Technical Innovation Service Platform for High Value and High Quality Utilization of Marine Organism, Fuzhou Universitygrid.411604.6, Fuzhou, China.
Fujian Engineering and Technology Research Center for Comprehensive Utilization of Marine Products Waste, Fuzhou Universitygrid.411604.6, Fuzhou, China.
Microbiol Spectr. 2022 Jun 29;10(3):e0042922. doi: 10.1128/spectrum.00429-22. Epub 2022 May 26.
The toxic dinoflagellate is a harmful algal bloom-forming species in coastal areas around the world. It produces ichthyotoxins and hemolytic toxins, with deleterious effects on marine ecosystems. In this study, the bacterium sp. FDHY-MZ2, with high algicidal efficiency against , was isolated from a bloom event. Based on the results, it completely lysed cells within 24 h 0.5% (vol/vol), with the algicidal activity of the supernatant of the bacterium culture. Algal cell wall fragmentation occurred, leading to cell death. There was a marked decline in various photochemical traits. When treated with the supernatant, cellulase, pheophorbide a oxygenase (PAO) and cyclin B genes were significantly increased, suggesting induced cell wall deterioration, chloroplast degradation and cell cycle regulation of cells. In addition, the expression levels of reactive oxygen species (ROS) scavenging gene was significantly inhibited, indicating that the ROS removal system was damaged. The bacterial culture was dried to obtain the spray-dried powder, which showed algicidal activity rates of 92.2 and 100% against a laboratory culture and a field microcosm of sp. bloom within 24 h with the addition of 0.04% mass fraction powder. Our results demonstrate that FDHY-MZ2 is a suitable strain for and sp. blooms management. In addition, this study provides a new strategy for the anthropogenic control of harmful algal bloom-forming species . is a noxious algal bloom-forming species that cause damaging of the aquaculture industry and great financial losses. Bacterium with algicidal activity is an ideal agency to inhibit the growth of harmful algae. In this approach application, the bacterium with high algicidal activity is required and the final management material is ideal for easy-to-use. The algicidal characteristics are also needed to understand the effects of the bacterium for managing strategy exploration. In this study, we isolated a novel algicidal bacterium with extremely high lysis efficiency for . The algicidal characteristics of the bacterium as well as the chemical and molecular response of with the strain challenge were examined. Finally, the algicidal powder was explored for application. The results demonstrate that FDHY-MZ2 is suitable for and sp. blooms controlling, and this study provides a new strategy for algicidal bacterium application.
有毒双鞭甲藻是一种在世界沿海地区形成有害藻华的物种。它产生鱼毒素和溶血毒素,对海洋生态系统有有害影响。在这项研究中,从藻华事件中分离到了一种对 具有高效杀藻作用的细菌 sp. FDHY-MZ2。结果表明,该菌在 24 h 内以 0.5%(体积/体积)完全裂解 细胞,其菌培养液的上清液具有杀藻活性。藻细胞发生细胞壁碎裂,导致细胞死亡。各种光化学特性明显下降。用上清液处理后,细胞色素 b 基因、纤维素酶和脱镁叶绿酸 a 加氧酶(PAO)基因显著增加,表明 细胞的细胞壁恶化、叶绿体降解和细胞周期调节被诱导。此外,活性氧(ROS)清除基因的表达水平显著受到抑制,表明 ROS 去除系统受到破坏。将细菌培养物干燥得到喷雾干燥粉末,在添加 0.04%质量分数粉末后,24 h 内对实验室培养的 藻和现场微宇宙中的 藻的杀藻活性率分别达到 92.2%和 100%。我们的结果表明,FDHY-MZ2 是一种适合管理 和 藻华的菌株。此外,本研究为有害藻华形成物种的人为控制提供了一种新策略。有毒双鞭甲藻是一种形成有害藻华的物种,会对水产养殖业造成损害,并造成巨大的经济损失。具有杀藻活性的细菌是抑制有害藻类生长的理想药剂。在这种应用方法中,需要使用具有高杀藻活性的细菌,最终的管理材料最好易于使用。还需要了解细菌的杀藻特性,以探索管理策略。在这项研究中,我们分离到了一种对 具有极高裂解效率的新型杀藻细菌。研究了该细菌的杀藻特性以及 菌株挑战下 的化学和分子反应。最后,探索了杀藻粉末的应用。结果表明,FDHY-MZ2 适用于 和 藻华的控制,本研究为杀藻细菌的应用提供了一种新策略。