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Enhanced cellulosic ethanol production via consolidated bioprocessing by Clostridium thermocellum ATCC 31924 Singh N, Mathur AS, Gupta RP, Barrow CJ, Tuli D, Puri M Bioresource Technology, 250, 860, 2018 |
2 |
Enhanced cellulose fermentation and end-product synthesis by Clostridium thermocellum with varied nutrient compositions under carbon-excess conditions Islam R, Ozmihci S, Cicek N, Sparling R, Levin DB Biomass & Bioenergy, 48, 213, 2013 |
3 |
Enzymatic hydrolysis and production of bioethanol from common macrophytic green alga Ulva fasciata Delile Trivedi N, Gupta V, Reddy CRK, Jha B Bioresource Technology, 150, 106, 2013 |
4 |
Development and Evaluation of Methods to Infer Biosynthesis and Substrate Consumption in Cultures of Cellulolytic Microorganisms Holwerda EK, Ellis LD, Lynd LR Biotechnology and Bioengineering, 110(9), 2380, 2013 |
5 |
Testing Alternative Kinetic Models for Utilization of Crystalline Cellulose (Avicel) by Batch Cultures of Clostridium thermocellum Holwerda EK, Lynd LR Biotechnology and Bioengineering, 110(9), 2389, 2013 |
6 |
Utilization and optimization of a waste stream cellulose culture medium for pigment production by Penicillium spp. Sopandi T, Wardah A, Surtiningsih T, Suwandi A, Smith JJ Journal of Applied Microbiology, 114(3), 733, 2013 |
7 |
Third generation biofuels via direct cellulose fermentation Carere CR, Sparling R, Cicek N, Levin DB International Journal of Molecular Sciences, 9(7), 1342, 2008 |
8 |
Thermophilic H-2 production from a cellulose-containing wastewater Liu H, Zhang T, Fang HHP Biotechnology Letters, 25(4), 365, 2003 |
9 |
Efficient production of cellulolytic and xylanolytic enzymes by the rumen anaerobic fungus, Neocallimastix frontalis, in a repeated batch culture Srinivasan K, Murakami M, Nakashimada Y, Nishio N Journal of Bioscience and Bioengineering, 91(2), 153, 2001 |
10 |
Biochemical-Engineering Analysis of Critical Process Factors in the Biomass-to-Ethanol Technology Philippidis GP, Hatzis C Biotechnology Progress, 13(3), 222, 1997 |