
光合细菌与尿素联合施用对土壤理化性质和酶活性及水稻产量和加工品质的影响
第一作者:zzq086@163.com
收稿日期: 2021-07-14
网络出版日期: 2021-09-20
基金资助
新疆维吾尔族自治区科技支疆项目(2019E0252);新疆农业科学院公益性基本科研业务项目(XJGYX2019-20);新疆农业科学院科技创新重点培育专项(xjkcpy-2020005);新疆维吾尔族自治区重点实验室项目(2019D04019)
Effects of Combined Application of Photosynthetic Bacteria and Urea on Soil Physical and Chemical Properties, Enzyme Activities, and Rice Yield and Processing Quality
1st author: zzq086@163.com
Received date: 2021-07-14
Online published: 2021-09-20
以新粳伊7号为试验材料,设置6个处理(T1,尿素施用量0+光合细菌54 kg/667 m2;T2,尿素施用量25 kg/667 m2+光合细菌54 kg/667 m2;T3,尿素施用量30 kg/667 m2+光合细菌54 kg/667 m2;T4,尿素施用量35 kg/667 m2+光合细菌54 kg/667 m2;T5,尿素施用量40 kg/667 m2+光合细菌54 kg/667 m2;CK,不添加尿素、光合细菌),研究了光合细菌单独施用及与尿素联合施用对水稻农艺性状、产量和稻米品质的影响。结果表明,与CK相比,T1处理土壤有机质含量显著升高,而总磷含量显著下降;T1处理土壤尿酶和硝酸还原酶活性显著下降,而亚硝酸还原酶活性显著升高;T1处理水稻产量较CK显著增产5.19%。随尿素用量增加,土壤各因子含量下降,其中,T3、 T4处理的硝态氮、有机质含量显著高于T1、T2和T5处理;随尿素用量增加,土壤脲酶活性呈现出极显著线性增长趋势,亚硝酸还原酶和硝酸还原酶活性先降低后上升,但处理间差异均不显著;随尿素用量增加,水稻穗长、株高、产量和整精米率呈线性增加趋势,而精米率先上升后降低。Pearson相关分析显示,尿素和硝态氮与脲酶活性呈极显著或显著正相关,氨态氮与硝酸还原酶活性呈显著正相关。多因子相关分析显示,尿素为土壤酶活性的主要影响因素。土壤酶活性对水稻农艺性状、产量和稻米品质起主要影响作用。综上,单一使用光合细菌或者与尿素联合施用能够显著激活土壤氮转化酶活性,从而改善水稻农艺性状,促进产量增加和加工品质提升。
赵志强, 文孝荣, 高雁, 李玉国, 史应武, 杨红梅, 曾军, 王奉斌 . 光合细菌与尿素联合施用对土壤理化性质和酶活性及水稻产量和加工品质的影响[J]. 中国稻米, 2021 , 27(5) : 105 -110 . DOI: 10.3969/j.issn.1006-8082.2021.05.023
Six treatments were set to study the effects of photosynthetic bacteria (PSB) alone and in combination with urea on soil physical and chemical properties, enzyme activities, and the agronomic traits, yield and quality of rice Xingengyi 7. The six treatments are: T1, urea 0 kg/667 m2+ PSB 54 kg/667 m2; T2, urea 25 kg/667 m2+ PSB 54 kg/667 m2; T3, urea 30 kg/667 m2+ PSB 54 kg/667 m2; T4, urea 35 kg/667 m2+ PSB 54 kg/667 m2; T5, urea 40 kg/667 m2+ PSB 54 kg kg/667 m2; CK, urea 0 kg/667 m2+ PSB 0 kg/667 m2. The results showed that compared with CK, the soil organic carbon content of T1 treatment increased significantly, while total phosphorus content decreased significantly; the soil urease and nitrate reductase activities of T1 treatment decreased significantly, while the activity of nitrite reductase increased significantly; the rice yield of T1 treatment increased significantly, 5.19% higher than that of CK. With the increase of urea dosage, various factors in the soil decreased. Among them, the contents of nitrate nitrogen and organic matter in the T3 and T4 treatments were significantly higher than those in the T1, T2 and T5 treatments. With the increase of urea dosage, soil urease activity showed a very significant linear growth trend, nitrite reductase and nitrate reductase activities first decreased and then increased, but the difference between treatments was not significant. With the increase of urea dosage, rice panicle length, plant height, yield and head rice rate showed a linear increase trend, while the milled rice rate first increased and then decreased. Pearson correlation analysis showed that urea and nitrate nitrogen had a very significant or significant positive correlation with urease activity, and ammonia nitrogen content had a significant positive correlation with nitrate reductase activity. Multi-factor correlation analysis showed that urea was the main influencing factor in soil enzyme activity. Soil enzyme activities play a major role in the agronomic traits, yield and quality of rice. In summary, the application of PSB on its own or combined with urea could significantly activate the soil enzymes involved in nitrogen transformation, thereby promoting the increase in yield and processing quality of rice.
