4.7 Article Proceedings Paper

On the use of oxygenic photosynthesis for the sustainable production of commodity chemicals

期刊

PHYSIOLOGIA PLANTARUM
卷 166, 期 1, 页码 413-427

出版社

WILEY
DOI: 10.1111/ppl.12946

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资金

  1. European Commission Marie Sklodowska-Curie European Fellowship under the Society and Enterprise panel [752384]
  2. European Union's Horizon 2020 research and innovation programme [760994]
  3. Marie Curie Actions (MSCA) [752384] Funding Source: Marie Curie Actions (MSCA)

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A sustainable society will have to largely refrain from the use of fossil carbon deposits. In such a regime, renewable electricity can be harvested as a primary source of energy. However, as for the synthesis of carbon-based materials from bulk chemicals, an alternative is required. A sustainable approach towards this is the synthesis of commodity chemicals from CO2, water and sunlight. Multiple paths to achieve this have been designed and tested in the domains of chemistry and biology. In the latter, the use of both chemotrophic and phototrophic organisms has been advocated. Direct conversion' of CO2 and H2O, catalyzed by an oxyphototroph, has excellent prospects to become the most economically competitive of these transformations, because of the relative ease of scale-up of this process. Significantly, for a wide range of energy and commodity products, a proof of principle via engineering of the corresponding production organism has been provided. In the optimization of a cyanobacterial production organism, a wide range of aspects has to be addressed. Of these, here we will put our focus on: (1) optimizing the (carbon) flux to the desired product; (2) increasing the genetic stability of the producing organism and (3) maximizing its energy conversion efficiency. Significant advances have been made on all these three aspects during the past 2years and these will be discussed: (1) increasing the carbon partitioning to >50%; (2) aligning product formation with the growth of the cells and (3) expanding the photosynthetically active radiation region for oxygenic photosynthesis.

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