[Optimization of xylose fermentation for ethanol production by Candida shehatae HDYXHT-01].

Sheng Wu Gong Cheng Xue Bao

Key Laboratory of Microbiology of Heilongjiang Province, College ofLife Science, Heilongjiang University, Harbin 150080, China.

Published: March 2011

Plackett-Burman (PB) design and central composite design (CCD) were applied to optimize of xylose fermentation for ethanol production by Candida shehatae HDYXHT-01. The PB results showed that (NH4)2SO4, KH2PO4, yeast extract and inoculum volume were the main affecting factors. With ethanol productivity as the target response, the optimal fermentation was determined by CCD and response surface analysis (RSM). The optimal fermentation conditions were (NH4)2SO4 1.73 g/L, KH2PO4 3.56 g/L, yeast extract 2.62 g/L and inoculum volume 5.66%. Other fermentation conditions were xylose 80 g/L, MgSO47H20 0.1 g/L, pH 5.0 and 250 mL flask containing 100 mL medium and cultivated at 30 degrees C for 48 h and the agitation speed was 140 r/min. Under this fermentation conditions, ethanol productivity was 26.18 g/L, which was 1.15 times of the initial.

Download full-text PDF

Source

Publication Analysis

Top Keywords

fermentation conditions
12
xylose fermentation
8
fermentation ethanol
8
ethanol production
8
production candida
8
candida shehatae
8
yeast extract
8
inoculum volume
8
ethanol productivity
8
optimal fermentation
8

Similar Publications

Enhanced butanol tolerance and production from puerariae slag hydrolysate by Clostridium beijerinckii through metabolic engineering and process regulation strategies.

Bioresour Technol

January 2025

College of Bioscience and Bioengineering, Institute of Applied Microbiology, Jiangxi Agricultural University, Nanchang, Jiangxi 330045, China. Electronic address:

Butanol is a more desirable second-generation biomass energy source. Acetone-butanol-ethanol (ABE) fermentation using Clostridium spp. is a promising method for butanol production.

View Article and Find Full Text PDF

High-throughput screening of acetogenic strains for growth and metabolite profiles on readily available biomass.

Bioresour Technol

January 2025

Centre for Industrial Biotechnology and Biocatalysis (InBio.be), Department of Biotechnology, Faculty of Bioscience Engineering, Ghent University, Coupure Links 653, Ghent, 9000, Belgium; Bio Base Europe Pilot Plant (BBEPP), Rodenhuizekaai 1, Ghent, 9042, Belgium. Electronic address:

Abundant biomass, including industrial waste streams and second-generation (2G) and third-generation (3G) feedstocks, offers significant potential for sustainable bioconversion, nevertheless challenges such as fermentation inhibitors, CO losses and substrate selectivity of traditional microbial hosts hinder process efficiency. In this study, we address these challenges by exploring acetogenic bacteria as alternative microbial hosts. Using a newly established high-throughput method, acetogens were evaluated for their capacity to hydrolyse and metabolise variety of substrates derived from 2G and 3G feedstocks and industrial waste streams.

View Article and Find Full Text PDF

Metabolic engineering of Priestia megaterium for 2'-fucosyllactose production.

Microb Cell Fact

January 2025

Department of Chemical & Biological Engineering, Korea University, Seoul, 136-763, Korea.

Background: 2'-Fucosyllactose (2'-FL) is a predominant human milk oligosaccharide that significantly enhances infant nutrition and immune health. This study addresses the need for a safe and economical production of 2'-FL by employing Generally Recognized As Safe (GRAS) microbial strain, Priestia megaterium ATCC 14581. This strain was chosen for its robust growth and established safety profile and attributing suitable for industrial-scale production.

View Article and Find Full Text PDF

Effect of catalase on CPC production during fermentation of Acremonium chrysogenum.

Bioresour Bioprocess

January 2025

Qingdao Innovation Institute of East China University of Science and Technology, State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai, 200237, People's Republic of China.

Cephalosporin C (CPC) is a critical raw material for cephalosporin antibiotics produced by Acremonium chrysogenum. During fermentation, the oxygen supply is a crucial factor limiting the efficient biosynthesis of CPC. This study demonstrated that the addition of exogenous surfactants significantly increased the dissolved oxygen (DO) level, extracellular catalase content, and final CPC titer.

View Article and Find Full Text PDF

Benzene degradation under anoxic conditions was first reported more than 25 years ago; however, the activation mechanism in the absence of oxygen remains elusive. Progress has been hindered by the difficulty in cultivating anaerobic benzene-degrading enrichment cultures. Our laboratory has sustained a methanogenic enrichment culture harboring ORM2, a benzene fermenter distinct from any known genus but related to other known or predicted benzene degraders.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!