National Engineering Research Center for Marine Aquaculture, Zhejiang Ocean University, Zhoushan 316000, China.
Zhejiang Provincial Key Laboratory of Petrochemical Pollution Control, School of Petrochemical Engineering & Environment, Zhejiang Ocean University, Zhoushan 316000, China.
Int J Biol Macromol. 2024 Jan;254(Pt 3):127971. doi: 10.1016/j.ijbiomac.2023.127971. Epub 2023 Nov 8.
Developing efficient and safe antibacterial agents to inhibit pathogens including Physalospora piricola and Staphylococcus aureus is of great importance. Herein, a novel compound composed of Rosa roxburghii procyanidin, chitosan and selenium nanoparticle (RC-SeNP) was bio-synthesized, with the average diameter and zeta potential being 84.56 nm and -25.60 mV, respectively. The inhibition diameter of the RC-SeNP against P. piricola and S. aureus reached 18.67 mm and 13.13 mm, and the maximum scavenging activity against DPPH and ABTS reached 96.02% and 98.92%, respectively. Moreover, the RC-SeNP completely inhibited the propagation P. piricola and S. aureus on actual apples, suggesting excellent in vivo antimicrobial capacity. The transcriptome analysis and electron microscope observation indicated that the antibacterial activity would be attributed to adhering to and crack the cell walls as well as damage the cytomembrane and nucleus. Moreover, the RC-SeNP effectively maintained the vitamin C, total acid, and water contents of red bayberry, demonstrating potential application for fruit preservation. At last, the RC-SeNP showed no cell toxicity and trace selenium residual dose (0.03 mg/kg on apple, 0.12 mg/kg on red bayberry). This study would enlighten future development on novel nano-bioantibacterial agents for sustainable agriculture.
开发高效、安全的抗菌剂来抑制包括Physalospora piricola 和金黄色葡萄球菌在内的病原体非常重要。本文中,一种由刺梨原花青素、壳聚糖和硒纳米粒子组成的新型化合物(RC-SeNP)被生物合成,其平均直径和zeta 电位分别为 84.56nm 和-25.60mV。RC-SeNP 对 P. piricola 和 S. aureus 的抑制直径分别达到 18.67mm 和 13.13mm,对 DPPH 和 ABTS 的最大清除活性分别达到 96.02%和 98.92%。此外,RC-SeNP 完全抑制了实际苹果上 P. piricola 和 S. aureus 的繁殖,表明其具有出色的体内抗菌能力。转录组分析和电子显微镜观察表明,其抗菌活性归因于黏附并破坏细胞壁,以及损伤细胞质膜和细胞核。此外,RC-SeNP 还能有效保持杨梅的维生素 C、总酸和水分含量,具有水果保鲜的潜在应用价值。最后,RC-SeNP 对苹果(0.03mg/kg)和杨梅(0.12mg/kg)的细胞毒性和痕量硒残留剂量均为零。本研究为可持续农业中新型纳米生物抗菌剂的未来发展提供了启示。