Evaluation of synthetic formaldehyde and methanol assimilation pathways in Yarrowia lipolytica
Crude glycerol coming from biodiesel production is an attractive carbon source for biological production of chemicals. The major impurity in preparations of crude glycerol is methanol, which is toxic for most microbes. Development of microbes, which would not only tolerate the methanol, but also use...
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Veröffentlicht in: | Fungal biology and biotechnology 2019-12, Vol.6 (1), p.27-13, Article 27 |
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Sprache: | eng |
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Zusammenfassung: | Crude glycerol coming from biodiesel production is an attractive carbon source for biological production of chemicals. The major impurity in preparations of crude glycerol is methanol, which is toxic for most microbes. Development of microbes, which would not only tolerate the methanol, but also use it as co-substrate, would increase the feasibility of bioprocesses using crude glycerol as substrate.
To prevent methanol conversion to CO
via formaldehyde and formate, the formaldehyde dehydrogenase (FLD) gene was identified in and deleted from
The deletion strain was able to convert methanol to formaldehyde without expression of heterologous methanol dehydrogenases. Further, it was shown that expression of heterologous formaldehyde assimilating enzymes could complement the deletion of FLD. The expression of either 3-hexulose-6-phosphate synthase (HPS) enzyme of ribulose monosphosphate pathway or dihydroxyacetone synthase (DHAS) enzyme of xylulose monosphosphate pathway restored the formaldehyde tolerance of the formaldehyde sensitive Δ
strain.
In silico, the expression of heterologous formaldehyde assimilation pathways enable
to use methanol as substrate for growth and metabolite production. In vivo, methanol was shown to be converted to formaldehyde and the enzymes of formaldehyde assimilation were actively expressed in this yeast. However, further development is required to enable
to efficiently use methanol as co-substrate with glycerol. |
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ISSN: | 2054-3085 2054-3085 |
DOI: | 10.1186/s40694-019-0090-9 |