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Non-Enzymatic Synthesis of Bioactive Isoprostanoids in the Diatom Phaeodactylum following Oxidative Stress

机译:氧化应激后硅藻根瘤菌中非酶法合成生物活性异前列腺素类物质

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摘要

The ecological success of diatoms requires a remarkable ability to survive many types of stress, including variations in temperature, light, salinity, and nutrient availability. On exposure to these stresses, diatoms exhibit common responses, including growth arrest, impairment of photosynthesis, production of reactive oxygen species, and accumulation of triacylglycerol (TAG). We studied the production of cyclopentane oxylipins derived from fatty acids in the diatom Phaeodactylum tricornutum in response to oxidative stress. P. tricornutum lacks the enzymatic pathway for producing cyclopentane-oxylipins, such as jasmonate, prostaglandins, or thromboxanes. In cells subjected to increasing doses of hydrogen peroxide (H2O2), we detected nonenzymatic production of isoprostanoids, including six phytoprostanes, three F2t-isoprostanes, two F3t-isoprostanes, and three F4t-neuroprostanes, by radical peroxidation of α-linolenic, arachidonic, eicosapentaenoic, and docosahexanoic acids, respectively. H2O2 also triggered photosynthesis impairment and TAG accumulation. F1t-phytoprostanes constitute the major class detected (300 pmol per 1 million cells; intracellular concentration, ∼4 µm). Only two glycerolipids, phosphatidylcholine and diacylglycerylhydroxymethyl-trimethyl-alanine, could provide all substrates for these isoprostanoids. Treatment of P. tricornutum with nine synthetic isoprostanoids produced an effect in the micromolar range, marked by the accumulation of TAG and reduced growth, without affecting photosynthesis. Therefore, the emission of H2O2 and free radicals upon exposure to stresses can lead to glycerolipid peroxidation and nonenzymatic synthesis of isoprostanoids, inhibiting growth and contributing to the induction of TAG accumulation via unknown processes. This characterization of nonenzymatic oxylipins in P. tricornutum opens a field of research on the study of processes controlled by isoprostanoid signaling in various physiological and environmental contexts in diatoms.
机译:硅藻在生态上的成功需要出色的能力来抵抗多种类型的压力,包括温度,光照,盐度和养分利用率的变化。暴露于这些压力下,硅藻表现出共同的响应,包括生长停滞,光合作用受损,活性氧的产生以及三酰甘油(TAG)的积累。我们研究了响应氧化应激的硅藻三角藻中脂肪酸衍生的环戊烷氧脂的生产。角果疟原虫缺乏用于产生环戊烷-氧脂,例如茉莉酸酯,前列腺素或血栓烷的酶促途径。在经受过高剂量过氧化氢(H2O2)的细胞中,我们通过对α-亚麻酸,花生四烯酸,二十碳五烯酸和二十二碳六烯酸。 H2O2也触发了光合作用障碍和TAG积累。 F1t-植物前列腺素是检测到的主要类别(每100万个细胞300 pmol;细胞内浓度约4 µm)。只有两种甘油脂,磷脂酰胆碱和二酰基甘油羟甲基-三甲基丙氨酸,可以提供这些异前列腺素的所有底物。用九种合成异前列腺素类药物处理角果疟原虫可产生微摩尔范围的效应,其特征是TAG的积累和生长减少,而不影响光合作用。因此,暴露于压力下时H2O2和自由基的释放会导致甘油脂过氧化和异前列腺素的非酶促合成,从而抑制了生长并通过未知过程有助于诱导TAG积累。三角果假单胞菌中非酶氧化脂类的这种特性为研究异硅酮类信号传导在硅藻中各种生理和环境环境中控制过程的研究开辟了一个研究领域。

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