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Dive into the research topics where Brian R. Scott is active.

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Featured researches published by Brian R. Scott.


Scientific Reports | 2017

The Multi Domain Caldicellulosiruptor bescii CelA Cellulase Excels at the Hydrolysis of Crystalline Cellulose

Roman Brunecky; Bryon S. Donohoe; John M. Yarbrough; Ashutosh Mittal; Brian R. Scott; Hanshu Ding; Larry E. Taylor; Jordan F. Russell; Daehwan Chung; Janet Westpheling; Sarah Teter; Michael E. Himmel; Yannick J. Bomble

The crystalline nature of cellulose microfibrils is one of the key factors influencing biomass recalcitrance which is a key technical and economic barrier to overcome to make cellulosic biofuels a commercial reality. To date, all known fungal enzymes tested have great difficulty degrading highly crystalline cellulosic substrates. We have demonstrated that the CelA cellulase from Caldicellulosiruptor bescii degrades highly crystalline cellulose as well as low crystallinity substrates making it the only known cellulase to function well on highly crystalline cellulose. Unlike the secretomes of cellulolytic fungi, which typically comprise multiple, single catalytic domain enzymes for biomass degradation, some bacterial systems employ an alternative strategy that utilizes multi-catalytic domain cellulases. Additionally, CelA is extremely thermostable and highly active at elevated temperatures, unlike commercial fungal cellulases. Furthermore we have determined that the factors negatively affecting digestion of lignocellulosic materials by C. bescii enzyme cocktails containing CelA appear to be significantly different from the performance barriers affecting fungal cellulases. Here, we explore the activity and degradation mechanism of CelA on a variety of pretreated substrates to better understand how the different bulk components of biomass, such as xylan and lignin, impact its performance.


Biotechnology Letters | 2016

Catalase improves saccharification of lignocellulose by reducing lytic polysaccharide monooxygenase-associated enzyme inactivation

Brian R. Scott; Hong Zhi Huang; Jesper Frickman; Rune Halvorsen; Katja Salomon Johansen


Archive | 2010

NOVEL LIGNIN-RESISTANT CELLULASE ENZYMES

Brian R. Scott; Patrick St-Pierre; James Lavigne; Nabil Masri; Theresa C. White; John J. Tomashek


Archive | 2010

Novel beta-glucosidase enzymes

Brian R. Scott; Chengsong Liu; James Lavigne; John J. Tomashek


Archive | 2009

Family 6 cellulase with decreased inactivation by lignin

James Lavigne; Brian R. Scott; Martine Whissel; John J. Tomashek


Archive | 2011

Carbohydate binding modules with reduced binding to lignin

John J. Tomashek; Brian R. Scott; Daniel Sebastian Kolczynski


Archive | 2010

Beta-glucosidase enzymes

Brian R. Scott; Chengsong Liu; James Lavigne; John J. Tomashek


Biotechnology for Biofuels | 2018

Redox processes acidify and decarboxylate steam-pretreated lignocellulosic biomass and are modulated by LPMO and catalase

Ausra Peciulyte; Louise Samuelsson; Lisbeth Olsson; K. C. McFarland; Jesper Frickmann; Lars Østergård; Rune Halvorsen; Brian R. Scott; Katja Salomon Johansen


Archive | 2015

Variants of gh family 5 endoglucanase and polynucleotides encoding same

James Lavigne; Daniel Sebastian Kolczynski; Brian R. Scott


Archive | 2015

VARIANTS OF GH FAMILY 11 XYLANASE AND POLYNUCLEOTIDES ENCODING SAME

James Lavigne; Brian R. Scott; Daniel Sebastian Kolczynski

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