• ISSN 1008-505X
  • CN 11-3996/S
WANG Yu-yao, WEI Zhong, XU Yang-chun, SHEN Qi-rong. Dissolving capacity of phosphate dissolving bacteria strains combination and their effects on corn growth[J]. Journal of Plant Nutrition and Fertilizers, 2017, 23(1): 262-268. DOI: 10.11674/zwyf.16087
Citation: WANG Yu-yao, WEI Zhong, XU Yang-chun, SHEN Qi-rong. Dissolving capacity of phosphate dissolving bacteria strains combination and their effects on corn growth[J]. Journal of Plant Nutrition and Fertilizers, 2017, 23(1): 262-268. DOI: 10.11674/zwyf.16087

Dissolving capacity of phosphate dissolving bacteria strains combination and their effects on corn growth

More Information
  • Received Date: March 06, 2016
  • Accepted Date: May 09, 2016
  • Objectives This study choose 4 different strains of Pseudomonas fluorescens(gram-negative bacteria), respectively as CHA0, F113, Phl1c2 and PF5, and one gram-positive bacterium, Bacillus megaterium X14, as phosphate solubilizing bacteria (PSB) to verify how bacteria helps dissolving phosphate to improve the growth of corn.
    Methods Soluble phosphate content in each single and double strains of PSB incubated solution was measured to compare the solubization of each strain and combination. Dry weight, height and total phosphorus content of potted corn samples were examined to evaluate the solvency rate of insoluble phosphorus source Ca3(PO4)2and colonization of different single and double strains PSB solution.
    Results 1) Under NBRIP broth growth condition, after single strain inoculated, any of the 4 G- bacteria (Pseudomonas fluorescens CHA0, F113, Phl1c2, PF5) solution dissolved much more phosphate than G+ bacteria (Bacillus megaterium X14). The combination of any two G- bacteria solution showed higher phosphate dissolving than combination with any one G- bacterium and the G+ bacterium combination. 2) There were no significant differences of phosphate solubilizing and plant healthy if corn growth in pot under greenhouse, regardless which single strain was inoculated. 3) The corn inoculated with a double strains with the G+ bacteria (Bacillus megateriumX14) and any one of the G- bacteria (Pseudomonas fluorescen) strains showed higher phosphate absorption and more healthy growth than any of 2 G- bacteria strains combination.
    Conclusions In conclusion, G+ and G- bacteria combination inoculation helps to absorb more phosphate in potted corn growth even the same solution showed less effective to dissolved phosphate in laboratory NBRIP condition. The laboratory absorption experiment should not be the only indicator to select PSB strains. Consideration of both laboratory absorption and potted growth experiments should provide more information for application.
  • [1]
    Rodríguez H, Fraga R. Phosphate solubilizing bacteria and their role in plant growth promotion[J]. Biotechnology Advances, 1999, 17(4-5):319-339. DOI: 10.1016/S0734-9750(99)00014-2
    [2]
    赵小蓉,林启美,孙焱鑫,等. 玉米根际与非根际解磷细菌的分布特点[J]. 生态学杂志,2001, 20(6):62-64. http://www.cnki.com.cn/Article/CJFDTOTAL-STXZ200106015.htm

    Zhao X R, Lin Q M, Sun Y X, et al. Phosphobacteria distribution in rhizophere and nonrhizosphere soil of corn[J]. Chinese Journal of Ecology, 2001, 20(6):62-64. http://www.cnki.com.cn/Article/CJFDTOTAL-STXZ200106015.htm
    [3]
    Zou X M, Binkley D, Doxtader K G. A new method for estimating gross phosphorus mineralization and immobilization rates in soils[J]. Plant and Soil, 1992, 147(2):243-250. DOI: 10.1007/BF00029076
    [4]
    [5]
    Bagyaraj D J, Krishnaraj P U, Khanuja S P S. Mineral phosphate solubilization:Agronomic implications, mechanism and molecular genetics[J]. Proceedings of the Indian National Science Academy, 2000, 66(2-3):69-82.
    [6]
    Holford I C R. Soil phosphorus:its measurement and its uptake by plants[J]. Australian Journal of Soil Research, 1997, 35(2):227-239. DOI: 10.1071/S96047
    [7]
    张学军, 孙权, 陈晓群, 等. 不同类型菜田和农田土壤磷素状况研究[J]. 土壤, 2005, 37(6):649-654. http://www.cnki.com.cn/Article/CJFDTOTAL-TURA200506013.htm

