Evidence map›Paper›PMID 41886215›Full record

ArticleBioresources and bioprocessing2026

Optimization of fermentation conditions for cellulase/xylanase production and hydrolysis conditions for efficient conversion of agricultural residues using Penicillium oxalicum UNN1.

Lingyan Zhong, Fengcheng Jin, Liyuan Qin, Dongping Feng, Weixin Liu, Yuxin Lan, Zhiyun Li, Jiajun Tang, Zhong Cheng, Ting Zhang

Abstract read
In one paragraph

Article in Bioresources and bioprocessing, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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1 · What the graph read from it

What it found

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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

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3 · Its place in the literature

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4 · The record

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5 · Who and what money

Authors and funding

10 authors.

Lingyan Zhong *College of Food and Quality Engineering, Nanning University, Nanning, 530200, Guangxi, China.
Fengcheng Jin *College of Food and Quality Engineering, Nanning University, Nanning, 530200, Guangxi, China.
Liyuan QinCollege of Food and Quality Engineering, Nanning University, Nanning, 530200, Guangxi, China.
Dongping FengCollege of Food and Quality Engineering, Nanning University, Nanning, 530200, Guangxi, China.
Weixin LiuCollege of Food and Quality Engineering, Nanning University, Nanning, 530200, Guangxi, China.
Yuxin LanCollege of Food and Quality Engineering, Nanning University, Nanning, 530200, Guangxi, China.
Zhiyun LiCollege of Food and Quality Engineering, Nanning University, Nanning, 530200, Guangxi, China.
Jiajun TangCollege of Food and Quality Engineering, Nanning University, Nanning, 530200, Guangxi, China.
Zhong ChengCollege of Food and Quality Engineering, Nanning University, Nanning, 530200, Guangxi, China. zhongchengnu@163.com.
Ting ZhangCollege of Food and Quality Engineering, Nanning University, Nanning, 530200, Guangxi, China. zhangting@unn.edu.cn.ORCID http://orcid.org/0009-0008-8407-0554

Funding

National College Students Innovation and Entrepreneurship Training Program 202411549018Natural Science Foundation of Guangxi Zhuang Autonomous Region 2023GXNSFAA026235Natural Science Foundation of Guangxi Zhuang Autonomous Region 2024GXNSFBA010330the Guangxi Youth Talents Program to Ting Zhangthe Yongjiang Program for Young Talents RC20230202
6 · The paper itself

Abstract

Agricultural residues like sugarcane bagasse and rice straw are rich in cellulose and xylan. Their efficient conversion into (oligo)saccharides and value-added products requires microbial cellulases and xylanases, but low enzyme yields and high production costs hinder industrial application. This study isolated Penicillium oxalicum UNN1, a high-xylanase-producing strain with an initial activity of 51.63 U/mL. Submerged fermentation conditions were optimized using different carbon/nitrogen sources to enhance enzyme production. The optimized xylanase activity reached 191.22 U/mL (sugarcane bagasse xylan as sole carbon source) and 142.32 U/mL (combined with Avicel), with filter paper cellulase activity of 0.76 U/mL. The crude enzymes exhibited optimal activity at pH 5.0 and 50 °C. Cellulase retained over 75% activity after 7 h at pH 4.0-6.0 (4 °C) or 40 °C (pH 5.0), while xylanase activity remained nearly unchanged, even after over 21 days of storage at 4 °C (pH 5.0). However, the half-life of xylanase was less than 1 h at 50 °C, though it exceeded 72 h at 40 °C (pH 5.5). 3-5 mM Ca²⁺ and Cu²⁺ strongly inhibited both enzymes. Crude enzyme addition (about 7 U cellulase and 1,400 U xylanase) effectively enhanced reducing sugar production from agricultural residues. Single-factor and response surface optimization yielded optimal hydrolysis conditions: 480 U/g sugarcane bagasse xylan of xylanase, hydrolysate pH of 5.5, hydrolysis temperature of 40 °C, achieving a maximum reducing sugar yield of 0.355 g/g dry biomass. This work demonstrates the potential of P. oxalicum UNN1 enzymes for efficient and stable saccharification of agricultural residues, offering a viable approach for their valorization and environmental management.

Indexed as

CellulaseHydrolysisOptimizationPenicillium oxalicumSubmerged fermentationXylanase

Identifiers

PMID41886215
PMCPMC13022107

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