4.7 Article

Enhancement of the flavone contents of Scutellaria baicalensis hairy roots via metabolic engineering using maize Lc and Arabidopsis PAP1 transcription factors

Journal

METABOLIC ENGINEERING
Volume 64, Issue -, Pages 64-73

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.ymben.2021.01.003

Keywords

Scutellaria baicalensis; Transcription factor; AtPAP1; ZmLc; Flavone

Funding

  1. National Research Foundation of Korea (NRF) - Korean government (Ministry of Science and ICT) [NRF-2019R1A2C1005171]
  2. Next Generation BioGreen 21 Program (SSAC), Rural Development Administration, Republic of Korea [PJ013328]
  3. National Research Foundation of Korea [5120200213620] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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The transcription factors Lc and PAP1 can enhance the production of flavonoid compounds in Scutellaria baicalensis, leading to increased total flavonoid contents. This indicates their potential application as positive regulators in metabolic engineering to boost flavonoid production in hairy root cultures.
Baicalin, baicalein, and wogonin are valuable natural flavonoid compounds produced by Scutellaria baicalensis. In this study, we showed that the maize transcription factor Lc can enhance the production of these three flavonoids in hairy root cultures of S. baicalensis by comprehensively upregulating flavonoid biosynthesis pathway genes (SbPAL1, SbC4H, and Sb4CL) and baicalein 7-O-glucuronosyltransferase (UBGAT), ultimately yielding total flavonoid contents of up to 80.5 +/- 6.15 mg g(-1) dry weight, which was 322% greater than the average value of total flavonoid contents produced by three GUS-overexpressing lines. Similarly, the Arabidopsis transcription factor PAP1 was found to enhance flavonoid accumulation by upregulating SbPAL1, SbPAL2, SbPAL3, SbC4H, Sb4CL, SbCHI, and UBGAT, ultimately yielding total flavonoid contents of up to 133 +/- 7.66 mg g(-1) dry weight, which was 532% greater than the average value of total flavonoid contents produced by three GUS-over expressing lines. These findings indicate that metabolic engineering in S. baicalensis can be achieved using Agrobacterium rhizogenes-mediated transformation and that the production of baicalin, baicalein, and wogonin can be enhanced via the overexpression of ZmLc and AtPAP1 in hairy root cultures. These results also indicate that ZmLc and AtPAP1 can be used as positive regulators of the flavonoid biosynthetic pathway of S. baicalensis hairy root cultures.

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