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In vitro toxic effects of heavy metals on fungal growth and phosphate-solubilising abilities of isolates obtained from Phragmites australis rhizosphere

机译:重金属对澳大利亚芦苇根际分离物真菌生长和磷酸盐溶解能力的体外毒性作用

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In this research, we evaluated the toxic effect of metal ions on mycelial growth and phosphate-solubilising activity of soil-borne micromycetes isolated from the Phragmites australis rhizosphere using Pikovskaya-agar plates supplemented with four metal concentrations. The diameter growth rate (DGR) decreased as the metal concentration rise for all tested fungi. Trichoderma atroviride had the fastest growth rate (1.48 cm(2) day(-1)) and was the least susceptible to Al3+, Cd2+, Cr3+, Cu2+ and Pb2+ with a median effective concentration (MEC50) of 12.19, 0.48, 4.51, 11.44 and 50.05 mM, respectively. Aspergillus japonicus was the most tolerant to Co2+, Ni2+ and Zn2+, with MEC50 values of 3.36, 1.095 and 2.34 mM, respectively. Penicillium italicum was the most tolerant to Cr6(+) (MEC50 = 0.677 mM). The ability to solubilise phosphate remained, despite the decrease in the DGR, and P. italicum and Penicillium dipodomyicola had the highest Phosphate Solubilisation Indexes (PSIs) at 1.97 and 2.12, respectively. In particular, P. italicum recorded the highest PSI of all the studied isolates at 0.62 mM Cr3+ (PSI = 4.74). A. japonicus and T. atroviride were the most tolerant isolates to all tested metals, which suggests that these isolates are promising candidates for further study with regard to mycoremediation and biofertilisation of metal-polluted soils.
机译:在这项研究中,我们使用添加了四种金属浓度的Pikovskaya-琼脂平板评估了金属离子对从芦苇根际土壤中分离的土壤传播微真菌的菌丝生长和磷酸盐溶解活性的毒性作用。所有测试真菌的直径增长速率(DGR)随着金属浓度的升高而降低。木霉木霉病毒的生长速度最快(1.48 cm(2)天(-1)),对Al3 +,Cd2 +,Cr3 +,Cu2 +和Pb2 +的敏感度最低,平均有效浓度(MEC50)为12.19、0.48、4.51、11.44和50.05 mM。日本曲霉对Co2 +,Ni2 +和Zn2 +的耐受性最高,其MEC50值分别为3.36、1.095和2.34 mM。 Italicum青霉对Cr6(+)的耐受性最高(MEC50 = 0.677 mM)。尽管DGR有所降低,但仍然具有溶解磷酸盐的能力,意大利假单胞菌和二霉青霉的磷酸盐溶解指数(PSI)最高,分别为1.97和2.12。特别地,意大利疟原虫在所有研究的分离物中记录到最高的PSI,为0.62 mM Cr3 +(PSI = 4.74)。对所有测试的金属来说,日本根瘤菌和阿特罗韦德弧菌是最耐受的分离株,这表明这些分离株有望在金属污染土壤的mycoremediation和生物施肥方面作进一步研究。

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