Adachi E, Torigoe M, Sugiyama M, Nikawa J, Shimizu K (1998) Modification of metabolic pathways of Saccharomyces cerevisiae by the expression of lactate dehydrogenase and deletion of pyruvate decarboxylase genes for the lactic acid fermentation at low pH value. J Ferment Bioeng 86:284–289
CAS
Article
Google Scholar
Andrade RP, Casal M (2001) Expression of the lactate permease gene JEN1 from the yeast Saccharomyces cerevisiae. Fungal Genet Biol 32:105–111
CAS
Article
PubMed
Google Scholar
Angermayr SA, Paszota M, Hellingwerf KJ (2012) Engineering a cyanobacterial cell factory for production of lactic acid. Appl Environ Microbiol 78:7098–7106
PubMed Central
CAS
Article
PubMed
Google Scholar
Bai D, Jia M, Zhao X, Ban R, Shen F, Li X, Xu S (2003) L(+)-lactic acid production by pellet-form Rhizopus oryzae R1021 in a stirred tank fermentor. Chem Eng Sci 58:785–791
CAS
Article
Google Scholar
Barnett JA (1976) The utilization of sugars by yeasts. Adv Carbohydr Chem Biochem 32:125–234
CAS
Article
PubMed
Google Scholar
Bianchi MM, Brambilla L, Protani F, Liu C, Lievense J, Porro D (2001) Efficient homolactic fermentation by Kluyveromyces lactis strains defective in pyruvate utilization and transformed with the heterologous LDH gene. Appl Environ Microbiol 67:5621–5625
PubMed Central
CAS
Article
PubMed
Google Scholar
Boiteux A, Hess B (1970) Allosteric properties of yeast pyruvate decarboxylase. FEBS Lett 9:293–296
CAS
Article
PubMed
Google Scholar
Casal M, Paiva S, Andrade RP, Gancedo C, Leao C (1999) The lactate-proton symport of Saccharomyces cerevisiae is encoded by JEN1. J Bacteriol 181:2620–2623
PubMed Central
CAS
PubMed
Google Scholar
Castillo Martinez FA, Balciunas EM, Salgado JM, Dominguez Gonzalez JM, Converti A, Oliveira, de Souza Pinheiro R (2013) Lactic acid properties, applications and production: a review. Trends Food Sci Technol 30:70–83
Article
Google Scholar
Colombié S, Dequin S, Sablayrolles JM (2003) Control of lactate production by Saccharomyces cerevisiae expressing a bacterial LDH gene. Enzyme Microb Technol 33:38–46
Article
Google Scholar
Dequin S, Baptista E, Barre P (1999) Acidification of grape musts by Saccharomyces cerevisiae wine yeast strains genetically engineered to produce lactic acid. Am J Enol Vitic 50:45–50
CAS
Google Scholar
Fortman J, Chhabra S, Mukhopadhyay A, Chou H, Lee TS, Steen E, Keasling JD (2008) Biofuel alternatives to ethanol: pumping the microbial well. Trends Biotechnol 26:375–381
CAS
Article
PubMed
Google Scholar
Garlotta D (2001) A literature review of poly (lactic acid). J Polym Environ 9:63–84
CAS
Article
Google Scholar
Gietz DR, Woods RA (2002) Transformation of yeast by lithium acetate/single-stranded carrier DNA/polyethylene glycol method. Meth Enzymol 350:87–96
CAS
Article
PubMed
Google Scholar
Ida Y, Furusawa C, Hirasawa T, Shimizu H (2012) Stable disruption of ethanol production by deletion of the genes encoding alcohol dehydrogenase isozymes in Saccharomyces cerevisiae. J Biosci Bioeng 113:192–195
CAS
Article
PubMed
Google Scholar
Ilmén M, Koivuranta K, Ruohonen L, Suominen P, Penttilä M (2007) Efficient production of L-lactic acid from xylose by Pichia stipitis. Appl Environ Microbiol 73:117–123
PubMed Central
Article
PubMed
Google Scholar
Ishida N, Saitoh S, Tokuhiro K, Nagamori E, Matsuyama T, Kitamoto K, Takahashi H (2005) Efficient production of L-lactic acid by metabolically engineered Saccharomyces cerevisiae with a genome-integrated L-lactate dehydrogenase gene. Appl Environ Microbiol 71:1964–1970
PubMed Central
CAS
Article
PubMed
Google Scholar
Jin Y, Jeffries TW (2003) Changing flux of xylose metabolites by altering expression of xylose reductase and xylitol dehydrogenase in recombinant Saccharomyces cerevisiae. Appl Biochem Biotechnol 106:277–285
Article
Google Scholar
Jin Y, Ni H, Laplaza JM, Jeffries TW (2003) Optimal growth and ethanol production from xylose by recombinant Saccharomyces cerevisiae require moderate D-xylulokinase activity. Appl Environ Microbiol 69:495–503
PubMed Central
CAS
Article
PubMed
Google Scholar
Jin YS, Laplaza JM, Jeffries TW (2004) Saccharomyces cerevisiae engineered for xylose metabolism exhibits a respiratory response. Appl Environ Microbiol 70:6816–6825
PubMed Central
CAS
Article
PubMed
Google Scholar
Kim SR, Ha S, Kong II, Jin Y (2012) High expression of XYL2 coding for xylitol dehydrogenase is necessary for efficient xylose fermentation by engineered Saccharomyces cerevisiae. Metab Eng 14:336–343
CAS
Article
PubMed
Google Scholar
Kim SR, Skerker JM, Kang W, Lesmana A, Wei N, Arkin AP, Jin Y (2013) Rational and evolutionary engineering approaches uncover a small set of genetic changes efficient for rapid xylose fermentation in Saccharomyces cerevisiae. PLoS One 8, e57048
