Bacteria isolated from rhizosphere soils of three blueberry varieties affect the growth and development of blueberry seedlings
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    Abstract:

    [Objective] We isolated bacteria from the rhizosphere soils of three blueberry varieties, explored the bacterial diversity, and screened out the strains with acid-producing, plant growth-promoting, and antifungal properties, aiming to provide high-quality strain resources and a theoretical basis for the research on blueberry-specialized microbial fertilizers. [Methods] Five different media were used to isolate the bacteria from rhizosphere soils, and 16S rRNA gene sequencing and phylogenetic analysis were performed. The strains capable of producing acid, indole-3-acetic acid (IAA), and siderophores, fixing nitrogen, solubilizing phosphorus, and inhibiting the growth of Botrytis cinerea were screened out. The suitable strains with excellent properties were selected and then inoculated in blueberry seedlings cultivated in pots. The effects on the growth and element absorption of the seedlings and fertility of rhizosphere soil were examined. [Results] A total of 124 strains were isolated from the rhizosphere soils of three blueberry varieties. Seventy representative strains were selected for 16S rRNA gene sequencing, belonging to 21 genera of 3 phyla, among which Bacillus, Pseudomonas, Streptomyces, and Rhodococcus were the dominant bacteria. Among the representative strains, 21.4%, 21.4%, 47.1%, 65.7%, and 14.3% could produce acids, produce IAA, fix nitrogen, solubilize phosphorus, and secrete siderophores, respectively. A few strains displayed the abilities of producing acids and IAA, fixing nitrogen, solubilizing phosphorus, and inhibiting B. cinerea simultaneously. Pseudomonas chlororaphis CSM-70 and Pseudomonas piscium CSM-129 with acid-producing and growth-promoting characteristics were selected and inoculated in blueberry seedlings. Both strains significantly promoted the growth and development of blueberry seedlings and regulated the pH of the rhizosphere soil. In addition, strain CSM-70 significantly promoted the absorption of nitrogen and phosphorus in blueberry leaves and increased the content of available potassium and available nitrogen in the soil. [Conclusion] The blueberry rhizosphere soil has high bacterial diversity and harbors abundant plant growth-promoting strains. P. chlororaphis CSM-70 and P. piscium CSM-129 can promote the growth of blueberry seedlings, regulate rhizosphere soil pH and fertility, and promote nutrient absorption, demonstrating the potential of serving as blueberry-specific microbial fertilizers.

    Reference
    [1] 李丽敏, 吴林, 郝庆升, 李亚东. 中国蓝莓市场现状及产业发展对策研究[J]. 中国果树, 2011(3):70-73. LI LM, WU L, HAO QS, LI YD. Research on blueberry market status and industrial development countermeasures in China[J]. China Fruits, 2011(3):70-73(in Chinese).
    [2] DUAN YM, TARAFDAR A, CHAURASIA D, SINGH A, BHARGAVA PC, YANG JF, LI ZL, NI XH, TIAN Y, LI HK, AWASTHI MK. Blueberry fruit valorization and valuable constituents:a review[J]. International Journal of Food Microbiology, 2022, 381:109890.
    [3] 尤式备, 徐佳慧, 郭怡文, 廖芳蕾, 杨莉, 陈文荣, 郭卫东. 蓝莓根毛缺失的机制及内生菌根真菌的促生作用[J]. 浙江大学学报(农业与生命科学版), 2020, 46(4):417-427. YOU SB, XU JH, GUO YW, LIAO FL, YANG L, CHEN WR, GUO WD. Mechanism of root hair deficiency and growth-promoting effect of endophytic mycorrhizal fungi in blueberry[J]. Journal of Zhejiang University (Agriculture & Life Sciences Edition), 2020, 46(4):417-427(in Chinese).
    [4] 江勇. 蓝莓绿色生态种植技术[J]. 热带农业工程, 2023, 47(2):91-93. JIANG Y. The green ecological planting technology of blueberry[J]. Tropical Agricultural Engineering, 2023, 47(2):91-93(in Chinese).
