"uuid","repository link","title","author","contributor","publication year","abstract","subject topic","language","publication type","publisher","isbn","issn","patent","patent status","bibliographic note","access restriction","embargo date","faculty","department","research group","programme","project","coordinates"
"uuid:c7f9a197-73d6-4ed3-a703-d064db50cf9f","http://resolver.tudelft.nl/uuid:c7f9a197-73d6-4ed3-a703-d064db50cf9f","Engineering Acetyl Coenzyme A Supply: Functional Expression of a Bacterial Pyruvate Dehydrogenase Complex in the Cytosol of Saccharomyces cerevisiae","Kozak, B.U.; Van Rossum, H.M.; Luttik, M.A.H.; Akeroyd, M.; Benjamin, K.R.; Wu, L.; De Vries, S.; Daran, J.M.; Pronk, J.T.; Van Maris, A.J.A.","","2014","The energetic (ATP) cost of biochemical pathways critically determines the maximum yield of metabolites of vital or commercial relevance. Cytosolic acetyl coenzyme A (acetyl-CoA) is a key precursor for biosynthesis in eukaryotes and for many industrially relevant product pathways that have been introduced into Saccharomyces cerevisiae, such as isoprenoids or lipids. In this yeast, synthesis of cytosolic acetyl-CoA via acetyl-CoA synthetase (ACS) involves hydrolysis of ATP to AMP and pyrophosphate. Here, we demonstrate that expression and assembly in the yeast cytosol of an ATP-independent pyruvate dehydrogenase complex (PDH) from Enterococcus faecalis can fully replace the ACS-dependent pathway for cytosolic acetyl-CoA synthesis. In vivo activity of E. faecalis PDH required simultaneous expression of E. faecalis genes encoding its E1?, E1?, E2, and E3 subunits, as well as genes involved in lipoylation of E2, and addition of lipoate to growth media. A strain lacking ACS that expressed these E. faecalis genes grew at near-wild-type rates on glucose synthetic medium supplemented with lipoate, under aerobic and anaerobic conditions. A physiological comparison of the engineered strain and an isogenic Acs+ reference strain showed small differences in biomass yields and metabolic fluxes. Cellular fractionation and gel filtration studies revealed that the E. faecalis PDH subunits were assembled in the yeast cytosol, with a subunit ratio and enzyme activity similar to values reported for PDH purified from E. faecalis. This study indicates that cytosolic expression and assembly of PDH in eukaryotic industrial microorganisms is a promising option for minimizing the energy costs of precursor supply in acetyl-CoA-dependent product pathways.","","en","journal article","","","","","","","","","Applied Sciences","Biotechnology","","","",""
"uuid:aee77b3f-2ba2-41d7-9c38-1cdd1aae1e2b","http://resolver.tudelft.nl/uuid:aee77b3f-2ba2-41d7-9c38-1cdd1aae1e2b","Replacement of the Saccharomyces cerevisiae acetyl-CoA synthetases by alternative pathways for cytosolic acetyl-CoA synthesis","Kozak, B.U.; Van Rossum, H.M.; Benjamin, K.R.; Wu, L.; Daran, J.G.; Pronk, J.T.; Van Maris, A.J.A.","","2013","Cytosolic acetyl-coenzyme A is a precursor for many biotechnologically relevant compounds produced by Saccharomyces cerevisiae. In this yeast, cytosolic acetyl-CoA synthesis and growth strictly depend on expression of either the Acs1 or Acs2 isoenzyme of acetyl-CoA synthetase (ACS). Since hydrolysis of ATP to AMP and pyrophosphate in the ACS reaction constrains maximum yields of acetyl-CoA-derived products, this study explores replacement of ACS by two ATP-independent pathways for acetyl-CoA synthesis. After evaluating expression of different bacterial genes encoding acetylating acetaldehyde dehydrogenase (A-ALD) and pyruvate-formate lyase (PFL), acs1? acs2? S. cerevisiae strains were constructed in which A-ALD or PFL successfully replaced ACS. In A-ALD-dependent strains, aerobic growth rates of up to 0.27 h?1 were observed, while anaerobic growth rates of PFL-dependent S. cerevisiae (0.20 h?1) were stoichiometrically coupled to formate production. In glucose-limited chemostat cultures, intracellular metabolite analysis did not reveal major differences between A-ALD-dependent and reference strains. However, biomass yields on glucose of A-ALD- and PFL-dependent strains were lower than those of the reference strain. Transcriptome analysis suggested that reduced biomass yields were caused by acetaldehyde and formate in A-ALD- and PFL-dependent strains, respectively. Transcript profiles also indicated that a previously proposed role of Acs2 in histone acetylation is probably linked to cytosolic acetyl-CoA levels rather than to direct involvement of Acs2 in histone acetylation. While demonstrating that yeast ACS can be fully replaced, this study demonstrates that further modifications are needed to achieve optimal in vivo performance of the alternative reactions for supply of cytosolic acetyl-CoA as a product precursor.","yeast; acetylating acetaldehyde dehydrogenase; pyruvate-formate lyase; transcriptome; precursor supply; metabolic compartments","en","journal article","Elsevier","","","","","","","","Applied Sciences","BT/Biotechnology","","","",""
