了碳氮的生物利用,支持了微生物代谢和植物生长。这些效应减少了干旱胁迫的不利影响,缓解了环境压力,促进了更健康、更可持续的土壤生态系统。综上所述,亏缺灌溉(280 mm)与枯草芽孢杆菌(45 kg·ha⁻)相结合可以有效缓解干旱地区的缺水问题,提高棉花产量,为农业可持续发展提供有价值的见解。
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来源期刊
Industrial Crops and Products
Industrial Crops and Products 农林科学-农业工程
CiteScore
9.50
自引率
8.50%
发文量
1518
审稿时长
43 days
期刊介绍: Industrial Crops and Products is an International Journal publishing academic and industrial research on industrial (defined as non-food/non-feed) crops and products. Papers concern both crop-oriented and bio-based materials from crops-oriented research, and should be of interest to an international audience, hypothesis driven, and where comparisons are made statistics performed.
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