    Zhang X J, Sun Q, Chen X Q et al. Fractions of phosphorus in vegetable soils and farrmland soils[J]. Soils, 2005, 37(6):649-654. http://www.cnki.com.cn/Article/CJFDTOTAL-TURA200506013.htm
    [8]
    Hameeda B, Harini G, Rupela O P, et al. Growth promotion of maize by phosphate-solubilizing bacteria isolated from composts and macrofauna[J]. Microbiological Research, 2008, 163(2):234-242. DOI: 10.1016/j.micres.2006.05.009
    [9]
    龚明波, 范丙全, 金振国, 等. 适应玉米生产的溶磷真菌筛选及其应用[J]. 微生物学报, 2010, 50(12):1619-1625. http://www.cnki.com.cn/Article/CJFDTOTAL-WSXB201012010.htm

    Gong M B, Fan B Q, Jin Z G, et al. Screening and application of phosphate-dissolving microorganism suitable for corn production[J]. Acta Microbiologica Sinica, 2010, 50(12):1619-1625. http://www.cnki.com.cn/Article/CJFDTOTAL-WSXB201012010.htm
    [10]
    Fernández L A, Zalba P, Gómez M A, et al. Phosphate-solubilization activity of bacterial strains in soil and their effect on soybean growth under greenhouse conditions[J]. Biology and Fertility of Soils, 2007, 43(6):805-809. DOI: 10.1007/s00374-007-0172-3
    [11]
    Rodríguez H, Fraga R, Gonzalez T, et al. Genetics of phosphate solubilization and its potential applications for improving plant growth promoting bacteria[J]. Plant and Soil, 2006, 287(1-2):15-21. DOI: 10.1007/s11104-006-9056-9
    [12]
    曹鹏, 贺纪正. 微生物生态学理论框架初探[J]. 生态学报, 2015, 35(22):7263-7273. http://www.cnki.com.cn/Article/CJFDTOTAL-STXB201522001.htm

    Cao P, He J Z. A preliminary theoretical framework of microbial ecology[J]. Acta Ecologica Sinica, 2015, 35(22):7263-7273. http://www.cnki.com.cn/Article/CJFDTOTAL-STXB201522001.htm
    [13]
    刘江, 黄学跃, 李天飞, 等. VA菌根真菌与根瘤菌和溶磷菌双接种对烟苗生长的影响[J]. 烟草科技, 2000, (2):43-44. http://www.cnki.com.cn/Article/CJFDTOTAL-YCKJ200002022.htm

    Liu J, Huang X Y, Li T F, et al. Influence of dual inoculation of VA mycorrihizal fungus and phosphorus dissolving bacteria and rhizobia on the growth of tobacco seedlings[J]. Tobacco Science & Technology, 2000, (2):43-44. http://www.cnki.com.cn/Article/CJFDTOTAL-YCKJ200002022.htm
    [14]
    李玉娥, 姚拓, 荣良燕. 溶磷菌溶磷和分泌IAA特性及对苜蓿生长的影响[J]. 草地学报, 2010, 18(1):84-88. http://www.cnki.com.cn/Article/CJFDTOTAL-CDXU201001018.htm

    Li Y E, Yao T, Rong L Y. Characteristics of IAA secretion and phosphate dissolving of phosphate-solubilizing bacteria and its effect on alfalfa growth[J]. Acta Agrestia Sinica, 2010, 18(1):84-88. http://www.cnki.com.cn/Article/CJFDTOTAL-CDXU201001018.htm
    [15]
    Nautiyal C S. An efficient microbiological growth medium for screening phosphate solubilizing microorganisms[J]. FEMS Microbiology Letters, 1999, 170(1):265-270. DOI: 10.1111/fml.1999.170.issue-1
    [16]
    胡晓峰, 郭晋云, 张楠, 等. 一株溶磷抑病细菌的筛选及其溶磷特性[J]. 中国农业科学, 2010, 43(11):2253-2260. http://www.cnki.com.cn/Article/CJFDTOTAL-ZNYK201011010.htm

