A comprehensive perspective on sustainable bioprocessing through extractive fermentation: challenges and prospects
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[1] Senthilkumar Rathnasamy,et al. Kinetics and thermodynamic insights on extractive fermentation of fibrinolytic protease by Burkholderia cenocepacia strain OK1899609.1 using glycol-based eutectic solvents , 2023, Sustainable Chemistry and Pharmacy.
[2] Y. Yu,et al. Life cycle assessment of deep-eutectic-solvent-assisted hydrothermal disintegration of microalgae for biodiesel and biogas co-production , 2023, Applied Energy.
[3] Á. Galán‐Martín,et al. Deep eutectic solvents for improved biomass pretreatment: Current status and future prospective towards sustainable processes. , 2022, Bioresource technology.
[4] Donghai Wang,et al. A review on strategies to reduce ionic liquid pretreatment costs for biofuel production. , 2022, Bioresource technology.
[5] A. Kondo,et al. Extractive fermentation of Kytococcus sedentarius TWHKC01 using the aqueous biphasic system for direct recovery of keratinase , 2022, Journal of the Taiwan Institute of Chemical Engineers.
[6] A. Jupke,et al. Electrochemical Membrane-Assisted pH-Swing Extraction and Back-Extraction of Lactic Acid , 2022, SSRN Electronic Journal.
[7] H. Balaraman,et al. Simultaneous production and sustainable eutectic mixture based purification of narringinase with Bacillus amyloliquefaciens by valorization of tofu wastewater , 2022, Scientific Reports.
[8] El-Sayed R. E. Hassan,et al. Evaluation of Miscanthus Pretreatment effect by Choline Chloride based Deep Eutectic Solvents on bioethanol production. , 2021, Bioresource technology.
[9] N. Abdoulmoumine,et al. Effective Assessment Practices for Using Sustainability Metrics: Biomass Processing , 2021, ACS Sustainable Chemistry & Engineering.
[10] A. Ariff,et al. Extractive Fermentation for Recovery of Bacteriocin-Like Inhibitory Substances Derived from Lactococcus lactis Gh1 Using PEG2000/Dextran T500 Aqueous Two-Phase System , 2021, Fermentation.
[11] P. Angeli,et al. Intensified liquid-liquid extraction of biomolecules using ionic liquids in small channels , 2021, Separation and Purification Technology.
[12] Diwakar Z. Shende,et al. Butanol recovery Ionic liquids as green solvents , 2021, Journal of Chemical Technology & Biotechnology.
[13] H. Tokumoto,et al. Improving carotenoid production in recombinant yeast, Saccharomyces cerevisiae, using ultrasound‐irradiated two‐phase extractive fermentation , 2021, Engineering in Life Sciences.
[14] Senthilkumar Rathnasamy,et al. Switchable deep eutectic solvent driven micellar extractive fermentation of ultrapure fibrin digesting enzyme from Bacillus subtilis , 2021, Scientific reports.
[15] V. Rangarajan,et al. Sustainable and Green Engineering Insights on Deep Eutectic Solvents toward the Extraction of Nutraceuticals , 2021, ACS Sustainable Chemistry & Engineering.
[16] Haile Ma,et al. Ultrasound‐assisted fermentation: Mechanisms, technologies, and challenges , 2021 .
[17] A. J. Cruz,et al. Heat transfer evaluation for conventional and extractive ethanol fermentations: Saving cooling water , 2021, Journal of Cleaner Production.
[18] A. Porto,et al. Extractive fermentation for process integration of protease production by Aspergillus tamarii Kita UCP1279 and purification by PEG-Citrate Aqueous Two-Phase System , 2021, Preparative biochemistry & biotechnology.
[19] Kean Wang,et al. Perstraction of phenolic compounds via nonporous PEBA membranes , 2021 .
[20] Zhen Zhang,et al. Life Cycle Environmental Implications of Ionic-Liquid-Based Carbon Capture and Storage Processes and Its Alternative Improvement Cases , 2020 .