    [5] 沈仁芳, 赵学强. 土壤微生物在植物获得养分中的作用[J]. 生态学报, 2015, 35(20):6584-6591. SHEN RF, ZHAO XQ. Role of soil microbes in the acquisition of nutrients by plants[J]. Acta Ecologica Sinica, 2015, 35(20):6584-6591(in Chinese).
    [6] XU ZH, LIU YP, ZHANG N, XUN WB, FENG HC, MIAO YZ, SHAO JH, SHEN QR, ZHANG RF. Chemical communication in plant-microbe beneficial interactions:a toolbox for precise management of beneficial microbes[J]. Current Opinion in Microbiology, 2023, 72:102269.
    [7] QIN S, FENG WW, ZHANG YJ, WANG TT, XIONG YW, XING K. Diversity of bacterial microbiota of coastal halophyte Limonium sinense and amelioration of salinity stress damage by symbiotic plant growth-promoting actinobacterium Glutamicibacter halophytocola KLBMP 5180[J]. Applied and Environmental Microbiology, 2018, 84(19):e01533-18.
    [8] SANGWAN S, PRASANNA R. Mycorrhizae helper bacteria:unlocking their potential as bioenhancers of plant-arbuscular mycorrhizal fungal associations[J]. Microbial Ecology, 2022, 84(1):1-10.
    [9] CHEPSERGON J, MOLELEKI LN. Rhizosphere bacterial interactions and impact on plant health[J]. Current Opinion in Microbiology, 2023, 73:102297.
    [10] BIZABANI C, DAMES J. Effects of inoculating Lachnum and Cadophora isolates on the growth of Vaccinium corymbosum[J]. Microbiological Research, 2015, 181:68-74.
    [11] WU FL, LI Y, TIAN W, SUN YD, CHEN FY, ZHANG YR, ZHAI YX, ZHANG J, SU HY, WANG L. A novel dark septate fungal endophyte positively affected blueberry growth and changed the expression of plant genes involved in phytohormone and flavonoid biosynthesis[J]. Tree Physiology, 2020, 40(8):1080-1094.
    [12] 王君, 杜秉海, 马海林, 刘方春, 丁延芹, 姚良同, 李丽. 纺锤形芽孢杆菌L13对蓝莓生长及根际土壤生物学特性的影响[J]. 应用与环境生物学报, 2016, 22(5):917-925. WANG J, DU BH, MA HL, LIU FC, DING YQ, YAO LT, LI L. Effect of Bacillus fusiformis L13 on blueberry growth and rhizosphere soil biological characteristics[J]. Chinese Journal of Applied and Environmental Biology, 2016, 22(5):917-925(in Chinese).
    [13] QIN S, LI J, CHEN HH, ZHAO GZ, ZHU WY, JIANG CL, XU LH, LI WJ. Isolation, diversity, and antimicrobial activity of rare actinobacteria from medicinal plants of tropical rain forests in Xishuangbanna, China[J]. Applied and Environmental Microbiology, 2009, 75(19):6176-6186.
    [14] QIN S, ZHANG YJ, YUAN B, XU PY, XING K, WANG J, JIANG JH. Isolation of ACC deaminase-producing habitat-adapted symbiotic bacteria associated with halophyte Limonium sinense (Girard) Kuntze and evaluating their plant growth-promoting activity under salt stress[J]. Plant and Soil, 2014, 374(1):753-766.
    [15] 卞光凯, 张越己, 秦盛, 邢珂, 谢焕松, 蒋继宏. 南通沿海滩涂耐盐植物重金属抗性内生细菌的筛选及生物多样性[J]. 微生物学报, 2011, 51(11):1538-1547. BIAN GK, ZHANG YJ, QIN S, XING K, XIE HS, JIANG JH. Isolation and biodiversity of heavy metal tolerant endophytic bacteria from halotolerant plant species located in coastal shoal of Nantong[J]. Acta Microbiologica Sinica, 2011, 51(11):1538-1547(in Chinese).
    [16] 王君. 蓝莓根际促生细菌的筛选、鉴定及其促生效果[D]. 泰安:山东农业大学硕士学位论文, 2016. WANG J. Screening, identification and growth-promoting effects of PGPR from blueberry rhizosphere[D]. Tai'an:Master's Thesis of Shandong Agricultural University, 2016(in Chinese).
