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[1]管冠,郭富鹏,郭等等,等.生草栽培对赣南脐橙土壤生物学性质及根系分泌物的影响[J].江苏农业科学,2023,51(11):202-212.
 Guan Guan,et al.Effects of raw grass cultivation on soil biological properties and root exudation of Gannan navel orange[J].Jiangsu Agricultural Sciences,2023,51(11):202-212.
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生草栽培对赣南脐橙土壤生物学性质及根系分泌物的影响(PDF)
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《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第51卷
期数:
2023年第11期
页码:
202-212
栏目:
资源与环境
出版日期:
2023-06-05

文章信息/Info

Title:
Effects of raw grass cultivation on soil biological properties and root exudation of Gannan navel orange
作者:
管冠郭富鹏郭等等张思
赣南师范大学生命科学学院/国家脐橙工程技术研究中心,江西赣州 341000
Author(s):
Guan Guanet al
关键词:
生草栽培脐橙土壤微生物土壤酶根系分泌物
Keywords:
-
分类号:
S666.404
DOI:
-
文献标志码:
A
摘要:
为明确赣南脐橙土壤生物学性质及其根系分泌物对生草栽培的响应机制,以赣南脐橙土壤为研究对象,设计盆栽试验围绕土壤微生物、土壤酶及根系等开展研究,按生草方式,共设置清耕(CK)、无分隔(T1)、尼龙袋分隔(T2)、塑料盆分隔(T3)4个处理,对土壤微生物、土壤酶以及根系分泌物进行测定分析。结果表明,随着试验时间的增加,无分隔(T1)、尼龙袋分隔(T2)、塑料盆分隔(T3)处理较清耕(CK)处理可不同程度提高土壤的微生物数量,且无分隔(T1)、尼龙袋分隔(T2)处理大都高于塑料盆分隔(T3)处理。生草栽培下脐橙土壤酶活性亦表现出相同的趋势,生草模式可不同程度提高土壤酶活性,且对根际土影响较大。生草栽培下无分隔(T1)处理脐橙根系分泌物的种类较清耕(CK)处理多,相对丰度大都较其他处理高,且与其他处理有明显差别。相关性分析结果表明土壤生物学指标大都与脐橙根系分泌物呈正相关。综上,与清耕(CK)相比,生草栽培有助于增加土壤的微生物数量,提升土壤酶活性,提升脐橙根系分泌物种类及增加丰度,且无分隔(T1)、尼龙袋分隔(T2)处理效果最佳。
Abstract:
-

参考文献/References:

[1]马晓燕,席琳乔,韩路,等. 生草栽培对南疆枣园土壤水盐运移的影响[J]. 中国果树,2021(3):71-76.
[2]李先明,秦仲麒,刘先琴,等. 生草对梨园微域生态环境及果实品质的影响[J]. 河南农业科学,2010,39(1):92-95.
[3]张朋朋,王小丫,陶书田,等. 果园生草栽培年限对库尔勒香梨果实形态特征和品质的影响[J]. 北方园艺,2021(22):22-28.
[4]付学琴,杨星鹏,陈登云,等. 南丰蜜橘果园生草栽培对土壤团聚体和有机碳特征及果实品质的影响[J]. 园艺学报,2020,47(10):1905-1916.
[5]林先贵. 土壤微生物研究原理与方法[M]. 北京:高等教育出版社,2010.
[6]吕德国,赵新阳,马怀宇,等. 覆草对苹果园土壤养分和微生物的影响[J]. 贵州农业科学,2010,38(6):104-107.
[7]李春宏,殷剑美,王立,等. 连作对芋头根际土壤理化性状和微生物特性的影响[J]. 江苏农业学报,2019,35(4):825-833.
[8]王倩,安贵阳,李世芳,等. 不同覆盖模式对旱地苹果园土壤养分、微生物和酶活性的影响[J]. 西北农业学报,2015,24(7):69-74.
[9]王胜永,李宝辉,赵林,等. 生草对黄淮地区苹果园土壤理化性质和微生物的影响[J]. 北方园艺,2021(4):87-92.
[10]管冠,何天养,朱婧,等. 生草栽培对赣南地区晚棱脐橙土壤酶活性及微生物种群的影响[J]. 江苏农业科学,2017,45(17):141-143.
[11]陈青林. 传统与新型污染物对土壤生物学过程及土壤微生物影响的研究[D]. 济南:济南大学,2015.
[12]杨万勤,王开运. 土壤酶研究动态与展望[J]. 应用与环境生物学报,2002,8(5):564-570.
[13]丁亚鹏. 黄河下游典型悬河段滩区和背河洼地土壤酶活性特征及驱动机制[D]. 开封:河南大学,2020.
[14]Bowles T M,Acosta-Martínez V,Calderón F,et al. Soil enzyme activities,microbial communities,and carbon and nitrogen availability in organic agroecosystems across an intensively-managed agricultural landscape[J]. Soil Biology and Biochemistry,2014,68:252-262.
[15]魏倩倩,寇建村,李尚玮,等. 苹果园覆盖白三叶对土壤微生物和营养特性的影响[J]. 草地学报,2016,24(3):544-552.
[16]Zheng W,Gong Q L,Zhao Z Y,et al. Changes in the soil bacterial community structure and enzyme activities after intercrop mulch with cover crop for eight years in an orchard[J]. European Journal of Soil Biology,2018,86:34-41.
[17]王元基. 覆盖模式下黄土高原苹果园土壤质量提升效应的微生物学机制[D]. 杨凌:西北农林科技大学,2020.
[18]Wang Y J,Liu L,Yang J F,et al. The diversity of microbial community and function varied in response to different agricultural residues composting[J]. Science of the Total Environment,2020,715:136983.
[19]庄姗. 模拟根系分泌物对土壤N2O排放的影响[D]. 北京:中国农业科学院,2020.
[20]Badri D V,Vivanco J M. Regulation and function of root exudates[J]. Plant,Cell & Environment,2009,32(6):666-681.
[21]孙颖,李江,雷小林,等. 胡颓子根系分泌物中潜在化感物质分析[J]. 中南林业科技大学学报,2020,40(3):8-12,52.
[22]Guo T R,Zhang G P,Zhou M X,et al. Influence of aluminum and cadmium stresses on mineral nutrition and root exudates in two barley cultivars[J]. Pedosphere,2007,17(4):505-512.
[23]谢明吉,严重玲,叶菁. 菲对黑麦草根系几种低分子量分泌物的影响[J]. 生态环境,2008,17(2):576-579.
[24]Zeng F R,Chen S,Miao Y,et al. Changes of organic acid exudation and rhizosphere pH in rice plants under chromium stress[J]. Environmental Pollution,2008,155(2):284-289.
[25]闫芳芳. 果园生草的生态效益及化感作用研究[D]. 福州:福建农林大学,2007.
[26]宋亮,潘开文,王进闯,等. 酚酸类物质对苜蓿种子萌发及抗氧化物酶活性的影响[J]. 生态学报,2006,26(10):3393-3403.
[27]Wallenstein M D,McMahon S K,Schimel J P. Seasonal variation in enzyme activities and temperature sensitivities in Arctic tundra soils[J]. Global Change Biology,2009,15(7):1631-1639.
[28]German D P,Bittong R A. Digestive enzyme activities and gastrointestinal fermentation in wood-eating catfishes[J]. Journal of Comparative Physiology (B:Biochemical,Systemic,and Environmental Physiology),2009,179(8):1025-1042.
