PaulyM, KeegstraK. Cell-wall carbohydrates and their modification as a resource for biofuels. Plant J, 2008; 54:559–568.
2.
FuC, MielenzJR, XiaoXet al.Genetic manipulation of lignin reduces recalcitrance and improves ethanol production from switchgrass. PNAS, 2011; 108:3803–3808.
3.
StuderME, DeMartiniJD, DavisMFet al.Lignin content in natural Populus variants affects sugar release. PNAS, 2011; 108:6300–6305.
4.
AlbersheimP, DarvillA, RobertsDet al.Plant Cell Walls. New York, NY: Garland Science, Taylor & Francis Group, LLC, 2011.
5.
HimmelM. Biomass Recalcitrance: Deconstructing the Plant Cell Wall for Bioenergy. Hoboken, NJ: Wiley-Blackwell, 2008.
6.
SluiterA, HamesBR, RuizRet al.Determination of sugars, byproducts, degradation products in liquid fraction process samplesNREL/TP-510-426232008. www.nrel.gov/biomass/pdfs/42623.pdf
7.
SeligM, WeissN, JiY. Enzymatic saccharification of lignocellulosic biomassNREL/TP-510-4126292008. www.nrel.gov/biomass/pdfs/42629.pdf
StuderMH, DeMartiniJD, BrethauerSet al.Engineering of a high-throughput screening system to identify cellulosic biomass pretreatments and enzyme formulations that enhance sugar release. Biotechnol Bioeng, 2010; 105:231.
10.
ChundawatSP, ShishirPS, BalanV, DaleBE. High-throughput microplate technique for enzymatic hydrolysis of lignocellulosic biomass. Biotechnol Bioeng, 2008; 99:1281–1294.
11.
SantoroN, CantuSL, TornqvistCEet al.A high-throughput platform for screening milligram quantities of plant biomass for lignocellulose digestibility. Bioenerg Res, 2010; 3:93–102.
12.
DeMartiniJD, StuderMH, WymanCE. Small-scale and automatable high-throughput compositional analysis of biomass. Biotechnol Bioeng, 2011; 108:306.
13.
SeligMJ, TuckerMP, LawCet al.High throughput determination of glucan and xylan fractions in lignocelluloses. Biotechnol Lett, 2011; 33,5:961–967.
14.
WolfrumE, LorenzA, DeLeonN. Correlating detergent fiber analysis and dietary fiber analysis data for corn stover. Cellulose, 2009; 16:577–585.
15.
WolfrumE, SluiterA. Improved multivariate calibration models for corn stover feedstock and dilute-acid pretreated corn stover. Cellulose, 2009; 16:567–576.
16.
SykesR, YungM, NovaesEet al.High throughput screening of plant cell wall composition using pyrolysis molecular beam mass spectroscopy. MielenzJR. Biofuels: Methods and Protocols, Methods in Molecular Biology, 581. New York, NY: Humana Press, 2009; 169–183.
17.
KingBC, DonnellyMK, BergstromGCet al.An optimized microplate assay system for quantitative evaluation of plant cell wall degrading enzyme activity of fungal culture extracts. Biotechnol Bioeng, 2009; 102:1033–1044.
18.
ReindleW, DengK, GladdenJMet al.Colloid-based multiplexed screening for plant biomass degrading glycoside hydrolase activities in microbial communities. Energ Environ Sci, 2011; 4:2884–2893.
19.
GrevingM, ChengCL, ReindleWet al.Acoustic deposition with NIMS as a high-throughput enzyme activity assay. Anal Bioanal Chem, 2012; 403:707–711.
20.
HimmelME, BakerJO, AdneyWS, DeckerSR. Cellulases, hemicellulases, and pectinases. ReddyCA, BeveridgeTJ, BreznakJAet al.Methods for General and Molecular Microbiology. Washington, DC: ASM, 2007.