[21] V. Beschkov,et al. Chemical engineering methods in downstream processing in biotechnology , 2020, Physical Sciences Reviews.
[22] N. Abdoulmoumine,et al. Understanding the in situ state of lignocellulosic biomass during ionic liquids-based engineering of renewable materials and chemicals , 2020 .
[23] Jie Lu,et al. Combining hydrothermal-alkaline/oxygen pretreatment of reed with PEG 6,000-assisted enzyme hydrolysis promote bioethanol fermentation and reduce enzyme loading , 2020 .
[24] Robert W. M. Pott,et al. Design and evaluation of a continuous semipartition bioreactor for in situ liquid‐liquid extractive fermentation , 2020, Biotechnology and bioengineering.
[25] V. Santos-Ebinuma,et al. Comparison of conventional and extractive fermentation using aqueous two-phase system to extract fibrinolytic proteases produced by Bacillus stearothermophilus DPUA 1729 , 2020, Preparative biochemistry & biotechnology.
[26] C. Purushothaman,et al. One-pot simultaneous production and sustainable purification of fibrinolytic protease from Bacillus cereus using natural deep eutectic solvents , 2020, Scientific Reports.
[27] A. J. Cruz,et al. Improvement of ethanol production by extractive fed-batch fermentation in a drop column bioreactor , 2020, Bioprocess and Biosystems Engineering.
[28] L. Pastrana,et al. Partial purification of fibrinolytic and fibrinogenolytic protease from Gliricidia sepium seeds by aqueous two-phase system , 2020 .
[29] J. Lema,et al. Energy requirements and economics of acetone–butanol–ethanol (ABE) extractive fermentation: a solvent-based comparative assessment , 2020, Bioprocess and Biosystems Engineering.
[30] J. Gębicki,et al. Theoretical and Economic Evaluation of Low-Cost Deep Eutectic Solvents for Effective Biogas Upgrading to Bio-Methane , 2020, Energies.
[31] J. Gębicki,et al. Extractive detoxification of feedstocks for the production of biofuels using new hydrophobic deep eutectic solvents – Experimental and theoretical studies , 2020 .
[32] E. Shah,et al. Techno‐economic evaluation of a natural deep eutectic solvent‐based biorefinery: Exploring different design scenarios , 2020, Biofuels, Bioproducts and Biorefining.
[33] H. Balaraman,et al. Kinetics and optimization of microwave-assisted lignin fractionation with Protic low transition temperature mixture of Sesamum indicum straw for enhanced bioethanol production , 2020 .
[34] L. Zheng,et al. Nitric Oxide and Hydrogen Peroxide Signaling in Extractive Shiraia Fermentation by Triton X-100 for Hypocrellin A Production , 2020, International journal of molecular sciences.
[35] H. Balaraman,et al. Functional deep eutectic solvent-based chaotic extraction of phycobiliprotein using microwave-assisted liquid-liquid micro-extraction from Spirulina (Arthrospira platensis) and its biological activity determination , 2019 .
[36] V. M. Ortiz-Martínez,et al. Evaluation of Ionic Liquids as In Situ Extraction Agents during the Alcoholic Fermentation of Carob Pod Extracts , 2019, Fermentation.
[37] Diwakar Z. Shende,et al. Separation of Butanol Using Tetradecyl(trihexyl)phosphonium Bis(2,4,4-trimethylpentyl)phosphinate, Oleyl Alcohol, and Castor Oil , 2019, Journal of Chemical & Engineering Data.
[38] J. Markoš,et al. Investigation of membrane bioreactor for in situ product removal based on silicone rubber membrane module , 2019, Chemical Papers.
[39] A. Górak,et al. Comparison of downstream processing methods in purification of highly active laccase , 2019, Bioprocess and Biosystems Engineering.
[40] Matteo Tiecco,et al. Role of the hydrogen bond donor component for a proper development of novel hydrophobic deep eutectic solvents , 2019, Journal of Molecular Liquids.
[41] Ziyu Wang,et al. Membrane assisted continuous production of solvents with integrated solvent removal using liquid-liquid extraction. , 2019, Bioresource technology.