Key words: rice; photosynthetic bacteria; urea; soil enzyme activity; yield; processing quality
| [1] | 禇光,陈松,徐春梅,等. 我国水稻栽培技术的研究进展及展望[J]. 中国稻米,2019,25(5):5-7. |
| [2] | 白志刚. 氮肥运筹对水稻氮代谢及稻田氮肥利用率的影响[D]. 北京:中国农业科学院,2019. |
| [3] | 刘丹,孙玉友,柴永山,等.水稻氮高效基因型筛选及相关基因研究进展[J]. 中国种业,2018(10):18-21. |
| [4] | 李如楠. 降低水稻生产碳足迹和增产增收的水氮优化管理研究[D]. 沈阳:沈阳农业大学,2019. |
| [5] | 柯健. 氮肥种类和施肥方式对水稻产量及氮素去向的影响[D]. 南京:南京农业大学,2017. |
| [6] | 肖雪玉. 施用控释氮肥对稻田水体氮素行为及水稻产量的影响[D]. 沈阳:沈阳农业大学,2018. |
| [7] | 沈鹏程. 水稻适宜光谱指标动态与追氮时期调控因子模型研究[D]. 南京:南京农业大学,2018. |
| [8] | 李然,蔡威威,艾天成,等. 稻田氨挥发损失和水稻产量对不同水氮处理的响应[J]. 中国土壤与肥料,2020(3):47-54. |
| [9] | 王秋菊,崔战利,张少良,等. 光合细菌在水稻上的施用方法及作用机理研究[J]. 中国农学通报,2006,22(1):176-178. |
| [10] | 何云辉. 光合细菌的培养及其对土壤肥力的影响[D]. 成都:四川师范大学,2014. |
| [11] | 符菁,赵远,赵利华,等. 基于光合菌剂的复合微生物菌肥对水稻产量及土壤酶活性的影响[J]. 西南农业学报,2019,32(10):2 330-2 336. |
| [12] | XIAO X, ZHAO Y, ZHOU Q, et al. Alleviating the cadmium toxicity and growth-promotion in paddy rice by photosynthetic bacteria[J]. Clean-Soil, Air, Water, 2019, 47(3):1 800 382. |
| [13] | 李晶. 光合细菌J1对稻苗土壤供氮水平及相关因子的影响[D]. 沈阳:沈阳农业大学,2018. |
| [14] | ZENG J, WANG J T, ZHANG L M, et al.Impacts of projected climate warming and wetting on soil microbial communities in alpine grassland ecosystem on the Tibetan plateau[J]. Microbial Ecology, 2018, 4(75): 1 009-1 023. |
| [15] | TEIBA I, OKUNISHI S, YOSHIKAWA T, et al.Use of purple non-sulfur photosynthetic bacteria (Rhodobacter sphaeroides) in promoting ciliated protozoa growth[J]. Biocontrol Science, 2020, 25(2): 81-89. |
| [16] | LU H F, ZHANG G M, HE S. c, et al. Production of photosynthetic bacteria using organic wastewater in photobioreactors in lieu of a culture medium in fermenters: From lab to pilot scale[J]. Journal of Cleaner Production, 2020, 259: 120 871. |
| [17] | 李丽娜. 光合细菌对花生连作土壤的调理作用[D]. 沈阳:沈阳农业大学,2016. |
| [18] | 蒋东,章力干,齐永波,等. 增效复合肥减氮施用对稻田水氮素流失的影响[J]. 农业环境科学学报, 2020,39(6):1 342-1 350. |
| [19] | 刘珍珠,樊振,刘欢欢,等. 枯草芽孢杆菌的筛选及其与光合细菌复配对养殖水体的净化[J]. 江苏农业科学,2020,48(6):164-167. |
| [20] | ZENG J, LOU K, ZHANG C J, et al.Primary succession of nitrogen cycling microbial communities along the deglaciated forelands of Tianshan Mountain, China[J]. Frontiers in Microbiology, 2016, 7: 1 353. |
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