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Wu Ying-Mei, Liao Qing-Gang, Shang Yi, Gong Zhen-Ping, Gou Jun-Bo. Recent progress of paclitaxel biosynthesis aided by multi-omics[J]. Plant Science Journal, 2022, 40(6): 853-866. DOI: 10.11913/PSJ.2095-0837.2022.60853
Citation: Wu Ying-Mei, Liao Qing-Gang, Shang Yi, Gong Zhen-Ping, Gou Jun-Bo. Recent progress of paclitaxel biosynthesis aided by multi-omics[J]. Plant Science Journal, 2022, 40(6): 853-866. DOI: 10.11913/PSJ.2095-0837.2022.60853

Recent progress of paclitaxel biosynthesis aided by multi-omics

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This work was supported by grants from the National Natural Science Foundation of China (32000236) and the National Key R&D Program of China (2019YFA09006200).

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  • Received Date: June 06, 2022
  • Revised Date: July 17, 2022
  • Available Online: January 12, 2023
  • Taxol (generic name paclitaxel) is a highly effective anti-cancer agent widely used in the clinical treatment of various cancers. At present, the production of paclitaxel is primarily based on artificial semi-synthesis from extracted intermediates (such as baccatin Ⅲ). This commercial method still relies on Taxus plant resources, resulting in high medical costs. The rise of synthetic biology provides a novel approach to acquire sufficient paclitaxel, but research on its biosynthesis is yet to be advanced. Recently, multi-omics approaches have been applied in biosynthesis research on paclitaxel. In the present paper, we review recent progress on the biosynthesis, regulation, and heterologous production of paclitaxel aided by multi-omics, providing new insights into paclitaxel biosynthesis.
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