[42] Zhiyong Zhou,et al. Recovery of Butanol from ABE Fermentation Broth with Hydrophobic Functionalized Ionic Liquids as Extractants , 2019, ACS Sustainable Chemistry & Engineering.
[43] Catarina Florindo,et al. Quest for Green-Solvent Design: From Hydrophilic to Hydrophobic (Deep) Eutectic Solvents. , 2019, ChemSusChem.
[44] D. Lai,et al. Ionic Liquid Aqueous Two-Phase Systems From a Pharmaceutical Perspective , 2019, Front. Chem..
[45] G. Murthy,et al. A comparative account of glucose yields and bioethanol production from separate and simultaneous saccharification and fermentation processes at high solids loading with variable PEG concentration. , 2019, Bioresource technology.
[46] João H. P. M. Santos,et al. Integration of aqueous (micellar) two-phase systems on the proteins separation , 2019, BMC Chemical Engineering.
[47] K. Dubey,et al. Extractive Fermentation for Process integration and amplified pullulan production by A. pullulans in Aqueous Two Phase Systems , 2019, Scientific Reports.
[48] P. Show,et al. Novel, energy efficient and green cloud point extraction: technology and applications in food processing , 2019, Journal of Food Science and Technology.
[49] F. O. Farias,et al. pH Effect on the Formation of Deep-Eutectic-Solvent-Based Aqueous Two-Phase Systems , 2018, Industrial & Engineering Chemistry Research.
[50] A. Ariff,et al. Purification of a Bacteriocin‐Like Inhibitory Substance Derived from Pediococcus acidilactici Kp10 by an Aqueous Micellar Two‐Phase System , 2018, Biotechnology progress.
[51] B. Šantek,et al. In-Situ Vacuum Assisted Gas Stripping Recovery System for Ethanol Removal from a Column Bioreactor , 2018, Fibers.
[52] T. S. Porto,et al. PEG-sodium citrate aqueous two-phase systems to in situ recovery of protease from Aspergillus tamarii URM4634 by extractive fermentation , 2018, Biocatalysis and Agricultural Biotechnology.
[53] K. Rosentrater,et al. Effect of co-products of enzyme-assisted aqueous extraction of soybeans, enzymes, and surfactant on oil recovery from integrated corn-soy fermentation , 2018, Industrial Crops and Products.
[54] M. Matsumoto. In situ Extractive Fermentation of Lactic Acid by Rhizopus oryzae in an Air-lift Bioreactor , 2018, Chemical and Biochemical Engineering Quarterly.
[55] José González-Valdez,et al. Aqueous Two‐Phase Systems at Large Scale: Challenges and Opportunities , 2018, Biotechnology journal.
[56] Kwang Ho Kim,et al. Biocompatible choline-based deep eutectic solvents enable one-pot production of cellulosic ethanol , 2018 .
[57] A. Roosta,et al. Experimental study and thermodynamic modelling of penicillin-G extraction using PEG 6000 and K2HPO4 aqueous two-phase system , 2018 .
[58] R. Tang,et al. Separation of Monascus pigments from extractive fermentation broth with a high concentration of triton X-100 , 2018 .
[59] O. Choi,et al. Enhanced extraction of butyric acid under high-pressure CO2 conditions to integrate chemical catalysis for value-added chemicals and biofuels , 2018, Biotechnology for Biofuels.
[60] Jürgen Rarey,et al. Extractive Fermentation of Ethanol from Sweet Sorghum Using Vacuum Fractionation Technique: Optimization and Techno-Economic Assessment , 2018 .
[61] A. J. Cruz,et al. Modeling and simulation of continuous extractive fermentation with CO2 stripping for bioethanol production , 2017 .
[62] Arbakariya B. Ariff,et al. Extractive Fermentation of Lactic Acid in Lactic Acid Bacteria Cultivation: A Review , 2017, Front. Microbiol..
[63] Jürgen Hubbuch,et al. Downstream process development strategies for effective bioprocesses: Trends, progress, and combinatorial approaches , 2017, Engineering in life sciences.
