Departamento de Bioquímica, Instituto de Química, Universidade Federal do Rio de Janeiro, RJ, Brazil.
Rede de Micologia RJ - FAPERJ.
FEMS Yeast Res. 2024 Jan 9;24. doi: 10.1093/femsyr/foad052.
Reactive oxygen species (ROS) are closely related to oxidative stress, aging, and the onset of human diseases. To mitigate ROS-induced damages, extensive research has focused on examining the antioxidative attributes of various synthetic/natural substances. Coordination compounds serving as synthetic antioxidants have emerged as a promising approach to attenuate ROS toxicity. Herein, we investigated the antioxidant potential of a series of Fe(III) (1), Mn(III)Mn(II) (2) and Cu(II) (3) coordination compounds synthesized with the ligand N-(2-hydroxybenzyl)-N-(2-pyridylmethyl)[(3-chloro)(2-hydroxy)]-propylamine in Saccharomyces cerevisiae exposed to oxidative stress. We also assessed the antioxidant potential of these complexes in the alternative model of study, Galleria mellonella. DPPH analysis indicated that these complexes presented moderate antioxidant activity. However, treating Saccharomyces cerevisiae with 1, 2 and 3 increased the tolerance against oxidative stress and extended yeast lifespan. The treatment of yeast cells with these complexes decreased lipid peroxidation and catalase activity in stressed cells, whilst no change in SOD activity was observed. Moreover, these complexes induced the Hsp104 expression. In G. mellonella, complex administration extended larval survival under H2O2 stress and did not affect the insect's life cycle. Our results suggest that the antioxidant potential exhibited by these complexes could be further explored to mitigate various oxidative stress-related disorders.
活性氧(ROS)与氧化应激、衰老和人类疾病的发生密切相关。为了减轻 ROS 引起的损伤,广泛的研究集中在检查各种合成/天然物质的抗氧化特性上。作为合成抗氧化剂的配合物已成为减轻 ROS 毒性的一种有前途的方法。在此,我们研究了一系列用配体 N-(2-羟基苄基)-N-(2-吡啶甲基)[(3-氯)(2-羟基)-丙基胺合成的 Fe(III)(1)、Mn(III)Mn(II)(2)和 Cu(II)(3)配合物在暴露于氧化应激的酿酒酵母中的抗氧化潜力。我们还评估了这些复合物在替代研究模型中,即大蜡螟中的抗氧化潜力。DPPH 分析表明,这些复合物具有中等的抗氧化活性。然而,用 1、2 和 3 处理酿酒酵母可以提高酵母对氧化应激的耐受性并延长酵母寿命。用这些复合物处理酵母细胞可以降低应激细胞中的脂质过氧化和过氧化氢酶活性,而 SOD 活性没有变化。此外,这些复合物诱导了 Hsp104 的表达。在大蜡螟中,复合物的给药延长了幼虫在 H2O2 应激下的存活时间,并且不影响昆虫的生命周期。我们的研究结果表明,这些复合物表现出的抗氧化潜力可以进一步探索,以减轻各种与氧化应激相关的疾病。