Fungal Pigments: Potential Coloring Compounds for Wide Ranging Applications in Textile Dyeing

被引:72
作者
Venil, Chidambaram Kulandaisamy [1 ]
Velmurugan, Palanivel [2 ]
Dufosse, Laurent [3 ]
Devi, Ponnuswamy Renuka [1 ]
Ravi, Arumugam Veera [2 ]
机构
[1] Anna Univ, Dept Biotechnol, Reg Campus Coimbatore, Coimbatore 641046, Tamil Nadu, India
[2] Alagappa Univ, Dept Biotechnol, Sci Campus, Karaikkudi 630003, Tamil Nadu, India
[3] Univ Reunion, ESIROI Dept Agroalimentaire, CHEMBIOPRO Chim & Biotechnol Prod Nat, F-97490 St Clotilde, Ile De La Reuni, France
关键词
fungal pigments; textile dyeing; toxicity testing; biotechnological approaches; challenges; limits; SECONDARY METABOLITES; FILAMENTOUS FUNGI; ENDOPHYTIC FUNGUS; AZAPHILONE PIGMENTS; MONASCUS-PURPUREUS; A-D; NAPHTHOQUINONES; CONSTITUENTS; DERIVATIVES; EXTRACTION;
D O I
10.3390/jof6020068
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Synthetic pigments/non-renewable coloring sources used normally in the textile industry release toxic substances into the environment, causing perilous ecological challenges. To be safer from such challenges of synthetic colorants, academia and industries have explored the use of natural colorants such as microbial pigments. Such explorations have created a fervent interest among textile stakeholders to undertake the dyeing of textile fabrics, especially with fungal pigments. The biodegradable and sustainable production of natural colorants from fungal sources stand as being comparatively advantageous to synthetic dyes. The prospective scope of fungal pigments has emerged in the opening of many new avenues in textile colorants for wide ranging applications. Applying the biotechnological processes, fungal pigments like carotenoids, melanins, flavins, phenazines, quinones, monascins, violacein, indigo, etc. could be extracted on an industrial scale. This review appraises the studies and applications of various fungal pigments in dyeing textile fabrics and is furthermore shedding light on the importance of toxicity testing, genetic manipulations of fungal pigments, and their future perspectives under biotechnological approaches.
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页数:23
相关论文
共 136 条
[31]   Synthesis and assembly of fungal melanin [J].
Eisenman, Helene C. ;
Casadevall, Arturo .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2012, 93 (03) :931-940
[32]   Perangustols A and B, a pair of new azaphilone epimers from a marine sediment-derived fungus Cladosporium perangustm FS62 [J].
Fan, Zhen ;
Sun, Zhang-Hua ;
Liu, Hong-Xin ;
Chen, Yu-Chan ;
Li, Hao-Hua ;
Zhang, Wei-Min .
JOURNAL OF ASIAN NATURAL PRODUCTS RESEARCH, 2016, 18 (11) :1024-1029
[33]   Monascus pigments [J].
Feng, Yanli ;
Shao, Yanchun ;
Chen, Fusheng .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2012, 96 (06) :1421-1440
[34]   Anthraquinones and Derivatives from Marine-Derived Fungi: Structural Diversity and Selected Biological Activities [J].
Fouillaud, Mireille ;
Venkatachalam, Mekala ;
Girard-Valenciennes, Emmanuelle ;
Caro, Yanis ;
Dufosse, Laurent .
MARINE DRUGS, 2016, 14 (04)
[35]   Azaphilones: Chemistry and Biology [J].
Gao, Jin-Ming ;
Yang, Sheng-Xiang ;
Qin, Jian-Chun .
CHEMICAL REVIEWS, 2013, 113 (07) :4755-4811
[36]   Fungal Anthraquinones [J].
Gessler, N. N. ;
Egorova, A. S. ;
Belozerskaya, T. A. .
APPLIED BIOCHEMISTRY AND MICROBIOLOGY, 2013, 49 (02) :85-99
[37]   Filamentous ascomycetes fungi as a source of natural pigments [J].
Gmoser R. ;
Ferreira J.A. ;
Lennartsson P.R. ;
Taherzadeh M.J. .
Fungal Biology and Biotechnology, 4 (1) :1-25
[38]  
Gokarneshan N., 2018, INT J TEXT SCI ENG, P1
[39]   Penicitols A-C and Penixanacid A from the Mangrove-Derived Penicillium chrysogenum HDN11-24 [J].
Guo, Wenqiang ;
Li, Dan ;
Peng, Jixing ;
Zhu, Tianjiao ;
Gu, Qianqun ;
Li, Dehai .
JOURNAL OF NATURAL PRODUCTS, 2015, 78 (02) :306-310
[40]  
Gupta C., 2013, INT J SCI NATURE, V4, P351