Characterization of the Red Dye From Arthrinium phaeospermum and Its Application in Wood Dyeing.

IF 3.5 4区 生物学 Q2 MICROBIOLOGY
Mengqi Wu, Taize Song, Tingwei Pang, Pengyan Zhuang, Jiashun Niu, Yalan Li, Jianping Sun
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Abstract

The aim of this study was to investigate the production, stability and applicability of dyes produced by filamentous fungi isolated from wood. First, the effect of culture conditions on fungal growth and dye production was investigated. The dyes were experimentally studied for solubility and stability and chemically characterized by FT-IR and UPLC-Q-EXACTIVE-MS. Finally, the dye was used to evaluate its industrial applicability by staining a variety of woods. The results showed that the filamentous fungus Arthrinium phaeospermum was able to produce red water-soluble pigments, which were thermally and ultraviolet stable and remained stable in pH 1-9. Chemical analysis showed that the red dye contained the chromogenic substances bostrycin and about 7.01% of griseofulvin. Dyeing experiments showed that the red dye was able to give the wood a red color and a natural grain. The results of various experiments indicate that A. phaeospermum has the potential to produce dyes for use in the wood dyeing and textile industries.

紫铁红染料的表征及其在木材染色中的应用。
本研究的目的是研究从木材中分离的丝状真菌生产染料的生产、稳定性和适用性。首先,研究了培养条件对真菌生长和染料生产的影响。通过FT-IR和UPLC-Q-EXACTIVE-MS对染料的溶解度和稳定性进行了实验研究。最后,通过对多种木材的染色来评价该染料的工业适用性。结果表明,丝状真菌红精蒿(Arthrinium phaeospermum)能够产生红色水溶性色素,该色素具有热稳定性和紫外线稳定性,在pH 1 ~ 9范围内保持稳定。化学分析表明,该红色染料含有显色物质bostrycin和约7.01%的灰黄霉素。染色实验表明,红色染料能够使木材呈现出红色和自然的纹理。各种实验结果表明,黄精草有潜力生产用于木材染色和纺织工业的染料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Basic Microbiology
Journal of Basic Microbiology 生物-微生物学
CiteScore
6.10
自引率
0.00%
发文量
134
审稿时长
1.8 months
期刊介绍: The Journal of Basic Microbiology (JBM) publishes primary research papers on both procaryotic and eucaryotic microorganisms, including bacteria, archaea, fungi, algae, protozoans, phages, viruses, viroids and prions. Papers published deal with: microbial interactions (pathogenic, mutualistic, environmental), ecology, physiology, genetics and cell biology/development, new methodologies, i.e., new imaging technologies (e.g. video-fluorescence microscopy, modern TEM applications) novel molecular biology methods (e.g. PCR-based gene targeting or cassettes for cloning of GFP constructs).
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