Literature DB >> 23685199

Advancing oleaginous microorganisms to produce lipid via metabolic engineering technology.

Ming-Hua Liang1, Jian-Guo Jiang.   

Abstract

With the depletion of global petroleum and its increasing price, biodiesel has been becoming one of the most promising biofuels for global fuels market. Researchers exploit oleaginous microorganisms for biodiesel production due to their short life cycle, less labor required, less affection by venue, and easier to scale up. Many oleaginous microorganisms can accumulate lipids, especially triacylglycerols (TAGs), which are the main materials for biodiesel production. This review is covering the related researches on different oleaginous microorganisms, such as yeast, mold, bacteria and microalgae, which might become the potential oil feedstocks for biodiesel production in the future, showing that biodiesel from oleaginous microorganisms has a great prospect in the development of biomass energy. Microbial oils biosynthesis process includes fatty acid synthesis approach and TAG synthesis approach. In addition, the strategies to increase lipids accumulation via metabolic engineering technology, involving the enhancement of fatty acid synthesis approach, the enhancement of TAG synthesis approach, the regulation of related TAG biosynthesis bypass approaches, the blocking of competing pathways and the multi-gene approach, are discussed in detail. It is suggested that DGAT and ME are the most promising targets for gene transformation, and reducing PEPC activity is observed to be beneficial for lipid production.
Copyright © 2013 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  ACC; ACL; ACP; ADP-glucose pyrophosphate; AGPase; AOX; ARA; ATP:citrate lyase; BE; Biodiesel; CDP-DAG; CDP-diacylglycerol; DAG; DGAT; DHA; DHAP; DHAP acyltransferase; DHAPAT; EPA; FAS; FAT; FFA; G-1-P; G-6-P; G3P; GAP; GLA; GPAT; GPD1 and GUT2; KAS; LPA; LPAT; Lipids; MAT; ME; Metabolic engineering; Microalgae; Microbial oils; Oleaginous microorganisms; PA; PAP; PDAT; PDH; PEP; PEPC; PYC; Pi; SS; TAG; WS/DGAT; acetyl-CoA carboxylase; acyl-ACP-thioesterase; acyl-CoA oxidase; acyl-carrier protein; arachidonic acid; branching enzymes; diacylglycerol; diacylglycerol acyl-transferase; dihydroxyacetone phosphate; docosahexenoic acid; eicosapentaenoic acid; fatty acid synthetase; free fatty acid; gamma-linolenic acid; glucose 1-phosphate; glucose 6-phosphate; glyceraldehyde 3-phosphate; glycerol 3-phosphate dehydrogenase; glycerol-3-phosphate; glycerol-3-phosphate acyltransferase; inorganic pyrophosphate; lysophosphatidate; lysophosphatidate acyl-transferase; malic enzyme; malonyl-CoA:ACP transacetylase; phosphatidate; phosphatidic acid phosphatase; phosphoenolpyruvate; phosphoenolpyruvate carboxylase; phospholipid:diacylglycerol acyltransferase; pyruvate carboxylase; pyruvate dehydrogenase; starch synthase; triacylglycerol; wax ester synthase/acyl-CoA:diacylglycerol acyltransferase; β-ketoacyl-ACP synthase

Mesh:

Substances:

Year:  2013        PMID: 23685199     DOI: 10.1016/j.plipres.2013.05.002

Source DB:  PubMed          Journal:  Prog Lipid Res        ISSN: 0163-7827            Impact factor:   16.195


  62 in total

1.  A Fatty Acyl Coenzyme A Reductase Promotes Wax Ester Accumulation in Rhodococcus jostii RHA1.

Authors:  James Round; Raphael Roccor; Shu-Nan Li; Lindsay D Eltis
Journal:  Appl Environ Microbiol       Date:  2017-09-29       Impact factor: 4.792

2.  Improvement of lipid production by the oleaginous yeast Rhodosporidium toruloides through UV mutagenesis.

Authors:  Ryosuke Yamada; Tomomi Kashihara; Hiroyasu Ogino
Journal:  World J Microbiol Biotechnol       Date:  2017-04-20       Impact factor: 3.312

3.  Genome-wide identification and evolutionary analysis of algal LPAT genes involved in TAG biosynthesis using bioinformatic approaches.

Authors:  Namrata Misra; Prasanna Kumar Panda; Bikram Kumar Parida
Journal:  Mol Biol Rep       Date:  2014-10-04       Impact factor: 2.316

4.  Co-culturing of oleaginous microalgae and yeast: paradigm shift towards enhanced lipid productivity.

Authors:  Neha Arora; Alok Patel; Juhi Mehtani; Parul A Pruthi; Vikas Pruthi; Krishna Mohan Poluri
Journal:  Environ Sci Pollut Res Int       Date:  2019-04-27       Impact factor: 4.223

5.  The Phospholipid:Diacylglycerol Acyltransferase-Mediated Acyl-Coenzyme A-Independent Pathway Efficiently Diverts Fatty Acid Flux from Phospholipid into Triacylglycerol in Escherichia coli.

Authors:  Lian Wang; Shan Jiang; Wen-Chao Chen; Xue-Rong Zhou; Ting-Xuan Huang; Feng-Hong Huang; Xia Wan
Journal:  Appl Environ Microbiol       Date:  2020-09-01       Impact factor: 4.792

6.  Lipid Production by Rhodotorula glutinis in Continuous Cultivation with a Gravity Sedimentation System.

Authors:  Hongwei Shen; Qiang Li; Xue Yu
Journal:  Indian J Microbiol       Date:  2019-12-09       Impact factor: 2.461

7.  Strain design of Ashbya gossypii for single-cell oil production.

Authors:  Rodrigo Ledesma-Amaro; María A Santos; Alberto Jiménez; José Luis Revuelta
Journal:  Appl Environ Microbiol       Date:  2013-12-06       Impact factor: 4.792

8.  Oxygen-dependent regulation of bacterial lipid production.

Authors:  Kimberly C Lemmer; Alice C Dohnalkova; Daniel R Noguera; Timothy J Donohue
Journal:  J Bacteriol       Date:  2015-03-02       Impact factor: 3.490

Review 9.  Research advances on arachidonic acid production by fermentation and genetic modification of Mortierella alpina.

Authors:  Huidan Zhang; Qiu Cui; Xiaojin Song
Journal:  World J Microbiol Biotechnol       Date:  2021-01-04       Impact factor: 3.312

Review 10.  Exploitation of genus Rhodosporidium for microbial lipid production.

Authors:  Jingyang Xu; Dehua Liu
Journal:  World J Microbiol Biotechnol       Date:  2017-02-20       Impact factor: 3.312

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