Grand Research Challenges for Sustainable Industrial Biotechnology.
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Ralf Takors | Nick Wierckx | Adrie J J Straathof | S Aljoscha Wahl | Kirsten R Benjamin | Henk J Noorman | A. Straathof | S. A. Wahl | K. Benjamin | R. Takors | N. Wierckx | H. Noorman | Kirsten Benjamin | Henk Noorman
[1] J. van den Brink,et al. Energetic limits to metabolic flexibility: responses of Saccharomyces cerevisiae to glucose-galactose transitions. , 2009, Microbiology.
[2] Judith B. Zaugg,et al. Bacterial adaptation through distributed sensing of metabolic fluxes , 2010, Molecular systems biology.
[3] Aidong Yang,et al. On the use of systems technologies and a systematic approach for the synthesis and the design of future biorefineries , 2010, Comput. Chem. Eng..
[4] H. Chang,et al. Economic evaluation of off-gas recycle pressure swing adsorption (PSA) in industrial scale poly(3-hydroxybutyrate) fermentation , 2010 .
[5] Philip Owende,et al. Biofuels from microalgae—A review of technologies for production, processing, and extractions of biofuels and co-products , 2010 .
[6] Daniel Kuhn,et al. Systems biotechnology – Rational whole‐cell biocatalyst and bioprocess design , 2010 .
[7] F. You,et al. Optimal design of sustainable cellulosic biofuel supply chains: Multiobjective optimization coupled with life cycle assessment and input–output analysis , 2012 .
[8] Jonathan R. Karr,et al. A Whole-Cell Computational Model Predicts Phenotype from Genotype , 2012, Cell.
[9] Yu Wang,et al. Preparation of biosilica structures from frustules of diatoms and their applications: current state and perspectives , 2012, Applied Microbiology and Biotechnology.
[10] J. Keasling,et al. Microbial engineering for the production of advanced biofuels , 2012, Nature.
[11] Jens Nielsen,et al. Metabolic engineering of yeast for production of fuels and chemicals. , 2013, Current opinion in biotechnology.
[12] Dick de Ridder,et al. Genome duplication and mutations in ACE2 cause multicellular, fast-sedimenting phenotypes in evolved Saccharomyces cerevisiae , 2013, Proceedings of the National Academy of Sciences.
[13] Maxime Durot,et al. Rapid and reliable DNA assembly via ligase cycling reaction. , 2014, ACS synthetic biology.
[14] Damien J Batstone,et al. Regulation mechanisms in mixed and pure culture microbial fermentation , 2014, Biotechnology and bioengineering.
[15] J. Keasling,et al. Integrating Biological Redesign: Where Synthetic Biology Came From and Where It Needs to Go , 2014, Cell.
[16] D. Voytas,et al. Genome engineering empowers the diatom Phaeodactylum tricornutum for biotechnology , 2014, Nature Communications.
[17] G. Church,et al. Large-scale de novo DNA synthesis: technologies and applications , 2014, Nature Methods.
[18] Adrie J J Straathof,et al. Transformation of biomass into commodity chemicals using enzymes or cells. , 2014, Chemical reviews.
[19] W. V. van Gulik,et al. Towards large scale fermentative production of succinic acid. , 2014, Current opinion in biotechnology.
[20] Nick Wierckx,et al. Engineering mediator-based electroactivity in the obligate aerobic bacterium Pseudomonas putida KT2440 , 2015, Front. Microbiol..
[21] S. A. Wahl,et al. Thermodynamics-based design of microbial cell factories for anaerobic product formation. , 2015, Trends in biotechnology.
[22] N. Wierckx,et al. Plastic waste as a novel substrate for industrial biotechnology , 2015, Microbial biotechnology.
[23] Christian Willrodt,et al. Guiding efficient microbial synthesis of non-natural chemicals by physicochemical properties of reactants. , 2015, Current opinion in biotechnology.
[24] Max G Schubert,et al. Efficient Multiplexed Integration of Synergistic Alleles and Metabolic Pathways in Yeasts via CRISPR-Cas. , 2015, Cell systems.
