1 |
High-quality genome-scale metabolic model of Aurantiochytrium sp. T66 Simensen V, Voigt A, Almaas E Biotechnology and Bioengineering, 118(5), 2105, 2021 |
2 |
The strategies to reduce cost and improve productivity in DHA production by Aurantiochytrium sp.: from biochemical to genetic respects Xu XD, Huang CY, Xu ZX, Xu HX, Wang Z, Yu XJ Applied Microbiology and Biotechnology, 104(22), 9433, 2020 |
3 |
Ultrasound-assisted in-situ transesterification of wet Aurantiochytrium sp KRS 101 using potassium carbonate Sung M, Han JI Bioresource Technology, 261, 117, 2018 |
4 |
A lignocellulosic hydrolysate-tolerant Aurantiochytrium sp mutant strain for docosahexaenoic acid production Qi F, Zhang ML, Chen YW, Jiang XZ, Lin JX, Cao X, Huang JZ Bioresource Technology, 227, 221, 2017 |
5 |
Pyrolysis. characteristics and kinetics of microalgal Aurantiochytrium sp KRS101 Vo TK, Ly HV, Lee OK, Lee EY, Kim CH, Seo JW, Kim J, Kim SS Energy, 118, 369, 2017 |
6 |
Alkaline in situ transesterification of Aurantiochytrium sp KRS 101 using potassium carbonate Sung M, Han JI Bioresource Technology, 205, 250, 2016 |
7 |
Lipase-catalyzed in-situ biosynthesis of glycerol-free biodiesel from heterotrophic microalgae, Aurantiochytrium sp KRS101 biomass Kim KH, Lee OK, Kim CH, Seo JW, Oh BR, Lee EY Bioresource Technology, 211, 472, 2016 |
8 |
Kinetics study of the hydrothermal liquefaction of the microalga Aurantiochytrium sp KRS101 Vo TK, Lee OK, Lee EY, Kim CH, Seo JW, Kim J, Kim SS Chemical Engineering Journal, 306, 763, 2016 |
9 |
A new strategy for strain improvement of Aurantiochytrium sp based on heavy-ions mutagenesis and synergistic effects of cold stress and inhibitors of enoyl-ACP reductase Cheng YR, Sun ZJ, Cui GZ, Song XJ, Cui Q Enzyme and Microbial Technology, 93-94, 182, 2016 |
10 |
Metabolomics analysis reveals 6-benzylaminopurine as a stimulator for improving lipid and DHA accumulation of Aurantiochytriumsp. Yu XJ, Sun J, Zheng JY, Sun YQ, Wang Z Journal of Chemical Technology and Biotechnology, 91(4), 1199, 2016 |