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Autophagy Improves ARA-Rich TAG Accumulation in Mortierella alpina by Regulating Resource Allocation

The present study was designed to explore the possibility of improving lipid production in oleaginous filamentous fungus Mortierella alpina based on an autophagy regulation strategy. According to multiomics information, vacuolate-centered macroautophagy was identified as the main type of autophagy i...

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Autores principales: Lu, Hengqian, Chen, Haiqin, Tang, Xin, Yang, Qin, Zhang, Hao, Chen, Yong Q., Chen, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8881083/
https://www.ncbi.nlm.nih.gov/pubmed/35138146
http://dx.doi.org/10.1128/spectrum.01300-21
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author Lu, Hengqian
Chen, Haiqin
Tang, Xin
Yang, Qin
Zhang, Hao
Chen, Yong Q.
Chen, Wei
author_facet Lu, Hengqian
Chen, Haiqin
Tang, Xin
Yang, Qin
Zhang, Hao
Chen, Yong Q.
Chen, Wei
author_sort Lu, Hengqian
collection PubMed
description The present study was designed to explore the possibility of improving lipid production in oleaginous filamentous fungus Mortierella alpina based on an autophagy regulation strategy. According to multiomics information, vacuolate-centered macroautophagy was identified as the main type of autophagy in M. alpina under nitrogen-limited conditions. Mutation of autophagy-related gene MAatg8 led to impaired fatty acid synthesis, while overexpression of both MAatg8 and phosphatidylserine decarboxylases (MApsd2) showed promoting effects on fatty acid synthesis. MAatg8 overexpression strain with external supply of ethanolamine significantly increased arachidonic acid (ARA)-rich triacylglycerol (TAG) and biomass synthesis in M. alpina, and the final fatty acid content increased by approximately 110% compared with that in the wild-type strain. Metabolomics and lipidomics analyses revealed that cell autophagy enhanced the recycling of preformed carbon, nitrogen, and lipid in mycelium, and the released carbon skeleton and energy were contributed to the accumulation of TAG in M. alpina. This study suggests that regulation of autophagy-related MAatg8-phosphatidylethanolamine (MAatg8-PE) conjugation system could be a promising strategy for attaining higher lipid production and biomass growth. The mechanism of autophagy in regulating nitrogen limitation-induced lipid accumulation elucidated in this study provides a reference for development of autophagy-based strategies for improving nutrient use efficiency and high value-added lipid production by oleaginous microorganism. IMPORTANCE Studies have indicated that functional oil accumulation occurs in oleaginous microorganisms under nitrogen limitation. However, until now, large-scale application of nitrogen-deficiency strategies was limited by low biomass. Therefore, the identification of the critical nodes of nitrogen deficiency-induced lipid accumulation is urgently needed to further guide functional oil production. The significance of our research is in uncovering the function of cell autophagy in the ARA-rich TAG accumulation of oleaginous fungus M. alpina and demonstrating the feasibility of improving lipid production based on an autophagy regulation strategy at the molecular and omics levels. Our study proves that regulation of cell autophagy through the MAatg8-PE conjugation system-related gene overexpression or exogenous supply of ethanolamine would be an efficient strategy to increase and maintain biomass productivity when high TAG content is obtained under nitrogen deficiency, which could be useful for the development of new strategies that will achieve more biomass and maximal lipid productivity.
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spelling pubmed-88810832022-03-03 Autophagy Improves ARA-Rich TAG Accumulation in Mortierella alpina by Regulating Resource Allocation Lu, Hengqian Chen, Haiqin Tang, Xin Yang, Qin Zhang, Hao Chen, Yong Q. Chen, Wei Microbiol Spectr Research Article The present study was designed to explore the possibility of improving lipid production in oleaginous filamentous fungus Mortierella alpina based on an autophagy regulation strategy. According to multiomics information, vacuolate-centered macroautophagy was identified as the main type of autophagy in M. alpina under nitrogen-limited conditions. Mutation of autophagy-related gene MAatg8 led to impaired fatty acid synthesis, while overexpression of both MAatg8 and phosphatidylserine decarboxylases (MApsd2) showed promoting effects on fatty acid synthesis. MAatg8 overexpression strain with external supply of ethanolamine significantly increased arachidonic acid (ARA)-rich triacylglycerol (TAG) and biomass synthesis in M. alpina, and the final fatty acid content increased by approximately 110% compared with that in the wild-type strain. Metabolomics and lipidomics analyses revealed that cell autophagy enhanced the recycling of preformed carbon, nitrogen, and lipid in mycelium, and the released carbon skeleton and energy were contributed to the accumulation of TAG in M. alpina. This study suggests that regulation of autophagy-related MAatg8-phosphatidylethanolamine (MAatg8-PE) conjugation system could be a promising strategy for attaining higher lipid production and biomass growth. The mechanism of autophagy in regulating nitrogen limitation-induced lipid accumulation elucidated in this study provides a reference for development of autophagy-based strategies for improving nutrient use efficiency and high value-added lipid production by oleaginous microorganism. IMPORTANCE Studies have indicated that functional oil accumulation occurs in oleaginous microorganisms under nitrogen limitation. However, until now, large-scale application of nitrogen-deficiency strategies was limited by low biomass. Therefore, the identification of the critical nodes of nitrogen deficiency-induced lipid accumulation is urgently needed to further guide functional oil production. The significance of our research is in uncovering the function of cell autophagy in the ARA-rich TAG accumulation of oleaginous fungus M. alpina and demonstrating the feasibility of improving lipid production based on an autophagy regulation strategy at the molecular and omics levels. Our study proves that regulation of cell autophagy through the MAatg8-PE conjugation system-related gene overexpression or exogenous supply of ethanolamine would be an efficient strategy to increase and maintain biomass productivity when high TAG content is obtained under nitrogen deficiency, which could be useful for the development of new strategies that will achieve more biomass and maximal lipid productivity. American Society for Microbiology 2022-02-09 /pmc/articles/PMC8881083/ /pubmed/35138146 http://dx.doi.org/10.1128/spectrum.01300-21 Text en Copyright © 2022 Lu et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Lu, Hengqian
Chen, Haiqin
Tang, Xin
Yang, Qin
Zhang, Hao
Chen, Yong Q.
Chen, Wei
Autophagy Improves ARA-Rich TAG Accumulation in Mortierella alpina by Regulating Resource Allocation
title Autophagy Improves ARA-Rich TAG Accumulation in Mortierella alpina by Regulating Resource Allocation
title_full Autophagy Improves ARA-Rich TAG Accumulation in Mortierella alpina by Regulating Resource Allocation
title_fullStr Autophagy Improves ARA-Rich TAG Accumulation in Mortierella alpina by Regulating Resource Allocation
title_full_unstemmed Autophagy Improves ARA-Rich TAG Accumulation in Mortierella alpina by Regulating Resource Allocation
title_short Autophagy Improves ARA-Rich TAG Accumulation in Mortierella alpina by Regulating Resource Allocation
title_sort autophagy improves ara-rich tag accumulation in mortierella alpina by regulating resource allocation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8881083/
https://www.ncbi.nlm.nih.gov/pubmed/35138146
http://dx.doi.org/10.1128/spectrum.01300-21
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