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Effects of ultrasonic irradiation on organic matter of Microcystis aeruginosa cells

机译:超声辐照对铜绿微囊藻细胞有机质的影响

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Harmful algal bloom stimulated by eutrophication has gained increasing attention worldwide. This phenomenon deteriorates water quality and destroys the local ecological equilibrium, and thus must be addressed. Ultrasound can effectively inhibit the growth of bloom algae, but its effect on the organic matter of Microcystis aeruginosa cells remains unknown. Moreover, the mechanism of ultrasonic irradiation is unclear. This study investigated algal biomass, zeta potential, organic matter, and protein after treatment with different ultrasonic frequencies and power densities to optimize ultrasonic parameters and reveal the mechanism of the effect of ultrasonic irradiation on algae. Results showed that low-frequency ultrasonic irradiation effectively inhibited blue algae growth. The zeta potential, ribulose-1,5-bisphosphate carboxylase/oxygenase (RuBisCO) protein gray value, and phycobiliprotein level decreased, whereas the fluorescence peak of fulvic acid and dead cells increased. The damage to the RuBisCO protein in algae treated by ultrasonic frequency of 40 kHz was more severe than that in algae treated by the frequency of 20 and 100 kHz under the power density of 0.0628 W/mL. The high ultrasonic density caused severe damage to the RuBisCO protein and photosynthesis. Under a specific ultrasonic frequency, higher power density leads to more obvious inhibition on algae cells. Thus, the growth of M. aeruginosa can be controlled under the optimal ultrasonic frequency and power density of 40 kHz and 0.0628 W/mL, respectively.
机译:富营养化刺激的有害藻华在全世界引起了越来越多的关注。这种现象使水质恶化并破坏了当地的生态平衡,因此必须加以解决。超声可以有效地抑制藻类的生长,但是其对铜绿微囊藻细胞有机物的影响尚不清楚。此外,超声辐射的机理尚不清楚。这项研究调查了不同的超声频率和功率密度处理后的藻类生物量,ζ电位,有机质和蛋白质,以优化超声参数并揭示了超声辐照对藻类的影响机理。结果表明,低频超声辐射有效抑制了蓝藻的生长。 Zeta电位,核糖-1,5-双磷酸羧化酶/加氧酶(RuBisCO)蛋白的灰度值和藻胆蛋白水平降低,而富里酸和死细胞的荧光峰增加。在0.0628 W / mL的功率密度下,超声波在40 kHz频率下对RuBisCO蛋白的破坏要比在20和100 kHz频率下对藻类的破坏更严重。高超声密度对RuBisCO蛋白和光合作用造成了严重损害。在特定的超声波频率下,较高的功率密度会导致对藻类细胞的抑制作用更加明显。因此,可以在最佳超声频率和功率密度分别为40 kHz和0.0628 W / mL的情况下控制铜绿假单胞菌的生长。

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