In Rhodotorula mucilaginosa, active oxidative metabolism increases carotenoids to inactivate excess reactive oxygen species.

IF 2.1 Q3 MYCOLOGY Frontiers in fungal biology Pub Date : 2024-09-06 eCollection Date: 2024-01-01 DOI:10.3389/ffunb.2024.1378590
Edson Mosqueda-Martínez, Natalia Chiquete-Félix, Paulina Castañeda-Tamez, Carolina Ricardez-García, Manuel Gutiérrez-Aguilar, Salvador Uribe-Carvajal, Ofelia Mendez-Romero
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Abstract

Carotenoids produced by bacteria, yeasts, algae and plants inactivate Free Radicals (FR). However, FR may inactivate carotenoids and even turn them into free radicals. Oxidative metabolism is a source of the highly motile Reactive Oxygen Species (ROS). To evaluate carotenoid interactions with ROS, the yeast Rhodotorula mucilaginosa was grown in dextrose (YPD), a fermentative substrate where low rates of oxygen consumption and low carotenoid expression were observed, or in lactate (YPLac), a mitochondrial oxidative-phosphorylation (OxPhos) substrate, which supports high respiratory activity and carotenoid production. ROS were high in YPLac-grown cells and these were unmasked by the carotenoid production-inhibitor diphenylamine (DPA). In contrast, in YPD-grown cells ROS were almost absent. It is proposed that YPLac cells are under oxidative stress. In addition, YPLac-grown cells were more sensitive than YPD-grown cells to menadione (MD), a FR-releasing agent. To test whether carotenoids from cells grown in YPLac had been modified by ROS, carotenoids from each, YPD- and YPLac-grown cells were isolated and added back to cells, evaluating protection from MD. Remarkably, carotenoids extracted from cells grown in YPLac medium inhibited growth, while in contrast extracts from YPD-grown cells were innocuous or mildly protective. Results suggest that carotenoid-synthesis in YPLac-cells is a response to OxPhos-produced ROS. However, upon reacting with FR, carotenoids themselves may be inactivated or even become prooxidant themselves.

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在粘毛杜鹃花中,活跃的氧化代谢增加了类胡萝卜素,以灭活过量的活性氧。
细菌、酵母、藻类和植物产生的类胡萝卜素可使自由基(FR)失活。然而,自由基可能会使类胡萝卜素失活,甚至将其转化为自由基。氧化代谢是活性氧(ROS)的来源之一。为了评估类胡萝卜素与 ROS 的相互作用,将粘质酵母(Rhodotorula mucilaginosa)置于葡萄糖(YPD)或乳酸盐(YPLac)中进行培养,前者是一种发酵底物,耗氧量低,类胡萝卜素表达量也低;后者是一种线粒体氧化磷酸化(OxPhos)底物,支持高呼吸活性和类胡萝卜素的产生。在 YPLac 生长的细胞中,ROS 含量很高,类胡萝卜素生成抑制剂二苯胺(DPA)可以消除 ROS。相反,在 YPD 生长的细胞中,ROS 几乎不存在。这表明 YPLac 细胞处于氧化压力下。此外,YPLac 生长的细胞比 YPD 生长的细胞对甲萘醌(MD)(一种 FR 释放剂)更敏感。为了测试在 YPLac 生长的细胞中的类胡萝卜素是否被 ROS 改变,我们分别从 YPD 和 YPLac 生长的细胞中分离出类胡萝卜素,并将其添加回细胞中,评估其对 MD 的保护作用。值得注意的是,从 YPLac 培养基中生长的细胞中提取的类胡萝卜素会抑制生长,而从 YPD 生长的细胞中提取的类胡萝卜素则无害或具有轻微的保护作用。结果表明,YPLac 细胞中类胡萝卜素的合成是对 OxPhos 产生的 ROS 的反应。然而,类胡萝卜素本身在与 FR 反应后可能会失活,甚至变成促氧化剂。
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CiteScore
2.70
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审稿时长
13 weeks
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