    Hu X F, Guo J Y, Zhang N, et al. Screening of a phosphate solubilizing and disease inhibiting bacteria strain and studies on its P-solubilizing characteristics[J]. Scientia Agricultura Sinica, 2010, 43(11):2253-2260. http://www.cnki.com.cn/Article/CJFDTOTAL-ZNYK201011010.htm
    [17]
    [18]
    Harris J N, New P B, Martin P M. Laboratory tests can predict beneficial effects of phosphate-solubilising bacteria on plants[J]. Soil Biology and Biochemistry, 2006, 38(7):1521-1526. DOI: 10.1016/j.soilbio.2005.11.016
    [19]
    Kamilova F, Validov S, Azarova T, et al. Enrichment for enhanced competitive plant root tip colonizers selects for a new class of biocontrol bacteria[J]. Environmental Microbiology, 2005, 7(11):1809-1817. DOI: 10.1111/emi.2005.7.issue-11
    [20]
    Tan S Y, Yang C L, Mei X L, et al. The effect of organic acids from tomato root exudates on rhizosphere colonization of Bacillus amyloliquefaciens T-5[J]. Applied Soil Ecology, 2013, 64:15-22. DOI: 10.1016/j.apsoil.2012.10.011
    [21]
    Ling N, Raza W, Ma J H, et al. Identification and role of organic acids in watermelon root exudates for recruiting Paenibacillus polymyxa SQR-21 in the rhizosphere[J]. European Journal of Soil Biology, 2011, 47(6):374-379. DOI: 10.1016/j.ejsobi.2011.08.009
    [22]
    Lugtenberg B J J, Dekkers L, Bloemberg G V. Molecular determinants of rhizosphere colonization by Pseudomonas[J]. Annual Review of Phytopathology, 2001, 39:461-490. DOI: 10.1146/annurev.phyto.39.1.461
    [23]
    Bais H P, Weir T L, Perry L G, et al. The role ofroot exudates in rhizosphere interactions with plants and other organisms[J]. Annual Review of Plant Biology, 2006, 57:233-266. DOI: 10.1146/annurev.arplant.57.032905.105159
    [24]
    张小兰. 根际高效溶磷菌的筛选及其适应根际的机理研究[D]. 南京:南京农业大学硕士学位论文, 2014.

    Zhang X L. Screening of rhizosphere efficient phosphate solubilizing bacteria and its mechanisms suitable for the rhizosphere[D]. Nanjing:MS thesis of Nanjing Agricultural University, 2014.
    [25]
    张小兰, 韦中, 梅新兰, 等. 一种基于根际定殖能力筛选溶磷菌的方法[J]. 南京农业大学学报, 2014, 37(2):79-84. http://www.cnki.com.cn/Article/CJFDTOTAL-NJNY201402014.htm

    Zhang X L, Wei Z, Mei X L, et al. A method for screening phosphate solubilizing bacteria based on the rhizosphere colonization ability of strains[J]. Journal of Nanjing Agricultural University, 2014, 37(2):79-84. http://www.cnki.com.cn/Article/CJFDTOTAL-NJNY201402014.htm
    [26]
    吕德国, 于翠, 秦嗣军, 等. 本溪山樱根部解磷细菌的定殖规律及其对植株生长发育的影响[J]. 中国农业科学, 2008, 41(2):508-515. http://www.cnki.com.cn/Article/CJFDTOTAL-ZNYK200802026.htm

    Lü D G, Yu C, Qin S J, et al. Colonization regulation pattern of phosphobacteria and its effect on the growth and development of cerasus sachalinensis[J]. Scientia Agricultura Sinica, 2008, 41(2):508-515. http://www.cnki.com.cn/Article/CJFDTOTAL-ZNYK200802026.htm
  • Related Articles