[64] Andrew J. Daugulis,et al. Imidazolium-based polyionic liquid absorbents for bioproduct recovery , 2017 .
[65] V. Coupard,et al. Hybrid in situ product recovery technique applied to (A)IBE fermentation , 2017 .
[66] Xuehong Zhang,et al. Isolation of ionizable red Monascus pigments after extractive fermentation in nonionic surfactant micelle aqueous solution , 2017 .
[67] Shikuan Shao,et al. An affinity-based aqueous two-phase mixed micellar system and its purification of Yeast 3',5'-bisphosphate nucleotidase. , 2017, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[68] V. Santos-Ebinuma,et al. Imidazolium-based ionic liquids as co-surfactants in aqueous micellar two-phase systems composed of nonionic surfactants and their aptitude for recovery of natural colorants from fermented broth , 2017 .
[69] Xiaofei Tian,et al. Correlation of pigment production with mycelium morphology in extractive fermentation of Monascus anka GIM 3.592 , 2017 .
[70] Pradip B. Dhamole,et al. Enhanced n-butanol production by Clostridium beijerinckii MCMB 581 in presence of selected surfactant , 2017, 3 Biotech.
[71] F. Maugeri,et al. Improving bioethanol production by Scheffersomyces stipitis using retentostat extractive fermentation at high xylose concentration , 2017 .
[72] G. Beckham,et al. Mixed Carboxylic Acid Production by Megasphaera elsdenii from Glucose and Lignocellulosic Hydrolysate , 2017 .
[73] J. Coutinho,et al. Ionic-Liquid-Mediated Extraction and Separation Processes for Bioactive Compounds: Past, Present, and Future Trends , 2017, Chemical reviews.
[74] V. Rathod,et al. Intensification of β-glucosidase enzyme production from Aspergillus niger using extractive fermentation with an aqueous two-phase system , 2017 .
[75] Jufang Wang,et al. Extractive fermentation for enhanced isopropanol and n-butanol production with mixtures of water insoluble aliphatic acids and oleyl alcohol , 2017 .
[76] F. Fischer,et al. Biodiesel via in Situ Wet Microalgae Biotransformation: Zwitter-Type Ionic Liquid Supported Extraction and Transesterification , 2017 .
[77] Oscar Aguilar,et al. An integrated process for the in situ recovery of prodigiosin using micellar ATPS from a culture of Serratia marcescens , 2016 .
[78] V. Santos-Ebinuma,et al. Effect of aeration and agitation on extractive fermentation of clavulanic acid by using aqueous two‐phase system , 2016, Biotechnology progress.
[79] Shuyu Xie,et al. Aqueous two-phase system (ATPS): an overview and advances in its applications , 2016, Biological Procedures Online.
[80] Kaijia Xu,et al. High-performance of deep eutectic solvent based aqueous bi-phasic systems for the extraction of DNA , 2016 .
[81] A. Karunanithi,et al. Life-Cycle Perspectives on Aquatic Ecotoxicity of Common Ionic Liquids. , 2016, Environmental science & technology.
[82] Yee Jiun Yap,et al. Production of γ-cyclodextrin by Bacillus cereus cyclodextrin glycosyltransferase using extractive bioconversion in polymer-salt aqueous two-phase system. , 2016, Journal of bioscience and bioengineering.
[83] Ping Li,et al. Comprehensive Evaluation of Deep Eutectic Solvents in Extraction of Bioactive Natural Products , 2016 .
[84] V. Santos,et al. Furfural production using ionic liquids: A review. , 2016, Bioresource technology.
[85] M. Coelho,et al. Menthol-based Eutectic Mixtures: Hydrophobic Low Viscosity Solvents , 2015 .
[86] V. Santos,et al. Utilization of Ionic Liquids in Lignocellulose Biorefineries as Agents for Separation, Derivatization, Fractionation, or Pretreatment. , 2015, Journal of agricultural and food chemistry.
