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    三角褐指藻过氧化物酶家族的系统鉴定与功能分析

    SYSTEMATIC IDENTIFICATION AND FUNCTIONAL ANALYSIS OF THE PEROXIDASE FAMILY IN PHAEODACTYLUM TRICORNUTUM

    • 摘要: 为扩展硅藻作为合成生物学底盘生物的代谢改造能力, 提供活性氧调控的新型靶点, 本研究以三角褐指藻的过氧化物酶为目标, 系统性地鉴定了9个过氧化物酶并确定了其亚细胞定位。转录组分析发现叶绿体抗坏血酸过氧化物酶(Ascorbate peroxidase 1, APx1)的编码基因表达丰度较高, 本研究使用CRISPR/Cas9技术成功构建了APx1基因敲除突变株, 突变株的生长与野生型相比并未受到抑制但其非光化学猝灭(NPQ)系数显著下降。实验表明APx1的缺失导致了抗坏血酸-谷胱甘肽循环能力下降, 而细胞内积累的过氧化物压力导致NPQ机制相关基因表达下调, 并导致细胞抗逆能力整体下降。研究表明APx1在三角褐指藻中具有重要的过氧化物代谢功能, 是调控细胞抗逆能力的重要靶点。

       

      Abstract: Diatoms are regarded as ideal chassis organisms for synthetic biology, and their metabolic pathways involved in the biosynthesis of high-value compounds, such as polyunsaturated fatty acids and pigments, have long been major research focuses in algal biology. However, synthetic modification and metabolic pathway reconstruction often disrupt photosynthetic electron transport and induce excessive accumulation of reactive oxygen species, which severely restrict cell growth and biomass productivity in engineered algal strains. To expand the metabolic engineering potential of diatoms as chassis organisms for synthetic biology by providing novel targets for reactive oxygen species regulation, this study systematically identified nine peroxidases in Phaeodactylum tricornutum and determined their subcellular localization. Transcriptomic analysis revealed that the gene encoding the chloroplast stroma-localized ascorbate peroxidase 1 (APx1) was highly expressed, and APx1 knockout mutants were successfully generated using the CRISPR/Cas9system. Compared with the wild type, the APx1 mutants exhibited no obvious growth defects but showed a significant reduction in non-photochemical quenching (NPQ) capacity. Further analyses demonstrated that disruption of APx1 impaired the ascorbate–glutathione cycle, leading to excessive peroxide accumulation. Elevated peroxide levels further suppressed the expression of NPQ-related photoprotective genes, thereby weakening the overall stress tolerance of diatom cells. Taken together, these results demonstrate that APx1 plays a crucial role in peroxide detoxification and serves as an important regulatory target for stress resistance in P. tricornutum.

       

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