"uuid:3ff9d48e-7c7b-4ca2-ab20-f413b026927a","http://resolver.tudelft.nl/uuid:3ff9d48e-7c7b-4ca2-ab20-f413b026927a","Engineering cytosolic acetyl-coenzyme A supply in Saccharomyces cerevisiae: Pathway stoichiometry, free-energy conservation and redox-cofactor balancing","Van Rossum, H.M.; Kozak, B.U.; Pronk, J.T.; Van Maris, A.J.A.","","2016","Saccharomyces cerevisiae is an important industrial cell factory and an attractive experimental model for evaluating novel metabolic engineering strategies. Many current and potential products of this yeast require acetyl coenzyme A (acetyl-CoA) as a precursor and pathways towards these products are generally expressed in its cytosol. The native S. cerevisiae pathway for production of cytosolic acetyl-CoA consumes 2 ATP equivalents in the acetyl-CoA synthetase reaction. Catabolism of additional sugar substrate, which may be required to generate this ATP, negatively affects product yields. Here, we review alternative pathways that can be engineered into yeast to optimize supply of cytosolic acetyl-CoA as a precursor for product formation. Particular attention is paid to reaction stoichiometry, free-energy conservation and redox-cofactor balancing of alternative pathways for acetyl-CoA synthesis from glucose. A theoretical analysis of maximally attainable yields on glucose of four compounds (n-butanol, citric acid, palmitic acid and farnesene) showed a strong product dependency of the optimal pathway configuration for acetyl-CoA synthesis. Moreover, this analysis showed that combination of different acetyl-CoA production pathways may be required to achieve optimal product yields. This review underlines that an integral analysis of energy coupling and redox-cofactor balancing in precursor-supply and product-formation pathways is crucial for the design of efficient cell factories.","acetylating acetaldehyde dehydrogenase; pyruvate-formate lyase; pyruvate dehydrogenase; ATP-citrate lyase; phosphoketolase; carnitine shuttle","en","journal article","Elsevier","","","","","","","","Applied Sciences","BT/Biotechnology","","","",""
"uuid:9e21b29e-928d-4a0e-98f3-aa5c96c64baf","http://resolver.tudelft.nl/uuid:9e21b29e-928d-4a0e-98f3-aa5c96c64baf","Engineering acetyl coenzyme A supply: Functional expression of a bacterial pyruvate dehydrogenase complex in the cytosol of Saccharomyces cerevisiae","Kozak, B.U.; Van Rossum, M.H.; Luttik, M.A.; Akeroyd, M.; Benjamin, K.R.; Wu, L.; De Vries, S.; Daran, J.M.; Pronk, J.T.; Van Maris, A.J.A.","","2014","The energetic (ATP) cost of biochemical pathways critically determines the maximum yield of metabolites of vital or commercial relevance. Cytosolic acetyl coenzyme A (acetyl-CoA) is a key precursor for biosynthesis in eukaryotes and for many industrially relevant product pathways that have been introduced into Saccharomyces cerevisiae, such as isoprenoids or lipids. In this yeast, synthesis of cytosolic acetyl-CoA via acetyl-CoA synthetase (ACS) involves hydrolysis of ATP to AMP and pyrophosphate. Here, we demonstrate that expression and assembly in the yeast cytosol of an ATP-independent pyruvate dehydrogenase complex (PDH) from Enterococcus faecalis can fully replace the ACS-dependent pathway for cytosolic acetyl-CoA synthesis. In vivo activity of E. faecalis PDH required simultaneous expression of E. faecalis genes encoding its E1?, E1?, E2, and E3 subunits, as well as genes involved in lipoylation of E2, and addition of lipoate to growth media. A strain lacking ACS that expressed these E. faecalis genes grew at near-wild-type rates on glucose synthetic medium supplemented with lipoate, under aerobic and anaerobic conditions. A physiological comparison of the engineered strain and an isogenic Acs(+) reference strain showed small differences in biomass yields and metabolic fluxes. Cellular fractionation and gel filtration studies revealed that the E. faecalis PDH subunits were assembled in the yeast cytosol, with a subunit ratio and enzyme activity similar to values reported for PDH purified from E. faecalis. This study indicates that cytosolic expression and assembly of PDH in eukaryotic industrial microorganisms