2,193
Views
12
CrossRef citations to date
0
Altmetric
Research Articles

Two Arbuscular Mycorrhizal Fungi Alleviates Drought Stress and Improves Plant Growth in Cinnamomum migao Seedlings

, , , ORCID Icon &
Pages 396-405 | Received 08 Feb 2021, Accepted 01 Jun 2021, Published online: 16 Jul 2021

References

  • Drumond A, Stojanovic M, Nieto R, et al. Linking anomalous moisture transport and drought episodes in the IPCC reference regions. Bam Meteorol Soc. 2019;100(8):1481–1498.
  • United Nations Environment Programme (UN). UNEP 2009 annual report. UN Environment; 2010.
  • Liu B, Chen C, Lian Y, et al. Long-term change of wet and dry climatic conditions in the southwest karst area of China. Global Planetary Change. 2015;127:1–11.
  • Zhu H, Wang H, Li P, et al. Biogeography and floristic affinities of the limestone flora in southern Yunnan. Ann Mo Bot Gard. 2003;90(3):444–465.
  • Zhou Y, Zhang R, Wang S, et al. Comparative analysis on responses of vegetation productivity relative to different drought monitor patterns in karst regions of southwestern China. Appl Ecol Env Res. 2019;17(1):85–105.
  • Trivedi P, Leach JE, Tringe SG, et al. Plant-microbiome interactions: from community assembly to plant health. Nat Rev Microbiol. 2020;18(11):607–621.
  • Ni J, Luo DH, Xia J, et al. Vegetation in karst terrain of southwestern China allocates more biomass to roots. Solid Earth. 2015;6(3):799–810.
  • Li XW, Li J, Henk W. Flora of China. Beijing: Science Publishing House Missouri Botanical Garden Publishing Press; 2008.
  • Zhang XB, Tao Z, Lanping G, et al. Volatile oil contents correlate with geographical distribution patterns of the miao ethnic herb Fructus cinnamomi. Acta Ecol Sin. 2011;31(18):5299–5306.
  • Liu CC, Liu YG, Guo K, et al. Influence of drought intensity on the response of six woody karst species subjected to successive cycles of drought and rewatering. Physiol Plant. 2010;139(1):39–54.
  • Liu CC, Liu YG, Guo K, et al. Comparative ecophysiological responses to drought of two shrub and four tree species from karst habitats of southwestern China. Trees. 2011;25(3):537–549.
  • Wu M, Deng P, Zhao Y, et al. Effects of drought on leaf growth and chlorophyll fluorescence kinetics parameters in Cyclobalanopsis glauca seedlings of karst areas. Ying Yong Sheng Tai Xue Bao. 2019;30(12):4071–4081.
  • Liang YM, Chen XY, Feng CY, et al. Influence of plant communities and soil properties during natural vegetation restoration on arbuscular mycorrhizal fungal communities in a karst region. Ecol Eng. 2015;82:57–65.
  • Qiao G, Wen XP, Yu LF, et al. The enhancement of drought tolerance for pigeon pea inoculated by arbuscular mycorrhizae fungi. Plant Soil Environ. 2011;57(12):541–546.
  • Oliveira JSFD, Xavier LP, Lins A, et al. Effects of inoculation by arbuscular mycorrhizal fungi on the composition of the essential oil, plant growth and lipoxygenase activity of Piper aduncum L. AMB Express. 2019;9:29.
  • Zhou T, Yang ZN, Jiang WK, et al. Variation and regularity of volatile oil constituents in fruits of national medicine Cinnamomum migao. Chin J Chin Mater Med. 2010;35(7):852–856.
  • Tong BL, Liu JM, Chen JZ, et al. Correlation between fungal diversity in rhizosphere soil and medicinal active components in fruits of Cinnamomum migao. Mycosystema. 2019;38(7):1058–1070.
  • Wen AH, Liu JM, Gao P, et al. Effect of natural drought stress on microstructure and chlorophyll content of Cinnamomum migao H.W. Li seedlings. Northern Horticul. 2015;14:62–66.
  • Bouzouina M, Kouadria R, Lotmani B. Fungal endophytes alleviate salt stress in wheat in terms of growth, ion homeostasis and osmoregulation. J Appl Microbiol. 2021;130(3):913–925.
  • Mazloom N, Khorassani R, Zohury GH, et al. Lignin-based hydrogel alleviates drought stress in maize. Environ Exp Bot. 2020;175:104055.
  • Hossain MS, Hossain MD, Hannan A, et al. Salt-induced changes in physio-biochemical and antioxidant defense system in mustard genotypes. Phyton. 2020;89(3):541–559.
