Journal of Agricultural Big Data >
Analysis of the Research Status of Arbuscular Mycorrhizal Fungi on Plant Adverse Resistance Based on Scientometric Tools
Received date: 2023-02-02
Online published: 2023-08-15
This paper adopts the scientometric analysis method to the research state and explore the trends of arbuscular mycorrhizal fungi in improving plant to stress based on the, using the scientific measurement method of big data to conduct quantitative analysis and visualization of Chinese and English literature in the past 30 years (1991-2021) in Web of Science and CNKI databases. The changes in the number of literatures, national and institutional cooperation networks, research hotspots and research trends in the field of arbuscular mycorrhizal fungal resistance are visually displayed. The results showed as follows: 1) The research on arbuscular mycorrhizal fungal resistance has been paid more attention by researchers, and the most frequent keywords are “salt stress” and “drought stress”, which are the hot research directions of arbuscular mycorrhizal fungal resistance; 2) The major domestic and foreign research institutes are focused on the Spanish National Research Council (CSIC), the Chinese Academy of Sciences, Northwest A&F University and Yangtze University) and other universities and research institutes; 3) The study of arbuscular mycorrhizal fungi on heavy metal stress and their synergistic effects with other microorganisms have gradually become a research hotspot.
MA Jun, LI Shan, CAO Kai, BAO EnCai, HE ChaoXing . Analysis of the Research Status of Arbuscular Mycorrhizal Fungi on Plant Adverse Resistance Based on Scientometric Tools[J]. Journal of Agricultural Big Data, 2023 , 5(2) : 109 -121 . DOI: 10.19788/j.issn.2096-6369.230216
| [1] | SCHü?LER A, Schwarzott D, WALKER C. A new fungal phylum, the Glomeromycota: Phylogeny and evolution[J]. Mycological Research, 2001, 105(12): 1413-1421. |
| [2] | Jiang Y N, Wang W X, Xie Q J, et al. Plants transfer lipids to sustain colonization by mutualistic mycorrhizal and parasitic fungi[J]. Science, 2017, 356(6343): 1172-1175. |
| [3] | Wu Q S, Xia R X, Zou Y N, et al. Osmotic solute responses of mycorrhizal citrus (Poncirus trifoliata) seedlings to drought stress[J]. Acta Physiologiae Plantarum, 2007, 29(6): 543-549. |
| [4] | Marulanda A, Porcel R, Barea J M, et al. Drought tolerance and antioxidant activities in lavender plants colonized by native drought-tolerant or drought-sensitive glomus species[J]. Microbial Ecology, 2007, 54(3): 543-552. |
| [5] | He Z Q, He C X, Zhang Z B, et al. Changes of antioxidative enzymes and cell membrane osmosis in tomato colonized by arbuscular mycorrhizae under NaCl stress[J]. Colloids and Surfaces B: Biointerfaces, 2007, 59(2): 128-133. |
| [6] | Joner E J, Briones R, Leyval C, et al. Metal-binding capacity of arbuscular mycorrhizal mycelium[J]. Plant and Soil, 2000, 226(2): 227-234. |
| [7] | Guinee J B, Heijungs R, Huppes G, et al. Life cycle assessment: past, present, and future[J]. Environmental Science and Technology, 2011, 45(1): 90-96. |
| [8] | Mariotte P, Canarini A, Dijkstra F A. Stoichiometric N: P flexibility and mycorrhizal symbiosis favour plant resistance against drought[J]. The Journal of Ecology, 2017, 105(4): 958-967. |
| [9] | Hammer E C, Forstreuter M, Rillig M C, et al. Biochar increases arbuscular mycorrhizal plant growth enhancement and ameliorates salinity stress[J]. Applied Soil Ecology, 2015, 96(1): 114-121. |
| [10] | Li H, Chen X W, Wu L, et al. Effects of arbuscular mycorrhizal fungi on redox homeostasis of rice under Cd stress[J]. Plant Soil, 2020, 455(1): 121-138. |
| [11] | Wang M Y, Xia R X, Hu L M, et al. Arbuscular mycorrhizal fungi alleviate iron deficient chlorosis in Poncirus trifoliata L. Raf under calcium bicarbonate stress[J]. The Journal of Horticultural Science and Biotechnology, 2007, 82(5): 776-780. |
| [12] | Pallara G, Todeschini V, Lingua G, et al. Transcript analysis of stress defence genes in a white poplar clone inoculated with the arbuscular mycorrhizal fungus Glomus mosseae and grown on a polluted soil[J]. Plant Physiology and Biochemistry, 2013, 63(1): 131-139. |
| [13] | Guillon C, Starnaud M, Hamel C, et al. Differential and systemic alteration of defence-related gene transcript levels in mycorrhizal bean plants with rhizoctonia solani[J]. Canadian Journal of Botany, 2011, 80(3): 305-315. |