is a promising option for minimizing the energy costs of precursor supply in acetyl-CoA-dependent product pathways. Importance: Genetically engineered microorganisms are intensively investigated and applied for production of biofuels and chemicals from renewable sugars. To make such processes economically and environmentally sustainable, the energy (ATP) costs for product formation from sugar must be minimized. Here, we focus on an important ATP-requiring process in baker's yeast (Saccharomyces cerevisiae): synthesis of cytosolic acetyl coenzyme A, a key precursor for many industrially important products, ranging from biofuels to fragrances. We demonstrate that pyruvate dehydrogenase from the bacterium Enterococcus faecalis, a huge enzyme complex with a size similar to that of a ribosome, can be functionally expressed and assembled in the cytosol of baker's yeast. Moreover, we show that this ATP-independent mechanism for cytosolic acetyl-CoA synthesis can entirely replace the ATP-costly native yeast pathway. This work provides metabolic engineers with a new option to optimize the performance of baker's yeast as a ""cell factory"" for sustainable production of fuels and chemicals.","","en","journal article","American Society for Microbiology: mBio","","","","","","","","Applied Sciences","BT/Biotechnology","","","",""
"uuid:79da98c8-02de-4abc-a5f7-ecfd195e202a","http://resolver.tudelft.nl/uuid:79da98c8-02de-4abc-a5f7-ecfd195e202a","Requirements for carnitine shuttle-mediated translocation of mitochondrial acetyl moieties to the yeast cytosol","Rossum, Harmen M. (TU Delft BT/Industriele Microbiologie; Zymergen); Kozak, B.U. (TU Delft BT/Industriele Microbiologie; DuPont); Niemeijer, M.S. (TU Delft BT/Industriele Microbiologie); Dykstra, James C.; Luttik, M.A.H. (TU Delft BT/Industriele Microbiologie); Daran, J.G. (TU Delft BT/Industriele Microbiologie); van Maris, A.J.A. (TU Delft BT/Industriele Microbiologie); Pronk, J.T. (TU Delft BT/Industriele Microbiologie)","","2016","In many eukaryotes, the carnitine shuttle plays a key role in intracellular transport of acyl moieties. Fatty acidgrown Saccharomyces cerevisiae cells employ this shuttle to translocate acetyl units into their mitochondria. Mechanistically, the carnitine shuttle should be reversible, but previous studies indicate that carnitine shuttle-mediated export of mitochondrial acetyl units to the yeast cytosol does not occur in vivo. This apparent unidirectionality was investigated by constitutively expressing genes encoding carnitine shuttle-related proteins in an engineered S. cerevisiae strain, in which cytosolic acetyl coenzyme A (acetyl-CoA) synthesis could be switched off by omitting lipoic acid from growth media. Laboratory evolution of this strain yielded mutants whose growth on glucose, in the absence of lipoic acid, was L-carnitine dependent, indicating that in vivo export of mitochondrial acetyl units to the cytosol occurred via the carnitine shuttle. The mitochondrial pyruvate dehydrogenase complex was identified as the predominant source of acetyl-CoA in the evolved strains. Whole-genome sequencing revealed mutations in genes involved in mitochondrial fatty acid synthesis (MCT1), nuclear-mitochondrial communication (RTG2), and encoding a carnitine acetyltransferase (YAT2). Introduction of these mutations into the nonevolved parental strain enabled L-carnitine-dependent growth on glucose. This study indicates intramitochondrial acetyl-CoA concentration and constitutive expression of carnitine shuttle genes as key factors in enabling in vivo export of mitochondrial acetyl units via the carnitine shuttle. IMPORTANCE This study demonstrates, for the first time, that Saccharomyces cerevisiae can be engineered to employ the carnitine shuttle for export of acetyl moieties from the mitochondria and, thereby, to act as the sole source of cytosolic acetyl-CoA. Further optimization of this ATP-independent mechanism for cytosolic acetyl-CoA provision can contribute to efficient, yeastbased production of industrially relevant compounds derived from this precursor. The strains constructed in this study, whose growth on glucose depends on a functional carnitine shuttle, provide valuable models for further functional analysis and engineering of this shuttle in yeast and other eukaryotes.","","en","journal article","","","","","","","","","","","BT/Industriele Microbiologie","","",""
