Ferreira João Carlos Canossa, Lopes Carla, Preto Ana, Gonçalves Maria Sameiro Torres, Sousa Maria João
Centre of Molecular and Environmental Biology (CBMA), Department of Biology, Campus of Gualtar, University of Minho, 4710-057 Braga, Portugal.
Campus of Gualtar, IBS-Institute of Science and Innovation for Bio-Sustainability, University of Minho, 4710-057 Braga, Portugal.
J Fungi (Basel). 2021 Nov 16;7(11):971. doi: 10.3390/jof7110971.
Phenoxazine derivatives such as Nile Blue analogues are assumed to be increasingly relevant in cell biology due to their fluorescence staining capabilities and antifungal and anticancer activities. However, the mechanisms underlying their effects remain poorly elucidated. Using as a eukaryotic model, we found that BaP1, a novel 5- and 9--substituted benzo[]phenoxazine synthesized in our laboratory, when used in low concentrations, accumulates and stains the vacuolar membrane and the endoplasmic reticulum. In contrast, at higher concentrations, BaP1 stains lipid droplets and induces a regulated cell death process mediated by vacuolar membrane permeabilization. BaP1 also induced mitochondrial fragmentation and depolarization but did not lead to ROS accumulation, changes in intracellular Ca, or loss of plasma membrane integrity. Additionally, our results show that the cell death process is dependent on the vacuolar protease Pep4p and that the vacuole permeabilization results in its translocation from the vacuole to the cytosol. In addition, although nucleic acids are commonly described as targets of benzo[]phenoxazines, we did not find any alterations at the DNA level. Our observations highlight BaP1 as a promising molecule for pharmacological application, using vacuole membrane permeabilization as a targeted approach.
诸如尼罗蓝类似物的吩恶嗪衍生物,因其荧光染色能力以及抗真菌和抗癌活性,在细胞生物学中被认为越来越重要。然而,其作用的潜在机制仍未得到充分阐明。以真核生物为模型,我们发现BaP1,一种在我们实验室合成的新型5-和9-取代苯并[]吩恶嗪,在低浓度使用时,会积累并染色液泡膜和内质网。相反,在较高浓度下,BaP1会染色脂滴并诱导由液泡膜通透性介导的程序性细胞死亡过程。BaP1还会诱导线粒体碎片化和去极化,但不会导致活性氧积累、细胞内钙变化或质膜完整性丧失。此外,我们的结果表明,细胞死亡过程依赖于液泡蛋白酶Pep4p,并且液泡通透性导致其从液泡转运到细胞质。另外,尽管核酸通常被描述为苯并[]吩恶嗪的靶点,但我们在DNA水平上未发现任何改变。我们的观察结果突出了BaP1作为一种有前景的分子在药理学应用中的潜力,将液泡膜通透性作为一种靶向方法。