TY - JOUR
T1 - Yeasts of the Blastobotrys genus are promising platform for lipid-based fuels and oleochemicals production
AU - Sanya, Daniel Ruben Akiola
AU - Onesime, Djamila
AU - Passoth, Volkmar
AU - Maiti, Mrinal K.
AU - Chattopadhyay, Atrayee
AU - Khot, Mahesh B.
PY - 2021
Y1 - 2021
N2 - Strains of the yeast genus Blastobotrys (subphylum Saccharomycotina) represent a valuable biotechnological resource for basic biochemistry research, single-cell protein, and heterologous protein production processes. Species of this genus are dimorphic, non-pathogenic, thermotolerant, and can assimilate a variety of hydrophilic and hydrophobic substrates. These can constitute a single-cell oil platform in an emerging bio-based economy as oleaginous traits have been discovered recently. However, the regulatory network of lipogenesis in these yeasts is poorly understood. To keep pace with the growing market demands for lipid-derived products, it is critical to understand the lipid biosynthesis in these unconventional yeasts to pinpoint what governs the preferential channelling of carbon flux into lipids instead of the competing pathways. This review summarizes information relevant to the regulation of lipid metabolic pathways and prospects of metabolic engineering in Blastobotrys yeasts for their application in food, feed, and beyond, particularly for fatty acid-based fuels and oleochemicals.
AB - Strains of the yeast genus Blastobotrys (subphylum Saccharomycotina) represent a valuable biotechnological resource for basic biochemistry research, single-cell protein, and heterologous protein production processes. Species of this genus are dimorphic, non-pathogenic, thermotolerant, and can assimilate a variety of hydrophilic and hydrophobic substrates. These can constitute a single-cell oil platform in an emerging bio-based economy as oleaginous traits have been discovered recently. However, the regulatory network of lipogenesis in these yeasts is poorly understood. To keep pace with the growing market demands for lipid-derived products, it is critical to understand the lipid biosynthesis in these unconventional yeasts to pinpoint what governs the preferential channelling of carbon flux into lipids instead of the competing pathways. This review summarizes information relevant to the regulation of lipid metabolic pathways and prospects of metabolic engineering in Blastobotrys yeasts for their application in food, feed, and beyond, particularly for fatty acid-based fuels and oleochemicals.
KW - Oleaginous yeasts
KW - Recombinant proteins
KW - Biofuels
KW - Blastobotrys genus
KW - Lipid feedstock
KW - Metabolic engineering
KW - Oleaginous yeasts
KW - Recombinant proteins
KW - Biofuels
KW - Blastobotrys genus
KW - Lipid feedstock
KW - Metabolic engineering
UR - https://res.slu.se/id/publ/112599
U2 - 10.1007/s00253-021-11354-3
DO - 10.1007/s00253-021-11354-3
M3 - Journal article
SN - 0175-7598
JO - Applied Microbiology and Biotechnology
JF - Applied Microbiology and Biotechnology
ER -