| [14] | Berta G, Copetta A, Gamalero E, et al. Maize development and grain quality are differentially affected by mycorrhizal fungi and a growth promoting pseudomonad in the field[J]. Mycorrhiza, 2014, 24(3): 161-170. |
| [15] | Noceta P A, Bettenfeld P, Boussageon R, et al. Arbuscular mycorrhizal fungi, a key symbiosis in the development of quality traits in crop production,alone or combined with plant growthpromoting bacteria[J]. Mycorrhiza, 2021, 31(6): 655-669. |
| [16] | Parada J, Valenzuela T, Gómez F, et al. Effect of fertilization and arbuscular mycorrhizal fungal inoculation on antioxidant profiles and activities in Fragaria ananassa fruit[J]. Journal of the Science of Food and Agriculture, 2018, 99(3): 1397-1404. |
| [17] | Egamberdieva D. Pseudomonas chlororaphis: a salt tolerant bacterial inoculant for plant growth stimulation under saline soil conditions[J]. Acta Physiologiae Plantarum, 2012, 34(2): 751-756. |
| [18] | Egamberdieva D, Berg G, Lindstr?m K, et al. Alleviation of salt stress of symbiotic Galega officinalis L. (goat’s rue) by co-inoculation of Rhizobium with root-colonizing Pseudomonas [J]. Plant and Soil, 2013, 369(1-2): 453-465. |
| [19] | Egamberdieva D, Jabborova D, Berg G. Synergistic interactions between Bradyrhizobium japonicum and the endophyte Stenotrophomonas rhizophila and their effects on growth, and nodulation and nutrition of soybean under salt stress[J]. Plant and Soil, 2016, 405(1-2): 35-45. |
| [20] | Zhou Y, Li X, Gao Y, et al. Plant endophytes and arbuscular mycorrhizal fungi alter plant competition[J]. Functional Ecology, 2018, 32(5): 1168-1179. |
| [21] | Angela H. Microbial ecology of the arbuscular mycorrhiza[J]. FEMS Microbiology Ecology, 2000, 32(2): 91-96. |
| [22] | 杨柳, 李广枝, 童倩倩, 等. Pb2+、Cd2+胁迫作用下蚯蚓、菌根菌及其联合作用对植物修复的影响[J]. 贵州农业科学, 2010, 38(11): 156-158. |
| [22] | Yang L, Li G Z, Tong Q Q, et al. Effects of earthworm, mycorrhizal fungi and combined action on phytoremediation under Pb2+ and Cd2+ stress[J]. Guizhou Agricultural Sciences, 2010, 38(11): 156-158. (in Chinese) |
| [23] | 沈浜凯, 肖龙云, 冯乃杰, 等. 黄腐酸和真菌对玉米幼苗抗旱性的影响[J]. 江苏农业科学, 2013, 41(5): 64-66. |
| [23] | Shen B K, Xiao L Y, Feng N J, et al. Effects of fulvic acid and fungi on drought resistance of maize seedlings[J]. Jiangsu Agricultural Sciences, 2013, 41(5): 64-66. (in Chinese) |
| [24] | 韩亚楠, 刘润进, 李敏. AM真菌和PGPR菌剂组合对低温胁迫下黄瓜生长及防御酶活性的影响[J]. 中国蔬菜, 2014, 1(7): 35-39. |
| [24] | Han Y N, Liu R J, Li M. Effects of arbuscular mycorrhizal fungi and pgpr combination agents on growth and defense enzyme activity of cucumber under low temperature stress[J]. China Vegetables, 2014, 1(7): 35-39. (in Chinese) |
| [25] | 王丽丽, 杨谦. 接种枯草芽孢杆菌和丛枝菌根真菌促进红三叶修复石油污染土壤[J]. 江苏农业科学, 2016, 44(5): 526-529. |
| [25] | Wang L L, Yang Q. Inoculation with Bacillus subtilis and arbuscular mycorrhizal fungi promoted the remediation of oil contaminated soil by red clover[J]. Jiangsu Agricultural Sciences, 2016, 44(5): 526-529. (in Chinese) |
| [26] | 邢易梅, 蕫理, 战力峰, 等. 混合接种摩西球囊霉和根瘤菌对紫花苜蓿耐碱能力的影响[J]. 草业学报[J], 2020, 29(9): 136-145. |
| [26] | Xing Y M, Dong L, Zhan L F, et al. Effect of mixed inoculation of Glomus mosseae and Sinorhizobium melilotion alkali resistance on alfalfa[J]. Prataculturae Sinica, 2020, 29(9): 136-145. (in Chinese) |
| [27] | 闫智臣, 李应德, 程维佳, 等. 不同盐浓度下AM真菌和禾草内生真菌对多年生黑麦草生长的影响[J]. 草原与草坪, 2018, 38(1): 63-70. |
| [27] | Yan Z C, Li Y D, Cheng W J, et al. Effects of AM fungi and grass endophyte on the growth of ryegrass under different salt concentrations[J]. Grassland and Turf, 2018, 38(1): 63-70. (in Chinese) |
| [28] | 吴福勇, 武玉坤, 毕银丽, 等. 水分胁迫下AM真菌和根瘤菌对沙打旺生长及养分吸收的影响[J]. 干旱地区农业研究, 2013, 31(4): 161-166. |
| [28] | Wu F Y, Wu Y K, Bi Y L, et al. Inoculation of arbuscular mycorrhizal fungi and Rhizobium on the growth and nutrition uptake of Astragalus adsurgens Pall. Under water stress[J]. Agricultural Research in the Arid Areas, 2013, 31(4): 161-166. (in Chinese) |
| [29] | 刘耀臣, 陈可, 于伟红, 等. 水杨酸和AM真菌增强黄瓜耐低温的效应[J]. 北方园艺, 2020, 1(10): 10-15. |
| [29] | Liu Y C, Chen K, Yu W H, et al. Effects of salicylic acid and AM fungi on cucumber tolerance to low temperature[J]. Northern Horticulture, 2020, 1(10):10-15. (in Chinese) |
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