[87] T. Scheper,et al. PEG–salt aqueous two-phase systems: an attractive and versatile liquid–liquid extraction technology for the downstream processing of proteins and enzymes , 2015, Applied Microbiology and Biotechnology.
[88] S. Mustafa,et al. A Novel Aqueous Two Phase System Composed of Surfactant and Xylitol for the Purification of Lipase from Pumpkin (Cucurbita moschata) Seed sand Recycling of Phase Components , 2015, Molecules.
[89] Kaijia Xu,et al. A green deep eutectic solvent-based aqueous two-phase system for protein extracting. , 2015, Analytica chimica acta.
[90] H. Blanch,et al. Production of an acetone-butanol-ethanol mixture from Clostridium acetobutylicum and its conversion to high-value biofuels , 2015, Nature Protocols.
[91] M. Amid,et al. A Novel Aqueous Micellar Two-Phase System Composed of Surfactant and Sorbitol for Purification of Pectinase Enzyme from Psidium guajava and Recycling Phase Components , 2015, BioMed research international.
[92] Qi Zhang,et al. Substrate and Product Inhibition on Yeast Performance in Ethanol Fermentation , 2015 .
[93] Xuehong Zhang,et al. Coupled aminophilic reaction and directed metabolic channeling to red Monascus pigments by extractive fermentation in nonionic surfactant micelle aqueous solution , 2015 .
[94] S. Rajagopalan,et al. Rapid Solvent Screening Using Thermodynamic Models for Recovery of 2,3-Butanediol from Fermentation by Liquid–Liquid Extraction , 2014 .
[95] Silvia A. Nebra,et al. New alternatives for the fermentation process in the ethanol production from sugarcane: Extractive and low temperature fermentation , 2014 .
[96] Rui L. Reis,et al. Natural Deep Eutectic Solvents – Solvents for the 21st Century , 2014 .
[97] S. Gunawan,et al. Production of Ethanol as a Renewable Energy by Extractive Fermentation , 2014 .
[98] C. Cardona,et al. Analysis and Design of Extractive Fermentation Processes Using a Novel Short-Cut Method , 2013 .
[99] J. Teixeira,et al. Integrated Process Production and Extraction of the Fibrinolytic Protease from Bacillus sp. UFPEDA 485 , 2013, Applied Biochemistry and Biotechnology.
[100] P. Bahadur,et al. Phenol induced growth in Triton X-100 micelles: Effect of pH and phenols’ hydrophobicity , 2012 .
[101] A. E. El-Enany,et al. Production of acetone-butanol-ethanol from spoilage date palm (Phoenix dactylifera L.) fruits by mixed culture of Clostridium acetobutylicum and Bacillus subtilis , 2012 .
[102] Yukihiro Tashiro,et al. Membrane-assisted extractive butanol fermentation by Clostridium saccharoperbutylacetonicum N1-4 with 1-dodecanol as the extractant. , 2012, Bioresource technology.
[103] C. Tan,et al. Extractive fermentation for improved production and recovery of lipase derived from Burkholderia cepacia using a thermoseparating polymer in aqueous two-phase systems. , 2012, Bioresource technology.
[104] Priyanka Singh,et al. Partitioning studies of L-glutaminase production by Bacillus cereus MTCC 1305 in different PEG-salt/dextran. , 2012, Bioresource technology.
[105] Hao Feng,et al. Extractive fermentation with non-ionic surfactants to enhance butanol production. , 2012 .
[106] Juan A Asenjo,et al. Aqueous two-phase systems for protein separation: a perspective. , 2011, Journal of chromatography. A.
[107] G. Guiochon,et al. Separation science is the key to successful biopharmaceuticals. , 2011, Journal of chromatography. A.
[108] M. Aires-Barros,et al. Aqueous two-phase extraction as a platform in the biomanufacturing industry: economical and environmental sustainability. , 2011, Biotechnology advances.
[109] Tingfeng Yi,et al. Synthesis and application of task-specific ionic liquids used as catalysts and/or solvents in organic unit reactions , 2011 .