  • Phillips JM, Hayman DS. Improved procedures for clearing roots and staining parasitic and vesicular-arbuscular mycorrhizal fungi for rapid assessment of infection. Trans Br Mycol Soc. 1970;55(1):158–IN18.
  • Geng YF, Qiu Q, Mao JH. Effects of arbuscular mycorrhizal fungi inoculation and different inoculation amount on seedlings of Mesua ferrea. J Fujian Sci Tech. 2016;43(003):67–71.
  • Juan JW. The research of arbuscular mycorrhizal fungi on watermelon seedling growth and resistance of Rhizoctonia solani in greenhouse [master’s thesis]. Luoyang: Henan University of Science and Technology; 2014.
  • Liu L, Li D, Ma Y, et al. Combined application of arbuscular mycorrhizal fungi and exogenous melatonin alleviates drought stress and improves plant growth in tobacco seedlings. J Plant Growth Regul. 2021;40(3):1074–1087.
  • Yang Y. Effect of AM fungi on the growth and nutrient utilization of Cinnamomum bodinieri seedling under increasing CO2 concentration [master’s thesis]. Guiyang: Guizhou University; 2018.
  • Hamed A, Ali N, Nematollah E, et al. Biochemical response and interactions between arbuscular mycorrhizal fungi and plant growth promoting rhizobacteria during establishment and stimulating growth of Arizona cypress (Cupressus arizonica G.) under drought stress. Sci Hortic. 2020;261:108923.
  • Duc NH, Zsolt C, Katalin P. Arbuscular mycorrhizal fungi mitigate negative effects of combined drought and heat stress on tomato plants. Plant Phy and Biochem. 2018;132:297–307.
  • Ren A, Zhu Y, Chen Y, et al. Arbuscular mycorrhizal fungus alters root-sourced signal (abscisic acid) for better drought acclimation in Zea mays L. seedlings. Environ Exp Bot. 2019;167: 1–10.
  • Zou YI, Wu QH, Kua K. Unraveling the role of arbuscular mycorrhizal fungi in mitigating the oxidative burst of plants under drought stress. Plant Biol. 2020;23(S1):50–57.
  • Behrooz A, Vahdati K, Rejali F, et al. Arbuscular mycorrhiza and plant growth-promoting bacteria alleviate drought stress in walnut. HortSci. 2019;54(6):1087–1092.
  • Li J, Meng B, Chai H, et al. Arbuscular mycorrhizal fungi alleviate drought stress in C3 (Leymus chinensis) and C4 (Hemarthria altissima) grasses via altering antioxidant enzyme activities and photosynthesis. Front Plant Sci. 2019;10:499.
  • Xiong X, Liu JJ, Wen AH, et al. Physiological response of Cinnamomum migao to water stress. J Anhui Univ (Nat Sci). 2018;42(3):92–97.
  • Asrar AA, Abdel GM, Elhindi KM. Improving growth, flower yield, and water relations of snapdragon (Antirhinum majus L.) plants grown under well-watered and water-stress conditions using arbuscular mycorrhizal fungi. Photosynthetica. 2012;50(2):305–316.
  • Augé RM. Water relations, drought and vesicular-arbuscular mycorrhizal symbiosis. Mycorrhiza. 2001;11(1):3–42.
  • Monneveux P, Ramírez DA, Khan MA, et al. Drought and heat tolerance evaluation in potato (Solanum tuberosum L). Potato Res. 2014;57(3–4):225–247.
  • Tan FS, Song HQ, Fu PL, et al. Hydraulic safety margins of co-occurring woody plants in a tropical karst forest experiencing frequent extreme droughts. Agr Forest Meteorol. 2020;292–293:108107.
  • Meixner C, Ludwig M, Miersch O, et al. Lack of mycorrhizal autoregulation and phytohormonal changes in the supernodulating soybean mutant nts1007. Planta. 2005;222(4):709–715.
  • Carling DE, Brown MF. Relative effect of vesicular-arbuscular mycorrhizal fungi on the growth and yield of soybeans1. Soil Sci Soc Am J. 1980;44(3):528–532.
  • Feng F, Sun J, Radhakrishnan GV, et al. A combination of chitooligosaccharide and lipochitooligosaccharide recognition promotes arbuscular mycorrhizal associations in Medicago truncatula. Nat Commun. 2019;10(1):5047
  • Klironomos JN, Mccune J, Hart M, et al. The influence of arbuscular mycorrhizae on the relationship between plant diversity and productivity. Ecol Lett. 2000;3(2):137–141.
  • Hempel S, Renker C, Buscot FO. Differences in the species composition of arbuscular mycorrhizal fungi in spore, root and soil communities in a grassland ecosystem. Environ Microbiol. 2007;9(8):1930–1938.