    [17] LIU JQ, CHEN SM, ZHANG CM, XU MJ, XING K, LI CG, LI K, ZHANG YQ, QIN S. Abundant and diverse endophytic bacteria associated with medicinal plant Arctium lappa L. and their potential for host plant growth promoting[J]. Antonie Van Leeuwenhoek, 2022, 115(12):1405-1420.
    [18] KUMAR S, STECHER G, LI M, KNYAZ C, TAMURA K. MEGA X:molecular evolutionary genetics analysis across computing platforms[J]. Molecular Biology and Evolution, 2018, 35(6):1547-1549.
    [19] 冯维维, 武美贤, 司雨婷, 邢珂, 秦盛, 蒋继宏, 彭学. 中华补血草内生与根际具ACC脱氨酶活性细菌的筛选及其生物多样性[J]. 微生物学报, 2016, 56(4):719-728. FENG WW, WU MX, SI YT, XING K, QIN S, JIANG JH, PENG X. Screening and biodiversity of endophytic and rhizosphere bacteria containing ACC deaminase from halophyte Limonium sinense (Girard) Kuntze[J]. Acta Microbiologica Sinica, 2016, 56(4):719-728(in Chinese).
    [20] 孙玉芳, 王曦. 元素分析仪测定土壤氮、碳含量的不确定度评定[J]. 分析测试技术与仪器, 2016, 22(4):240-245. SUN YF, WANG X. Uncertainty evaluation of measurement results for determination of total carbon and nitrogen in soil samples using elemental analyzer[J]. Analysis and Testing Technology and Instruments, 2016, 22(4):240-245(in Chinese).
    [21] 鲍士旦. 土壤农化分析[M]. 3版. 北京:中国农业出版社, 2000. BAO SD. Soil and Agricultural Chemistry Analysis[M]. 3rd ed. Beijing:China Agriculture Press, 2000(in Chinese).
    [22] 张瑞福. 根际微生物:农业绿色发展中大有作为的植物第二基因组[J]. 生物技术通报, 2020, 36(9):1-2. ZHANG RF. Rhizosphere microbiota:a promising plant second genome in green agricultural development[J]. Biotechnology Bulletin, 2020, 36(9):1-2(in Chinese).
    [23] WAŻNY R, JĘDRZEJCZYK RJ, ROZPĄDEK P, DOMKA A, TURNAU K. Biotization of highbush blueberry with ericoid mycorrhizal and endophytic fungi improves plant growth and vitality[J]. Applied Microbiology and Biotechnology, 2022, 106(12):4775-4786.
    [24] 孙运杰, 马海林, 刘方春, 丁延芹, 邢尚军, 丁凤菊. 植物根际促生菌对蓝莓根际土壤养分与微生物数量的影响[J]. 山东农业科学, 2014, 46(1):66-69. SUN YJ, MA HL, LIU FC, DING YQ, XING SJ, DING FJ. Effects of plant growth-promoting rhizobacteria on soil nutrient and microbial quantity in blueberry rhizosphere[J]. Shandong Agricultural Sciences, 2014, 46(1):66-69(in Chinese).
    [25] 王梦姣, 郑天骄. 蓝莓根际土壤微生物群落结构及促生菌筛选[J]. 西南农业学报, 2023, 36(5):983-991. WANG MJ, ZHENG TJ. Microbial community structure and screening of growth-promoting bacteria in blueberry rhizosphere soil[J]. Southwest China Journal of Agricultural Sciences, 2023, 36(5):983-991(in Chinese).
    [26] KIM MJ, SHIM CK, PARK JH. Control efficacy of Bacillus velezensis AFB2-2 against potato late blight caused by Phytophthora infestans in organic potato cultivation[J]. The Plant Pathology Journal, 2021, 37(6):580-595.
    [27] JIAO HW, XU WH, HU YL, TIAN RM, WANG ZG. Citric acid in rice root exudates enhanced the colonization and plant growth-promoting ability of Bacillus altitudinis LZP02[J]. Microbiology Spectrum, 2022, 10(6):e0100222.