[110] J. Coutinho,et al. Separation of ethanol–water mixtures by liquid–liquid extraction using phosphonium-based ionic liquids , 2011 .
[111] Pailin Boontawan,et al. Extractive fermentation of l-(+)-lactic acid by Pediococcus pentosaceus using electrodeionization (EDI) technique , 2011 .
[112] Y. Chisti,et al. Ultrasound-assisted fermentation enhances bioethanol productivity , 2011 .
[113] R. Berger,et al. Foaming of proteins: New prospects for enzyme purification processes. , 2011, Journal of biotechnology.
[114] R. Banik,et al. Extractive fermentation for enhanced production of alkaline phosphatase from Bacillus licheniformis MTCC 1483 using aqueous two-phase systems. , 2011, Bioresource technology.
[115] Zhilong Wang,et al. Extractive microbial fermentation in cloud point system. , 2010, Enzyme and microbial technology.
[116] Jian‐He Xu,et al. Extractive fermentation in cloud point system for lipase production by Serratia marcescens ECU1010 , 2010, Applied Microbiology and Biotechnology.
[117] Ana M Azevedo,et al. Chromatography-free recovery of biopharmaceuticals through aqueous two-phase processing. , 2009, Trends in biotechnology.
[118] Feng-Sheng Wang,et al. Optimal biocompatible solvent design for a two-stage extractive fermentation process with cell recycling , 2008, Comput. Chem. Eng..
[119] P. Mazzola,et al. Liquid–liquid extraction of biomolecules: an overview and update of the main techniques , 2008 .
[120] J. Xing,et al. Purification of nattokinase by reverse micelles extraction from fermentation broth: effect of temperature and phase volume ratio , 2006, Bioprocess and biosystems engineering.
[121] Woo-Jin Chang,et al. Influence of ionic liquids on the growth ofEscherichia coli , 2005 .
[122] M. Matsumoto,et al. Extraction of organic acids using imidazolium-based ionic liquids and their toxicity to Lactobacillus rhamnosus , 2004 .
[123] A. Santhiagu,et al. Technological aspects of extractive fermentation using aqueous two-phase systems , 2003 .
[124] M. V. Potapovich,et al. Kinetics of Catalase Inactivation Induced by Ultrasonic Cavitation , 2003, Applied Biochemistry and Microbiology.
[125] R. Banik,et al. Extractive fermentation for enhanced gellan-hydrolysing enzyme production by Bacillus thuringiensis H14 , 2002 .
[126] Robin D. Rogers,et al. Solute partitioning in aqueous biphasic systems composed of polyethylene glycol and salt: The partitioning of small neutral organic species , 2002 .
[127] Panda,et al. Extractive fermentation for improved production of endoglucanase by an intergeneric fusant of Trichoderma reesei/Saccharomyces cerevisiae using aqueous two-phase system. , 2000, Biochemical engineering journal.
[128] F. Ouyang,et al. Extractive cultivation of Lactococcus lactis using a polyethylene glycol/MgSO4 · 7H2O aqueous two-phase system to produce nisin , 2000, Biotechnology Letters.
[129] Andrew J. McAloon,et al. Ethanol production by continuous fermentation–pervaporation: a preliminary economic analysis , 2000 .
[130] Maria Isabel Rodrigues,et al. Dynamic modelling, simulation and optimization of an extractive continuous alcoholic fermentation process , 1999 .
[131] K. Réczey,et al. Concentration and purification of beta-glucosidase from Aspergillus niger by using aqueous two-phase partitioning. , 1998, Journal of chromatography. B, Biomedical sciences and applications.
[132] Daniel I. C. Wang,et al. Separation of proteins and viruses using two-phase aqueous micellar systems. , 1998, Journal of chromatography. B, Biomedical sciences and applications.
[133] F. Tjerneld,et al. Enhanced production of lactic acid through the use of a novel aqueous two-phase system as an extractive fermentation system , 1996, Applied Microbiology and Biotechnology.
[134] Jyh-Ping Chen,et al. Enhanced production of Serratia marcescens chitinase in PEG/dextran aqueous two-phase systems , 1995 .