PubMed Central
CAS
Article
PubMed
Google Scholar
Kötter P, Ciriacy M (1993) Xylose fermentation by Saccharomyces cerevisiae. Appl Microbiol Biotechnol 38:776–783
Article
Google Scholar
Kulkarni R, Moore E, Hegyeli A, Leonard F (1971) Biodegradable poly (lactic acid) polymers. J Biomed Mater Res 5:169–181
CAS
Article
PubMed
Google Scholar
Kuyper M, Hartog MM, Toirkens MJ, Almering MJ, Winkler AA, Dijken JP, Pronk JT (2005) Metabolic engineering of a xylose‐isomerase‐expressing Saccharomyces cerevisiae strain for rapid anaerobic xylose fermentation. FEMS Yeast Res 5:399–409
CAS
Article
PubMed
Google Scholar
Lodi T, Fontanesi F, Guiard B (2002) Co-ordinate regulation of lactate metabolism genes in yeast: the role of the lactate permease gene JEN1. Mol Gen Genomics 266:838–847
CAS
Article
Google Scholar
Maas RH, Bakker RR, Eggink G, Weusthuis RA (2006) Lactic acid production from xylose by the fungus Rhizopus oryzae. Appl Microbiol Biotechnol 72:861–868
CAS
Article
PubMed
Google Scholar
Ostergaard S, Olsson L, Nielsen J (2000) Metabolic engineering of Saccharomyces cerevisiae. Microbiol Mol Biol Rev 64:34–50
PubMed Central
CAS
Article
PubMed
Google Scholar
Ozcan S, Johnston M (1999) Function and regulation of yeast hexose transporters. Microbiol Mol Biol Rev 63:554–569
PubMed Central
CAS
PubMed
Google Scholar
Parekh RN, Shaw MR, Wittrup KD (1996) An integrating vector for tunable, high copy, stable integration into the dispersed Ty δ sites of Saccharomyces cerevisiae. Biotechnol Prog 12:16–21
CAS
Article
PubMed
Google Scholar
Parekh RN, Wittrup KD (1997) Expression level tuning for optimal heterologous protein secretion in Saccharomyces cerevisiae. Biotechnol Prog 13:117–122
CAS
Article
PubMed
Google Scholar
Payot T, Chemaly Z, Fick M (1999) Lactic acid production by Bacillus coagulans—kinetic studies and optimization of culture medium for batch and continuous fermentations. Enzyme Microb Technol 24:191–199
CAS
Article
Google Scholar
Pritchard G (1973) Factors affecting the activity and synthesis of NAD-dependent lactate dehydrogenase in Rhizopus oryzae. J Gen Microbiol 78:125–137
CAS
Article
Google Scholar
Qin J, Zhao B, Wang X, Wang L, Yu B, Ma Y, Ma C, Tang H, Sun J, Xu P (2009) Non-sterilized fermentative production of polymer-grade L-lactic acid by a newly isolated thermophilic strain Bacillus sp. 2–6. PLoS One 4, e4359
PubMed Central
Article
PubMed
Google Scholar
Roy A, Kim JH (2014) Endocytosis and vacuolar degradation of the yeast cell surface glucose sensors Rgt2 and Snf3. J Biol Chem
Saitoh S, Ishida N, Onishi T, Tokuhiro K, Nagamori E, Kitamoto K, Takahashi H (2005) Genetically engineered wine yeast produces a high concentration of L-lactic acid of extremely high optical purity. Appl Environ Microbiol 71:2789–2792
PubMed Central
CAS
Article
PubMed
Google Scholar
Sauer M, Porro D, Mattanovich D, Branduardi P (2008) Microbial production of organic acids: expanding the markets. Trends Biotechnol 26:100–108
CAS
Article
PubMed
Google Scholar
Schmitt HD, Zimmermann FK (1982) Genetic analysis of the pyruvate decarboxylase reaction in yeast glycolysis. J Bacteriol 151:1146–1152
PubMed Central
CAS
PubMed
Google Scholar
Skory CD (2003) Lactic acid production by Saccharomyces cerevisiae expressing a Rhizopus oryzae lactate dehydrogenase gene. J Ind Microbiol Biotechnol 30:22–27
CAS
Article
PubMed
Google Scholar
Tamakawa H, Ikushima S, Yoshida S (2012) Efficient production of l-lactic acid from xylose by a recombinant Candida utilis strain. J Biosci Bioeng 113:73–75
CAS
Article
PubMed
Google Scholar
Tylicki A, Ziolkowska G, Bolkun A, Siemieniuk M, Czerniecki J, Nowakiewicz A (2008) Comparative study of the activity and kinetic properties of malate dehydrogenase and pyruvate decarboxylase from Candida albicans, Malassezia pachydermatis, and Saccharomyces cerevisiae. Can J Microbiol 54:734–741
CAS
Article
PubMed
Google Scholar
van Urk H, Schipper D, Breedveld GJ, Mak PR, Alexander Scheffers W, van Dijken JP (1989) Localization and kinetics of pyruvate-metabolizing enzymes in relation to aerobic alcoholic fermentation in Saccharomyces cerevisiae CBS 8066 and Candida utilis CBS 621. Biochimica et Biophysica Acta (BBA)-Gen Subjects 992:78–86
Article
Google Scholar
Wee Y, Kim J, Ryu H (2006) Biotechnological production of lactic acid and its recent applications. Food Technol Biotechnol 44:163
CAS
Google Scholar
Zhang Z, Lohr L, Escalante C, Wetzstein M (2010) Food versus fuel: what do prices tell us? Energy Policy 38:445–451
CAS
Article
Google Scholar