Metabolic engineering of Saccharomyces cerevisiae chassis

被引:3
|
作者
Zhang, Yunfeng [1 ]
He, Dan [1 ]
Lu, Huan [1 ]
Huang, Jiandong [1 ]
Luo, Xiaozhou [1 ]
机构
[1] Chinese Acad Sci, Shenzhen Inst Synthet Biol, Shenzhen Inst Adv Technol, CAS Key Lab Quantitat Engn Biol, Shenzhen 518055, Peoples R China
来源
CHINESE SCIENCE BULLETIN-CHINESE | 2021年 / 66卷 / 03期
关键词
Saccharomyces cerevisiae; synthetic biology; acetyl-CoA; terpenoid; fatty acid; HIGH-LEVEL PRODUCTION; BETA-OXIDATION CYCLE; FATTY-ACID SYNTHESIS; HISTONE ACETYLATION; SYNTHETASE; EXPRESSION; REVERSAL; PATHWAY; FUELS;
D O I
10.1360/TB-2020-0494
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Saccharomyces cerevisiae acts as a bio-foundry for producing natural products. S. cerevisiae's intrinsic pathways highlight microbial cell factories to produce pharmaceutics, food additive, and fine chemicals. For high-titer, yield, and conversion of target compounds, the critical point is that fine-tuning and optimizing intracellular metabolic flux in the yeast cell. Acetyl-CoA is the fundamental precursor for central metabolism and heterologous pathway. In comparison, acetyl-CoA compartmentalizes in mitochondria, nucleus, peroxisome subcellular, and cytosol. Most of the pathway enzymes are expressed in S. cerevisiae cytosol. So, we summarized the fine-tuning strategies of acetyl-CoA synthesis in cytosol matrix. The new acetyl-CoA pathway (phosphoketolase, phosphotransacetylase, and acetaldehyde dehydrogenase, PK/PTA-ADA) shows a high conversion ratio from the carbon source. The PK/PTA-ADA pathway presents improved redox balance, limited ATP requirement, and reduced carbon loss to CO2. Moreover, the heterologous ATP-dependent citrate lyase precisely converts mitochondria metabolism into acetyl-CoA. Knock-out acetyl-CoA depletion pathways retain high acetyl-CoA titer in the cytosol. The continuous metabolic engineering on PK/PTA-ADA pathway is expected for higher acetyl-CoA titer. The Mevalonate pathway has been engineered to produce terpenoids in S. cerevisiae. The exogenous HMG-CoA synthase and HMG-CoA reductase boost mevalonate pathway from acetyl-CoA. Further, the diversified terpenoids are generated from C-5 unite Isopentenyl diphosphate and its' isomer dimethylallyl diphosphate. Intrinsic farnesyl diphosphate synthase (Erg20) shows both dimethylallyltransferase (geranyl diphosphate, C-10 product) and geranyltransferase (farnesyl diphosphate, C-15 product) activity. The F96W/N127W mutations in Erg20 caused steric hindrance for geranyl diphosphate substrate. So, geranyl diphosphate is accumulated to produce C-10 terpenoids or meroterpenoids. Moreover, geranylgeranyl diphosphate synthase (CrtE) convert farnesyl diphosphate (C-15) into geranylgeranyl diphosphate (C-20) for carotene, lycopene, astaxanthin, and taxol, etc. Interestingly, the novel isopentenol utilization pathway has been constructed in E. coli and Y. lipolytica to supply IPP and IMAPP precursors from isopentanol. This alternative pathway could relieve the acetyl-CoA supply burden in the mevalonate pathway. Fatty acid synthase (FAS) produces fatty acid with specific carbon length and derivatives from acetyl-CoA and malonyl-CoA. Acetyl-CoA carboxylase (ACC1) catalyzes acetyl-CoA to produce malonyl-CoA, which is utilized as the carbon unite in fatty acid pathway. Overexpression of ACC1 and mitochondria located isoenzyme Hfa1 significantly improves fatty acid production. FAS in S. cerevisiae is an alpha 6 beta 6 heterodimer protein and these catalytic domains are engineered to produce specific fatty acids. Directed mutations in ketoacyl synthase (KS), acetyltransferase (AT), and malonyl/palmitoyl transferase (MPT) domains engage FAS to generate high-yield short/medium fatty acid (C-6 and C-8). Furthermore, fatty acid reductase and acyl-ACP reductase convert fatty acid or fatty acyl-ACP to fatty aldehydes, respectively. Aldehyde deformylating oxygenase produces alkanes from fatty aldehydes substrate. Significantly, fatty acid-derived bio hydrocarbons showed closets properties to petroleum fuel. We reviewed the metabolic strategies of acetyl-CoA synthesis, the novel mevalonate pathway and fatty acid synthesis. These strategies may be valuable for producing high-yield terpene and fatty acid derivatives in Saccharomyces cerevisiae.