[135] P. Soucaille,et al. Partitioning of pristinamycins in aqueous two‐phase systems: A first step toward the development of antibiotic production by extractive fermentation , 1994, Biotechnology and bioengineering.
[136] A. Daugulis,et al. Ethanol production from lactose by extractive fermentation , 1993, Biotechnology Letters.
[137] P. McLellan,et al. The economics of ethanol production by extractive fermentation , 1991 .
[138] Y. Y. Lee,et al. In situ product separation in butanol fermentation by membrane-assisted extraction , 1989 .
[139] R. Bar,et al. Ultrasound enhanced bioprocesses: Cholesterol oxidation by Rhodococcus erythropolis , 1988, Biotechnology and bioengineering.
[140] M. Díaz. Three-phase extractive fermentation , 1988 .
[141] G. Goma,et al. Ethanol production by extractive fermentation , 1982, Biotechnology and bioengineering.
[142] T. Gayatri,et al. Sustainable valorization of papaya peels for thrombolytic cysteine protease isolation by ultrasound assisted disruptive liquid phase microextraction with task specific switchable natural deep eutectic solvents , 2022, Microchemical Journal.
[143] Yezhou Yang,et al. Are deep eutectic solvents really green?: A life-cycle perspective , 2022, Green Chemistry.
[144] M. Tobiszewski,et al. Assessment and design of greener deep eutectic solvents – A multicriteria decision analysis , 2021 .
[145] M. Martins,et al. Uncovering the potential of aqueous solutions of deep eutectic solvents on the extraction and purification of collagen type I from Atlantic codfish (Gadus morhua) , 2021, Green Chemistry.
[146] F. A. Ferrari,et al. The Role of Ionic Liquid Pretreatment and Recycle Design in the Sustainability of a Biorefinery: a Sugarcane to Ethanol Example , 2021, Green Chemistry.
[147] H. Balaraman,et al. High selective purification of Quercetin from Peanut hull using protic deep eutectic mixture based liquid–liquid microextraction , 2020 .
[148] Anup Ashok,et al. Design of solid state bioreactor for industrial applications: An overview to conventional bioreactors , 2017 .
[149] Reeta Rani Singhania,et al. Production, Purification, and Application of Microbial Enzymes , 2017 .
[150] R. Kumaresan,et al. Design and development of single stage purification of papain using Ionic Liquid based aqueous two phase extraction system and its Partition coefficient studies , 2013 .
[151] A. Converti,et al. Extractive fermentation of clavulanic acid by Streptomyces DAUFPE 3060 using aqueous two‐phase system , 2011, Biotechnology progress.
[152] S. M. M. Kamal,et al. Extractive fermentation using aqueous two-phase systems for integrated production and purification of extracellular lipase derived from Burkholderia pseudomallei , 2011 .
[153] M. Rito‐Palomares,et al. Application of Aqueous Two‐Phase Systems for the Potential Extractive Fermentation of Cyanobacterial Products , 2010 .
[154] P. Mazzola,et al. Liquid-liquid extraction of commercial and biosynthesized nisin by aqueous two-phase micellar systems. , 2008, Enzyme and microbial technology.
[155] Shangtian Yang,et al. Extractive Fermentation for the Production of Carboxylic Acids , 2007 .
[156] M. Matsumoto,et al. Toxicity of ionic liquids and organic solvents to lactic acid-producing bacteria. , 2004, Journal of bioscience and bioengineering.
[157] A. G. Fadeev,et al. Opportunities for ionic liquids in recovery of biofuels , 2001 .
[158] C. Glatz,et al. Feasibility of propionic acid production by extractive fermentation , 1999 .
[159] Shangtian Yang,et al. Extractive Fermentation for Enhanced Propionic Acid Production from Lactose by Propionibacterium acidipropionici , 1998, Biotechnology progress.
[160] Niall Barron,et al. Ethanol production by , 1997 .
[161] H. Hustedt,et al. Purification of enzymes by liquid-liquid extraction , 1982 .