Transcriptome analysis of the dimorphic transition induced by pH change and lipid biosynthesis in Trichosporon cutaneum

Author:

Wang Ya12,Tang Li Juan3,Peng Xuan3,Zhang Zhi Bin3,Yang Hui Lin3,Yan Ri Ming3,Zhu Du13

Affiliation:

1. grid.411864.e College of Life Sciences Jiangxi Science and Technology Normal University 330013 Nanchang China

2. grid.16821.3c 0000 0004 0368 8293 State Key Laboratory of Microbial Metabolism & School of Life Science and Biotechnology Shanghai Jiao Tong University 800 Dongchuan Rd. 200240 Shanghai China

3. grid.411862.8 0000 0000 8732 9757 Key Laboratory of Protection and Utilization of Subtropic Plant Resources of Jiangxi Province Jiangxi Normal University 330022 Nanchang China

Abstract

Abstract Trichosporon cutaneum, a dimorphic oleaginous yeast, has immense biotechnological potential, which can use lignocellulose hydrolysates to accumulate lipids. Our preliminary studies on its dimorphic transition suggested that pH can significantly induce its morphogenesis. However, researches on dimorphic transition correlating with lipid biosynthesis in oleaginous yeasts are still limited. In this study, the unicellular yeast cells induced under pH 6.0–7.0 shake flask cultures resulted in 54.32% lipid content and 21.75 g/L dry cell weight (DCW), so lipid production was over threefold than that in hypha cells induced by acidic condition (pH 3.0–4.0). Furthermore, in bioreactor batch cultivation, the DCW and lipid content in unicellular yeast cells can reach 21.94 g/L and 58.72%, respectively, both of which were also more than twofold than that in hypha cells. Moreover, the activities of isocitrate dehydrogenase (IDH), malic enzyme (MAE), isocitrate lyase (ICL) and ATP citrate lyase (ACL) in unicellular cells were all higher than in the hyphal cells. In the meanwhile, the transcriptome data showed that the genes related to fatty acid biosynthesis, carbon metabolism and encoded Rim101 and cAMP–PKA signaling transduction pathways were significantly up-regulated in unicellular cells, which may play an important role in enhancing the lipid accumulation. In conclusion, our results provided insightful information focused on the molecular mechanism of dimorphic transition and process optimization for enhancing lipid accumulation in T. cutaneum.

Funder

National Natural Science Foundation of China

Jiangxi Provincial Science Foundation for Distinguished Young Scholars

Foundation of Jiangxi Provincial Department of Education

Jiangxi Provincial Department of Education for Technological Innovations

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Biotechnology,Bioengineering

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