引用
收藏
页码:310 / 318
页数:9
相关论文
共 42 条
  • [1] ANDERSON MS, 1989, J BIOL CHEM, V264, P19176
  • [2] Oils and Fats as Renewable Raw Materials in Chemistry
    Biermann, Ursula
    Bornscheuer, Uwe
    Meier, Michael A. R.
    Metzger, Juergen O.
    Schaefer, Hans J.
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2011, 50 (17) : 3854 - 3871
  • [3] Acetate Recapturing by Nuclear Acetyl-CoA Synthetase 2 Prevents Loss of Histone Acetylation during Oxygen and Serum Limitation
    Bulusu, Vinay
    Tumanov, Sergey
    Michalopoulou, Evdokia
    van den Broek, Niels J.
    MacKay, Gillian
    Nixon, Colin
    Dhayade, Sandeep
    Schug, Zachary T.
    Voorde, Johan Vande
    Blyth, Karen
    Gottlieb, Eyal
    Vazquez, Alexei
    Kamphorst, Jurre J.
    [J]. CELL REPORTS, 2017, 18 (03): : 647 - 658
  • [4] Establishing a platform cell factory through engineering of yeast acetyl-CoA metabolism
    Chen, Yun
    Daviet, Laurent
    Schalk, Michel
    Siewers, Verena
    Nielsen, Jens
    [J]. METABOLIC ENGINEERING, 2013, 15 : 48 - 54
  • [5] Improving polyketide and fatty acid synthesis by engineering of the yeast acetyl-CoA carboxylase
    Choi, Jin Wook
    Da Silva, Nancy A.
    [J]. JOURNAL OF BIOTECHNOLOGY, 2014, 187 : 56 - 59
  • [6] Engineering high-level production of fatty alcohols by Saccharomyces cerevisiae from lignocellulosic feedstocks
    d'Espaux, Leo
    Ghosh, Amit
    Runguphan, Weerawat
    Wehrs, Maren
    Xu, Feng
    Konzock, Oliver
    Dev, Ishaan
    Nhan, Melissa
    Gin, Jennifer
    Apel, Amanda Reider
    Petzold, Christopher J.
    Singh, Seema
    Simmons, Blake A.
    Mukhopadhyay, Aindrila
    Martin, Hector Garcia
    Keasling, Jay D.
    [J]. METABOLIC ENGINEERING, 2017, 42 : 115 - 125
  • [7] Global rewiring of cellular metabolism renders Saccharomyces cerevisiae Crabtree negative
    Dai, Zongjie
    Huang, Mingtao
    Chen, Yun
    Siewers, Verena
    Nielsen, Jens
    [J]. NATURE COMMUNICATIONS, 2018, 9
  • [8] Discovery of a metabolic alternative to the classical mevalonate pathway
    Dellas, Nikki
    Thomas, Suzanne T.
    Manning, Gerard
    Noel, Joseph P.
    [J]. ELIFE, 2013, 2
  • [9] Engineered reversal of the β-oxidation cycle for the synthesis of fuels and chemicals
    Dellomonaco, Clementina
    Clomburg, James M.
    Miller, Elliot N.
    Gonzalez, Ramon
    [J]. NATURE, 2011, 476 (7360) : 355 - U131
  • [10] Orthogonal Fatty Acid Biosynthetic Pathway Improves Fatty Acid Ethyl Ester Production in Saccharomyces cerevisiae
    Eriksen, Dawn T.
    HamediRad, Mohammad
    Yuan, Yongbo
    Zhao, Huimin
    [J]. ACS SYNTHETIC BIOLOGY, 2015, 4 (07): : 808 - 814