[25] James C. Liao,et al. Integrative genomic mining for enzyme function to enable engineering of a non-natural biosynthetic pathway , 2015, Nature Communications.
[26] A. Schmid,et al. Guiding bioprocess design by microbial ecology. , 2015, Current opinion in microbiology.
[27] Jennifer A. Doudna,et al. Biology and Applications of CRISPR Systems: Harnessing Nature’s Toolbox for Genome Engineering , 2016, Cell.
[28] A. Vandenbroucke,et al. Technologies That Enable Accurate and Precise Nano- to Milliliter-Scale Liquid Dispensing of Aqueous Reagents Using Acoustic Droplet Ejection , 2016, Journal of laboratory automation.
[29] Y. Kimura,et al. A bacterium that degrades and assimilates poly(ethylene terephthalate) , 2016, Science.
[30] G. Stephanopoulos,et al. Metabolic engineering of microbial competitive advantage for industrial fermentation processes , 2016, Science.
[31] Ralf Takors,et al. Engineering E. coli for large-scale production - Strategies considering ATP expenses and transcriptional responses. , 2016, Metabolic engineering.
[32] B. Heijstra,et al. Gas Fermentation—A Flexible Platform for Commercial Scale Production of Low-Carbon-Fuels and Chemicals from Waste and Renewable Feedstocks , 2016, Front. Microbiol..
[33] Peter Jackson,et al. Rewriting yeast central carbon metabolism for industrial isoprenoid production , 2016, Nature.
[34] G. Stephanopoulos,et al. Accessing Nature’s diversity through metabolic engineering and synthetic biology , 2016, F1000Research.
[35] Nicolas Bernet,et al. Electro-Fermentation: How To Drive Fermentation Using Electrochemical Systems. , 2016, Trends in biotechnology.
[36] Sunil Chandran,et al. Efficient Assembly of DNA Using Yeast Homologous Recombination (YHR). , 2017, Methods in molecular biology.
[37] Cheng Li,et al. Stay connected: Electrical conductivity of microbial aggregates. , 2017, Biotechnology advances.
[38] Ross D. Milton,et al. Bioelectrochemical Haber-Bosch Process: An Ammonia-Producing H2 /N2 Fuel Cell. , 2017, Angewandte Chemie.
[39] A. Straathof,et al. Potential of commodity chemicals to become bio‐based according to maximum yields and petrochemical prices , 2017 .
[40] J. Sadhukhan,et al. Life cycle assessment of sustainable raw material acquisition for functional magnetite bionanoparticle production. , 2017, Journal of environmental management.
[41] B. Heijstra,et al. Gas fermentation: cellular engineering possibilities and scale up , 2017, Microbial Cell Factories.
[42] Zhu Chen,et al. Non-sterile fermentations for the economical biochemical conversion of renewable feedstocks , 2017, Biotechnology Letters.
[43] Ralf Takors,et al. Repetitive Short-Term Stimuli Imposed in Poor Mixing Zones Induce Long-Term Adaptation of E. coli Cultures in Large-Scale Bioreactors: Experimental Evidence and Mathematical Model , 2017, Front. Microbiol..
[44] Ren Wei,et al. Microbial enzymes for the recycling of recalcitrant petroleum‐based plastics: how far are we? , 2017, Microbial biotechnology.
[45] Ralf Takors,et al. Escherichia coli HGT: Engineered for high glucose throughput even under slowly growing or resting conditions. , 2017, Metabolic engineering.
[46] Russell H. Cole,et al. Printed droplet microfluidics for on demand dispensing of picoliter droplets and cells , 2017, Proceedings of the National Academy of Sciences.
[47] Railean-Plugaru Viorica,et al. Lactococcus lactis as a safe and inexpensive source of bioactive silver composites , 2017, Applied Microbiology and Biotechnology.
[48] L. Lynd,et al. Cellulosic ethanol: status and innovation. , 2017, Current opinion in biotechnology.
[49] A. Stierle,et al. The Berkeleylactones, Antibiotic Macrolides from Fungal Coculture. , 2017, Journal of natural products.