    [1]LI Zhao-jun, YANG Jia-jia, FAN Fei-fei, HOU Yun-peng, XIE Jia-gui, LIANGYong-chao. Effect of plastic film mulching on dry mass accumulation and phosphorus uptake of corn receiving different fertilizers[J]. Journal of Plant Nutrition and Fertilizers, 2011, 17(3): 571-577. DOI: 10.11674/zwyf.2011.9370
    [2]WANG Lei, BAI You-lu, LU Yan-li, WANG He, YANG Li-ping. Nitrogen Nutrition Diagnosis for Corn Based on Spectral Analysis[J]. Journal of Plant Nutrition and Fertilizers, 2011, 17(2): 333-340. DOI: 10.11674/zwyf.2011.0216
    [3]KONG Fan-mei, SHI Yan-xi, LIN Ai-jun. Effects of arbuscular mycorhizal fungus on remediation of pyrene contaminated soil by corn with different phosphorus concentration[J]. Journal of Plant Nutrition and Fertilizers, 2009, 15(1): 127-132. DOI: 10.11674/zwyf.2009.0118
    [4]WANG Lin-xue, YANG Yi, LIU Bang-yin, YANG Li-jun, YANG Jian-hong. Study on measuring parts and combined diagnosis methods for N and P of fresh corn[J]. Journal of Plant Nutrition and Fertilizers, 2008, 14(6): 1212-1218. DOI: 10.11674/zwyf.2008.0629
    [5]GUO Jian-hua, WANG Xiu, MENG Zhi-jun, ZHAO Chun-jiang, YU Zhen-rong, CHEN Li-ping. Study on diagnosing nitrogen nutrition status of corn using Greenseeker and SPAD Meter[J]. Journal of Plant Nutrition and Fertilizers, 2008, 14(1): 43-47. DOI: 10.11674/zwyf.2008.0107
    [6]SONG Shang-you, WANG Yong, FAN Ting-lu, GAO Yu-feng, TANG Xiao-ming, LI Shang-zhong. Effect of nitrogen fertilizer on grain yield,quality and water use efficiency of corn in dryland of Loess Plateau[J]. Journal of Plant Nutrition and Fertilizers, 2007, 13(3): 387-392. DOI: 10.11674/zwyf.2007.0306
    [7]LIU Xiao-yan, JIN Ji-yun, HE Ping, LIU Hai-long, LI Wen-juan. Preliminary study on the relation between potassium chloride suppressing corn stalk rot and soil microorganism characteristics[J]. Journal of Plant Nutrition and Fertilizers, 2007, 13(2): 279-285. DOI: 10.11674/zwyf.2007.0216
    [8]WANG De-han, PENG Jun-jie, XIAO Xiong-shi, LIAO Zong-wen. Using papermaking alkaline lignin to produce zinc lignosulfonate and its effect on corn growth[J]. Journal of Plant Nutrition and Fertilizers, 2004, 10(1): 78-81. DOI: 10.11674/zwyf.2004.0115
    [9]LI Yang, CAO Cui, SHAO Ming. Effects of nitrogen stress on root radial and axial hydraulic conductivity of corn[J]. Journal of Plant Nutrition and Fertilizers, 2002, 8(2): 192-196. DOI: 10.11674/zwyf.2002.0212
    [10]HUANG Gao bao, ZHANG En he, HU Heng jue. Eco-physiological mechanism on nitrogen use efficiency difference of corn varieties[J]. Journal of Plant Nutrition and Fertilizers, 2001, 7(3): 293-297. DOI: 10.11674/zwyf.2001.0308
  • Cited by

    Periodical cited type(24)

