Internal Illumination to Overcome the Cell Density Limitation in the Scale-up of Whole-Cell Photobiocatalysis

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Markus Hobisch
  • Jelena Spasic
  • Lenny Malihan-Yap
  • Giovanni Davide Barone
  • Kathrin Castiglione
  • Paula Tamagnini
  • Selin Kara
  • Robert Kourist

Externe Organisationen

  • Aarhus University
  • Technische Universität Graz
  • Universidade do Porto
  • Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU Erlangen-Nürnberg)
  • Instituto de Biologia Molecular e Celular (IBCM)
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Details

OriginalspracheEnglisch
Seiten (von - bis)3219-3225
Seitenumfang7
FachzeitschriftCHEMSUSCHEM
Jahrgang14
Ausgabenummer15
Frühes Online-Datum17 Juni 2021
PublikationsstatusVeröffentlicht - 11 Aug. 2021
Extern publiziertJa

Abstract

Cyanobacteria have the capacity to use photosynthesis to fuel their metabolism, which makes them highly promising production systems for the sustainable production of chemicals. Yet, their dependency on visible light limits the cell-density, which is a challenge for the scale-up. Here, it was shown with the example of a light-dependent biotransformation that internal illumination in a bubble column reactor equipped with wireless light emitters (WLEs) could overcome this limitation. Cells of the cyanobacterium Synechocystis sp. PCC 6803 expressing the gene of the ene-reductase YqjM were used for the reduction of 2-methylmaleimide to (R)-2-methylsuccinimide with high optical purity (>99 % ee). Compared to external source of light, illumination by floating wireless light emitters allowed a more than two-fold rate increase. Under optimized conditions, product formation rates up to 3.7 mm h−1 and specific activities of up to 65.5 U gDCW−1 were obtained, allowing the reduction of 40 mm 2-methylmaleimide with 650 mg isolated enantiopure product (73 % yield). The results demonstrate the principle of internal illumination as a means to overcome the intrinsic cell density limitation of cyanobacterial biotransformations, obtaining high reaction rates in a scalable photobioreactor.

Zitieren

Internal Illumination to Overcome the Cell Density Limitation in the Scale-up of Whole-Cell Photobiocatalysis. / Hobisch, Markus; Spasic, Jelena; Malihan-Yap, Lenny et al.
in: CHEMSUSCHEM, Jahrgang 14, Nr. 15, 11.08.2021, S. 3219-3225.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Hobisch, M, Spasic, J, Malihan-Yap, L, Barone, GD, Castiglione, K, Tamagnini, P, Kara, S & Kourist, R 2021, 'Internal Illumination to Overcome the Cell Density Limitation in the Scale-up of Whole-Cell Photobiocatalysis', CHEMSUSCHEM, Jg. 14, Nr. 15, S. 3219-3225. https://doi.org/10.1002/cssc.202100832
Hobisch, M., Spasic, J., Malihan-Yap, L., Barone, G. D., Castiglione, K., Tamagnini, P., Kara, S., & Kourist, R. (2021). Internal Illumination to Overcome the Cell Density Limitation in the Scale-up of Whole-Cell Photobiocatalysis. CHEMSUSCHEM, 14(15), 3219-3225. https://doi.org/10.1002/cssc.202100832
Hobisch M, Spasic J, Malihan-Yap L, Barone GD, Castiglione K, Tamagnini P et al. Internal Illumination to Overcome the Cell Density Limitation in the Scale-up of Whole-Cell Photobiocatalysis. CHEMSUSCHEM. 2021 Aug 11;14(15):3219-3225. Epub 2021 Jun 17. doi: 10.1002/cssc.202100832
Hobisch, Markus ; Spasic, Jelena ; Malihan-Yap, Lenny et al. / Internal Illumination to Overcome the Cell Density Limitation in the Scale-up of Whole-Cell Photobiocatalysis. in: CHEMSUSCHEM. 2021 ; Jahrgang 14, Nr. 15. S. 3219-3225.
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abstract = "Cyanobacteria have the capacity to use photosynthesis to fuel their metabolism, which makes them highly promising production systems for the sustainable production of chemicals. Yet, their dependency on visible light limits the cell-density, which is a challenge for the scale-up. Here, it was shown with the example of a light-dependent biotransformation that internal illumination in a bubble column reactor equipped with wireless light emitters (WLEs) could overcome this limitation. Cells of the cyanobacterium Synechocystis sp. PCC 6803 expressing the gene of the ene-reductase YqjM were used for the reduction of 2-methylmaleimide to (R)-2-methylsuccinimide with high optical purity (>99 % ee). Compared to external source of light, illumination by floating wireless light emitters allowed a more than two-fold rate increase. Under optimized conditions, product formation rates up to 3.7 mm h−1 and specific activities of up to 65.5 U gDCW−1 were obtained, allowing the reduction of 40 mm 2-methylmaleimide with 650 mg isolated enantiopure product (73 % yield). The results demonstrate the principle of internal illumination as a means to overcome the intrinsic cell density limitation of cyanobacterial biotransformations, obtaining high reaction rates in a scalable photobioreactor.",
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AU - Hobisch, Markus

AU - Spasic, Jelena

AU - Malihan-Yap, Lenny

AU - Barone, Giovanni Davide

AU - Castiglione, Kathrin

AU - Tamagnini, Paula

AU - Kara, Selin

AU - Kourist, Robert

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