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Identifying the role of reactive oxygen species (ROSs) in Fusarium solani spores inactivation

机译:识别活性氧(ROSs)在枯萎镰刀菌孢子灭活中的作用

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摘要

The inactivation mechanism of photocatalytic disinfectants on bacteria is well known. In contrast, the potential inactivation of fungal spores by visible-light induced photocatalysis has been recognized, but the inactivation mechanism is poorly understood. We hypothesize that photocatalytically generated reactive oxygen species (ROSs) are directly involved in this mechanism. To test this hypothesis, we identified the roles of ROSs in the inactivation of Fusarium solani spores. As the photocatalysts, we doped TiO2 with 3 typical dopants, forming Ag/TiO2, N/TiO2 and Er3+:YAlO3/TiO2. The Ag/TiO2 photocatalysis was dominated by H2O2, with the longest lifetime among the investigated ROSs. Ag/TiO2 photocatalysis yielded almost 100 % inactivation efficiency and preserved the cell-wall shape of the spores, thus minimizing the biomolecule leakage. Er3+:YAlO3/TiO2 was dominated by h+ ROSs, yielding an inactivation efficiency of 91 %; however, the severe leakage released large numbers of molecular bio-products. Severe damage to the cell walls by the h+ species was confirmed in micrograph observations. Subsequent to cell wall breakage, the Er3+:YAlO3/TiO2 nanoparticles entered the spore cells and directly oxidized the intracellular material. The N/TiO2 photocatalysis, with •O2 dominated ROSs, delivered intermediate performance. In conclusion, photocatalysts that generate H2O2-dominated ROSs are most preferred for spore inactivation.
机译:光催化消毒剂对细菌的灭活机理是众所周知的。相反,已经认识到可见光诱导的光催化作用可能使真菌孢子失活,但是对这种失活机理的了解却很少。我们假设光催化产生的活性氧(ROSs)直接参与此机制。为了验证该假设,我们确定了ROS在枯萎镰刀菌孢子灭活中的作用。作为光催化剂,我们用三种典型的掺杂剂掺杂了TiO2,形成了Ag / TiO2,N / TiO2和Er 3 + :YAlO3 / TiO2。 Ag / TiO2的光催化作用主要是H2O2,在被研究的ROS中寿命最长。 Ag / TiO2光催化产生近100%的失活效率,并保留了孢子的细胞壁形状,从而最大程度地减少了生物分子的泄漏。 Er 3 + :YAlO3 / TiO2以h + ROS为主,失活效率为91%。然而,严重的泄漏释放出大量的分子生物产物。显微照片证实了h + 对细胞壁的严重破坏。细胞壁破裂后,Er 3 + :YAlO3 / TiO2纳米粒子进入孢子细胞并直接氧化细胞内物质。以•O2 -为主的ROS的N / TiO2光催化性能达到中等。总之,产生H2O 2 为主的ROS的光催化剂最适合用于孢子灭活。

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