[50] Claudia Schmidt‐Dannert. The future of biologically inspired next‐generation factories for chemicals , 2017, Microbial biotechnology.
[51] C. Owen,et al. Harnessing plant metabolic diversity. , 2015, Current opinion in chemical biology.
[52] Ben Kaufmann-Malaga,et al. Automating bioengineering: First the hands, then the head , 2017 .
[53] M. Baumgart,et al. Metabolic profile of 1,5‐diaminopentane producing Corynebacterium glutamicum under scale‐down conditions: Blueprint for robustness to bioreactor inhomogeneities , 2017, Biotechnology and bioengineering.
[54] Henk Noorman,et al. Biochemical engineering’s grand adventure , 2017 .
[55] Jeannette M. García,et al. The future of plastics recycling , 2017, Science.
[56] Ralf Takors,et al. Bioprocess scale‐up/down as integrative enabling technology: from fluid mechanics to systems biology and beyond , 2017, Microbial biotechnology.
[57] R. Geyer,et al. Production, use, and fate of all plastics ever made , 2017, Science Advances.
[58] J. Bohannon. A new breed of scientist, with brains of silicon , 2017 .
[59] Wolfgang Wiechert,et al. Generic Protocol for Optimization of Heterologous Protein Production Using Automated Microbioreactor Technology , 2017, Journal of visualized experiments : JoVE.
[60] H. Woo. Solar-to-chemical and solar-to-fuel production from CO2 by metabolically engineered microorganisms. , 2017, Current opinion in biotechnology.
[61] Brian C. Thomas,et al. Novel soil bacteria possess diverse genes for secondary metabolite biosynthesis , 2018, Nature.
[62] Tanja Narancic,et al. Biodegradable Plastic Blends Create New Possibilities for End-of-Life Management of Plastics but They Are Not a Panacea for Plastic Pollution. , 2018, Environmental science & technology.
[63] P. D. Donohoue,et al. Advances in Industrial Biotechnology Using CRISPR-Cas Systems. , 2017, Trends in biotechnology.
[64] L. Nielsen,et al. Advances in analytical tools for high throughput strain engineering. , 2018, Current opinion in biotechnology.
[65] Guan Wang,et al. Computational fluid dynamics simulation of an industrial P. chrysogenum fermentation with a coupled 9-pool metabolic model : Towards rational scale-down and design optimization , 2018 .
[66] U. Sauer,et al. A Map of Protein-Metabolite Interactions Reveals Principles of Chemical Communication , 2018, Cell.
[67] N. Wierckx,et al. Plastic Biodegradation: Challenges and Opportunities , 2019, Consequences of Microbial Interactions with Hydrocarbons, Oils, and Lipids: Biodegradation and Bioremediation.
[68] Ralf Takors,et al. Using gas mixtures of CO, CO2 and H2 as microbial substrates: the do's and don'ts of successful technology transfer from laboratory to production scale , 2018, Microbial biotechnology.
[69] Andreas Porse,et al. Diverse genetic error modes constrain large-scale bio-based production , 2018, Nature Communications.
[70] N. Wierckx,et al. Process engineering of pH tolerant Ustilago cynodontis for efficient itaconic acid production , 2019, Microbial Cell Factories.
[71] A. Terpou,et al. Effect of Myclobutanil Pesticide on the Physiological Behavior of Two Newly Isolated Saccharomyces cerevisiae Strains during Very-High-Gravity Alcoholic Fermentation , 2019, Microorganisms.
[72] S. Noack,et al. Communities of Niche-Optimized Strains: Small-Genome Organism Consortia in Bioproduction. , 2019, Trends in biotechnology.
[73] N. Wierckx,et al. Rational Engineering of Phenylalanine Accumulation in Pseudomonas taiwanensis to Enable High-Yield Production of Trans-Cinnamate , 2019, Front. Bioeng. Biotechnol..
[74] S. A. Wahl,et al. Escherichia coli metabolism under short-term repetitive substrate dynamics: adaptation and trade-offs , 2020, Microbial Cell Factories.