    [28] XU MJ, GUO JH, LI TJ, ZHANG CM, PENG X, XING K, QIN S. Antibiotic effects of volatiles produced by Bacillus tequilensis XK29 against the black spot disease caused by Ceratocystis fimbriata in postharvest sweet potato[J]. Journal of Agricultural and Food Chemistry, 2021, 69(44):13045-13054.
    [29] 郑天骄, 王梦姣. 不同蓝莓根际微生物群落结构多样性及其差异[J]. 北方园艺, 2022, 22(14):76-86. ZHENG TJ, WANG MJ. Diversity and differences of rhizosphere microbial community structure in different blueberries[J]. Northern Horticulture, 2022(14):76-86(in Chinese).
    [30] 陈雅彬, 李永强, 孙琳, 沈妍雯, 陈文荣, 刘霞, 郭卫东. 非酸性根际土壤对蓝莓铁元素吸收及其代谢相关基因表达的影响[J]. 园艺学报, 2015, 42(2):233-242. CHEN YB, LI YQ, SUN L, SHEN YW, CHEN WR, LIU X, GUO WD. Effects of non-acid rhizosphere pH on the iron elements uptakes and expressions of iron metabolism related genes in blueberry[J]. Acta Horticulturae Sinica, 2015, 42(2):233-242(in Chinese).
    [31] 张春媚, 徐明洁, 李雪威, 邢珂, 秦盛. 绿针假单胞菌的研究进展及农业应用潜力[J]. 微生物学报, 2022, 62(2):391-402. ZHANG CM, XU MJ, LI XW, XING K, QIN S. Recent research advances and application potential in agriculture of Pseudomonas chlororaphis[J]. Acta Microbiologica Sinica, 2022, 62(2):391-402(in Chinese).
    [32] ZHANG Y, LI TJ, XU MJ, GUO JH, ZHANG CM, FENG ZZ, PENG X, LI ZY, XING K, QIN S. Antifungal effect of volatile organic compounds produced by Pseudomonas chlororaphis subsp. aureofaciens SPS-41 on oxidative stress and mitochondrial dysfunction of Ceratocystis fimbriata[J]. Pesticide Biochemistry and Physiology, 2021, 173:104777.
    [33] 王婧, 方蕊, 蒋秋悦, 肖明. 载体和保护剂对桔黄假单胞菌JD37微生物肥料活性的影响[J]. 上海师范大学学报(自然科学版), 2012, 41(2):179-185. WANG J, FANG R, JIANG QY, XIAO M. Effects of carrier and protective agent on the biological activities of Pseudomonas aurantiaca JD37 strain microbial fertilizer[J]. Journal of Shanghai Normal University (Natural Sciences Edition), 2012, 41(2):179-185(in Chinese).
    [34] DUMAN M, MULET M, ALTUN S, SATICIOGLU IB, GOMILA M, LALUCAT J, GARCIA-VALDES E. Pseudomonas piscium sp. nov., Pseudomonas pisciculturae sp. nov., Pseudomonas mucoides sp. nov. and Pseudomonas neuropathica sp. nov. isolated from rainbow trout[J]. International Journal of Systematic and Evolutionary Microbiology, 2019, 71(3):004714.
    [35] 李凤. 番茄根际微生物组分析及防病促生菌的筛选[D]. 济南:齐鲁工业大学硕士学位论文, 2022. LI F. Analysis of tomato rhizosphere microbiome and screening of functional bacteria for disease control and growth promotion[D]. Jinan:Master's Thesis of Qilu University of Technology, 2022(in Chinese).
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CHEN Shumei, YU Zhengjie, SHI Xiaoqiong, LI Li, QIN Yueying, ZHU Yichen, ZHANG Chunmei, XING Ke, QIN Sheng. Bacteria isolated from rhizosphere soils of three blueberry varieties affect the growth and development of blueberry seedlings. [J]. Acta Microbiologica Sinica, 2024, 64(2): 565-580

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  • Received:July 18,2023
  • Revised:September 04,2023
  • Online: January 31,2024
  • Published: February 04,2024
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