    1. 郑喜清,胡静一,邸娜. 3株有机磷降解菌的促生特性及其对番茄种子萌发的影响. 江苏农业科学. 2024(05): 170-177 .
    2. 谢宇星,郭祁,毕欢博,王复标,郑卓,王莉莉,贺卫东,孙惠敏. 火龙果根际高效解磷菌的筛选. 中南农业科技. 2024(04): 27-30 .
    3. 万水霞,李帆,王静,郭志彬,喻颖,蒋光月,武际. 溶磷菌剂对玉米幼苗生长及根际土壤细菌群落结构和磷素形态的影响. 中国土壤与肥料. 2024(02): 80-88 .
    4. 陈详腾,魏书蒙,焦如珍,董玉红. 乌汶伯克霍尔德菌P5和格氏假单胞菌RP22促杉木生长机制探究. 林业科学研究. 2024(05): 33-45 .
    5. 刘耀辉,盛可银,罗建荣,郑淇元,王菲,修玉冰,张玉文,胡冬南,张文元. 溶磷菌混施对土壤微生物群落及毛竹生长的影响. 江西农业大学学报. 2023(02): 298-310 .
    6. 温佳旭,陈雪丽,肖洋,万书明,孙磊,方海瑞. 土壤中主要溶磷菌种类及其作用机制. 北方园艺. 2023(14): 139-145 .
    7. 刘英杰,张丽红,张宏,兰波,吕江涛,陈光,王禄山,刘正学. 溶磷微生物在土壤磷循环中的作用研究进展. 微生物学通报. 2023(08): 3671-3687 .
    8. 张盈盈,安晓霞,马春晖,张前兵. 解磷细菌与磷肥耦合提高苜蓿生长及光合性能. 中国草地学报. 2023(11): 43-51 .
    9. 范延辉,王君,尚帅,李学平,张玉苗,吴涛. 两株根际真菌的耐盐、溶磷、促生效果及其分类鉴定. 土壤通报. 2022(01): 127-134 .
    10. 王君,范延辉,尚帅,李学平,张玉苗,吴涛,许骥坤. 一株根际解磷菌的筛选鉴定及溶磷促生作用. 中国土壤与肥料. 2022(06): 195-203 .
    11. 蔺宝珺,杨文权,赵帅,柴港宁,鱼杨华,武燕茹,韩显忠,李希来,寇建村. 高寒草甸植物根际溶磷菌的筛选鉴定及其溶磷与促生效果. 草地学报. 2022(11): 3132-3139 .
    12. 李宁,王珊珊,马丽丽,刘耀辉,修玉冰,李新华,项国栋,胡冬南,郭晓敏,张文元. 两株高效溶磷菌的溶磷能力及其对玉米生长和红壤磷素形态的影响. 植物营养与肥料学报. 2021(02): 275-283 . 本站查看
    13. 李青梅,陆秀君,张敏硕,刘文菊,李博文. 微生物菌剂和生根粉对甜瓜产量和土壤生态效应的影响. 北方园艺. 2020(07): 100-105 .
    14. 栗丽,李廷亮,孟会生,洪坚平,谢英荷. 溶磷菌剂对施磷复垦土壤无机磷形态及油菜磷吸收的影响. 应用与环境生物学报. 2020(03): 612-618 .
    15. 吕俊,潘洪祥,于存. 马尾松根际溶磷细菌Paraburkholderia sp.的筛选、鉴定及溶磷特性研究. 生物技术通报. 2020(09): 147-156 .
    16. 何迪,赵全利,耿丽平,李芠瑾,董纯瑄,刘文菊. 草酸青霉菌HB1活化土壤磷及改善土壤生物学性状研究. 华北农学报. 2019(01): 172-180 .
    17. 刘军生,解修超,罗阳兰,邓百万,柏秋月,燕孟琛,白星. 抗镉内生细菌阿耶波多氏芽孢杆菌的分离鉴定及生物学特性. 生物技术通报. 2019(02): 64-72 .
    18. 刘军生,罗阳兰,解修超,邓百万,柏秋月,曹乃馨,张毓文. 抗镉植物内生真菌的筛选及其促生能力研究. 河南农业科学. 2019(03): 61-69 .
    19. 朱诗君,金树权,王丽丽,汪峰,沈安余. 微生物肥料在农业生产上的应用研究进展. 宁波农业科技. 2019(01): 28-30 .
    20. 曾齐,王继华,隋海潮,车琦,张必弦,刘秀林. 大豆根际溶磷真菌的筛选、复配及包埋固定化回用效果. 分子植物育种. 2019(10): 3353-3363 .
    21. 孙艳梅,张前兵,苗晓茸,刘俊英,于磊,马春晖. 解磷细菌和丛枝菌根真菌对紫花苜蓿生产性能及地下生物量的影响. 中国农业科学. 2019(13): 2230-2242 .
    22. 乔志伟. 溶磷真菌的筛选及配施难溶态磷对土壤磷素有效性的影响. 水土保持学报. 2019(05): 329-333 .
    23. 王晓朋,胡坤,童晨晓,朱巧莲,黄昭昶,毛艳玲. 猪粪与菌剂配施对山地红壤温室气体排放的影响. 福建农业学报. 2019(11): 1323-1331 .
    24. 李诗娟,宋祖文,王丽,黄仲华,盛玉珍,金开铭,张玲,徐磊. 核桃根际溶磷菌的筛选. 四川林业科技. 2018(04): 22-25+53 .

    Other cited types(16)

Catalog

    Article views (1922) PDF downloads (674) Cited by(40)

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return