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A novel analytical approach based on pyrolysis-gas chromatography coupled with mass spectrometry of carbohydrates with in situ silylation using hexamethyldisilazane is presented in this work for the first time. A micro reaction sampler was used to simultaneously achieve the pyrolyis reaction and facilitate the derivatization of pyrolysis products, by enabling the materials to react with the derivatizing agent in a sealed capsule at high temperature and pressure for long periods of time. This drastically increased the complete silylation of the pyrolysis products and the chromatographic resolution, resulting in less complex pyrograms and increased sensitivity toward the most stable compounds. Different results were obtained for glucose and cellulose in terms of predominant pyrolytic pathways. The formation of anhydrosugars was the preferential pyrolytic reaction for glucose, while the formation of cyclopentenones and small molecules was predominant for the pyrolysis of cellulose. Steric hindrance effects of polysaccharide chains on the efficiency of the derivatizing agent were hypothesized in order to explain the different results. A good reproducibility was found, with relative standard deviations not greater than 10%. Semiquantitative calculations showed that the partial silylation of anhydrosugars was almost completely overcome after 10 min of reactive pyrolysis. This work discloses a powerful and potentially widely applicable analytical method for the investigations of organic materials under controlled pyrolytic conditions, with the advantage of increasing the effectiveness of in situ derivatization.
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http://dx.doi.org/10.1021/acs.analchem.6b02910 | DOI Listing |
ACS Omega
September 2025
R&D Production Department in Pharmaceutical Industry, Faculty of Pharmacy, Inonu University, 44280 Malatya, Turkey.
Bacterial cellulose (BC) was produced in dried apricot extract medium (DAEM) by . The BC yield obtained from DAEM containing 0.5 g of glucose after 10 days of incubation at 30 °C was determined as 9.
View Article and Find Full Text PDFJ Biotechnol
September 2025
College of Engineering, China Agricultural University, Beijing 100083, China. Electronic address:
Cotton stalk (CTS) and corn stover (CRS) were pretreated using solid alkali (NaOH or Ca(OH)) assisted ball milling (BM). The physicochemical properties of the pretreated materials and their high-solid enzymatic hydrolysis performance were systematically investigated. The interaction between alkali and straw was synergistically enhanced by mechanical force generated during BM, achieving effective lignin removal.
View Article and Find Full Text PDFCarbohydr Polym
November 2025
College of Life Sciences, Henan Agricultural University, Zhengzhou 450046, China. Electronic address:
Artificial starch production from bioreactors is very promising in terms of amylose's broad applications as well as the possibility of addressing food shortage. We previously built an in vitro cellulose-to-starch pathway, synthesizing amylose from non-food cellulose. A challenge of this pathway lies in its low amylose yield due to the fact that only cellobiose in cellulose hydrolysate can be converted into amylose while cellodextrins with a degree of polymerization (DP) ≥ 3 cannot be utilized.
View Article and Find Full Text PDFBiosens Bioelectron
August 2025
Faculty of Biotechnology and Food Engineering, Technion - Israel Institute of Technology, 3200003, Haifa, Israel; The Resnick Sustainable Center for Catalysis, Technion - Israel Institute of Technology, 3200003, Haifa, Israel; Nancy and Stephen Grand Technion Energy Program, Technion - Israel Instit
Exploiting biomass as a fuel source has attracted increasing attention over the last few decades. Combined biotic-abiotic systems can enhance conversion efficiency, but biotic reactions often require oxygen-free conditions, which are hindered by oxygen evolution at the photoanode. Herein, we develop a modular microbial-photoelectrochemical cell (MPEC) that facilitates the one-pot degradation and light-induced conversion of cellulosic material into electrical power and added-value compounds.
View Article and Find Full Text PDFAppl Microbiol Biotechnol
September 2025
School of Environment and Energy, Peking University Shenzhen Graduate School, Shenzhen, China.
Bacterial nanocellulose (BNC) is a valuable biopolymer with immense potential in various sectors of biotechnology. However, large-scale production is hindered by low yields and high costs. Glycerol is an inexpensive and widely available carbon source for BNC biosynthesis, as it is a by-product of the biofuel industry.
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