"uuid:a0717e5b-7bd5-4f1a-bf78-964a5d8f58ec","http://resolver.tudelft.nl/uuid:a0717e5b-7bd5-4f1a-bf78-964a5d8f58ec","Alternative reactions at the interface of glycolysis and citric acid cycle in Saccharomyces cerevisiae","Rossum, Harmen M. (TU Delft BT/Industriele Microbiologie); Kozak, B.U. (TU Delft BT/Industriele Microbiologie); Niemeijer, M.S. (TU Delft BT/Industriele Microbiologie); Duine, Hendrik J. (Student TU Delft); Luttik, M.A.H. (TU Delft BT/Industriele Microbiologie); Boer, VM (DSM); Kötter, P (Goethe University); Daran, J.G. (TU Delft BT/Industriele Microbiologie); van Maris, A.J.A. (TU Delft BT/Industriele Microbiologie); Pronk, J.T. (TU Delft BT/Biotechnologie)","","2016","Pyruvate and acetyl-coenzyme A, located at the interface between glycolysis and TCA cycle, are important intermediates in yeast metabolism and key precursors for industrially relevant products. Rational engineering of their supply requires knowledge of compensatory reactions that replace predominant pathways when these are inactivated. This study investigates effects of individual and combined mutations that inactivate the mitochondrial pyruvate-dehydrogenase (PDH) complex, extramitochondrial citrate synthase (Cit2) and mitochondrial CoA-transferase (Ach1) in Saccharomyces cerevisiae. Additionally, strains with a constitutively expressed carnitine shuttle were constructed and analyzed. A predominant role of the PDH complex in linking glycolysis and TCA cycle in glucose-grown batch cultures could be functionally replaced by the combined activity of the cytosolic PDH bypass and Cit2. Strongly impaired growth and a high incidence of respiratory deficiency in pda1Δ ach1Δ strains showed that synthesis of intramitochondrial acetyl-CoA as a metabolic precursor requires activity of either the PDH complex or Ach1. Constitutive overexpression of AGP2, HNM1, YAT2, YAT1, CRC1 and CAT2 enabled the carnitine shuttle to efficiently link glycolysis and TCA cycle in l-carnitine-supplemented, glucose-grown batch cultures. Strains in which all known reactions at the glycolysis-TCA cycle interface were inactivated still grew slowly on glucose, indicating additional flexibility at this key metabolic junction.","Ach1; Cit2; PDH complex; Saccharomyces cerevisiae; carnitine shuttle; glycolysis-TCA cycle interface","en","journal article","","","","","","","","","","BT/Biotechnologie","BT/Industriele Microbiologie","","",""
"uuid:23dcf3a7-2002-4078-bd2e-254758304dd7","http://resolver.tudelft.nl/uuid:23dcf3a7-2002-4078-bd2e-254758304dd7","Replacement of the initial steps of ethanol metabolism in Saccharomyces cerevisiae by ATP-independent acetylating acetaldehyde dehydrogenase","Kozak, B.U. (TU Delft BT/Industriele Microbiologie); Rossum, Harmen M. (TU Delft BT/Industriele Microbiologie); Niemeijer, M.S. (TU Delft BT/Industriele Microbiologie); van Dijk, M. (TU Delft BT/Industriele Microbiologie); Benjamin, Kirsten (Amyris Inc); Wu, Liang (DSM); Daran, J.G. (TU Delft BT/Industriele Microbiologie); Pronk, J.T. (TU Delft BT/Industriele Microbiologie); van Maris, A.J.A. (TU Delft BT/Industriele Microbiologie)","","2016","In Saccharomyces cerevisiae ethanol dissimilation is initiated by its oxidation and activation to cytosolic acetyl-CoA. The associated consumption of ATP strongly limits yields of biomass and acetyl-CoA-derived products. Here, we explore the implementation of an ATP-independent pathway for acetyl-CoA synthesis from ethanol that, in theory, enables biomass yield on ethanol that is up to 40% higher. To this end, all native yeast acetaldehyde dehydrogenases (ALDs) were replaced by heterologous acetylating acetaldehyde dehydrogenase (A-ALD). Engineered Ald- strains expressing different A-ALDs did not immediately grow on ethanol, but serial transfer in ethanol-grown batch cultures yielded growth rates of up to 70% of the wild-type value. Mutations in ACS1 were identified in all independently evolved strains and deletion of ACS1 enabled slow growth of non-evolved Ald- A-ALD strains on ethanol. Acquired mutations in A-ALD genes improved affinity-Vmax/Km for acetaldehyde. One of five evolved strains showed a significant 5% increase of its biomass yield in ethanol-limited chemostat cultures. Increased production of acetaldehyde and other by-products was identified as possible cause for lower than theoretically predicted biomass yields. This study proves that the native yeast pathway for conversion of ethanol to acetyl-CoA can be replaced by an engineered pathway with the potential to improve biomass and product yields.","Acetyl-CoA; Energetics; Evolutionary engineering; Intracellular metabolites; Precursor supply; Yeast","en","journal article","","","","","","","","","","","BT/Industriele Microbiologie","","",""