[29]徐丽丽,王秋兵,张心昱,等. 不同施肥处理对红壤丘陵区水稻土养分状况的影响[J]. 自然资源学报,2012,27(11):1890-1898.
[30]German D P,Weintraub M N,Grandy A S,et al. Optimization of hydrolytic and oxidative enzyme methods for ecosystem studies[J]. Soil Biology and Biochemistry,2011,43(7):1387-1397.
[31]部金凤,邹敬东,张心昱,等. 不同荧光校正方法对土壤水解酶活性测定结果影响的比较研究[J]. 土壤通报,2014,45(3):660-665.
[32]杨琪. 海绵和海鞘中可培养放线菌多样性的比较研究[D]. 厦门:厦门大学,2012.
[33]李灵,张玉,卢晓燕,等. 武夷山市茶园土壤有机质的空间分布特征[J]. 长江大学学报(自然科学版),2019,16(11):60-65,7.
[34]Kong A Y Y,Six J.Tracing root vs.residue carbon into soils from conventional and alternative cropping systems[J]. Soil Science Society of America Journal,2010,74(4):1201-1210.
[35]刘业萍,毛云飞,胡艳丽,等. 苹果园生草对土壤微生物多样性、酶活性及碳组分的影响[J]. 植物营养与肥料学报,2021,27(10):1792-1805.
[36]Marinari S,Bonifacio E,Moscatelli M C,et al. Soil development and microbial functional diversity:proposal for a methodological approach[J]. Geoderma,2013,192:437-445.
[37]Allison S D,Jastrow J D. Activities of extracellular enzymes in physically isolated fractions of restored grassland soils[J]. Soil Biology and Biochemistry,2006,38(11):3245-3256.
[38]刘梦云,常庆瑞,齐雁冰,等. 宁南山区不同土地利用方式土壤酶活性特征研究[J]. 中国生态农业学报,2006,14(3):67-70.
[39]徐雄,张健,张猛,等. 果-草人工生态系统中土壤微生物、土壤酶与土壤养分的关系[J]. 水土保持学报,2005,19(6):178-181.
[40]Zhao Z H,Zhang C Z,Li F,et al. Effect of compost and inorganic fertilizer on organic carbon and activities of carbon cycle enzymes in aggregates of an intensively cultivated Vertisol[J]. PLoS One,2020,15(3):e0229644.
[41]Lemanowicz J,Krzyz·aniak M. Vertical distribution of phosphorus concentrations,phosphatase activity and further soil chemical properties in salt-affected Mollic Gleysols in Poland[J]. Environmental Earth Sciences,2015,74(3):2719-2728.
[42]焦润安,焦健,李朝周. 生草对油橄榄园土壤性质和油橄榄成花生理的影响[J]. 草业学报,2018,27(7):133-144.
[43]李雪丽. 松嫩草地羊草生长对不同演替阶段的土壤水解酶活性和酶化学计量特征的影响[D]. 长春:东北师范大学,2021.
[44]余述. 山地橄榄园生草栽培对土壤理化性状及产量的影响[J]. 中国果树,2014(1):48-50.
[45]李洪兵,赵西宁,王娟,等. 生草和树枝覆盖对果园土壤持水性能的影响[J]. 干旱地区农业研究,2015,33(1):136-141,181.
[46]赵婧. 不同改良措施对红壤全程氨氧化细菌群落组成及功能的影响[D]. 北京:中国农业科学院,2021.
[47]Brockett B F T,Prescott C E,Grayston S J. Soil moisture is the major factor influencing microbial community structure and enzyme activities across seven biogeoclimatic zones in western Canada[J]. Soil Biology and Biochemistry,2012,44(1):9-20.
[48]罗晓蔓,周书宇,杨雪. 植物根系分泌物的分类和作用[J]. 安徽农业科学,2019,47(4):37-39,45.
[49]张欣欣,张爱华,雷锋杰,等. 人参内生细菌F1对人参根系分泌物的化学趋向性响应[J]. 中国中药杂志,2019,44(24):5358-5362.
[50]刘海,韦莉,任永胜,等. 柏木根系分泌物对栾树细根形态及N、P含量的影响[J]. 西北植物学报,2019,39(9):1661-1669.
[51]王璐,陈明霞,邵云,等. 作物根系分泌物对小麦种子萌发及幼苗生长的影响[J]. 河南农业科学,2019,48(1):66-71.

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备注/Memo

备注/Memo:
收稿日期:2022-09-18
基金项目:国家自然科学基金(编号:32260728);江西省重点研发计划重大项目(编号:20192ACB80009);江西省自然科学基金(编号:20202BABL215029)。
作者简介:管冠(1985—),男,湖北黄石人,博士,副教授,主要从事土壤生物学研究。E-mail:guanguan_1985@aliyun.com。
更新日期/Last Update: 2023-06-05