Suppr超能文献

担子菌阿魏蘑(Armillaria cepistipes)规模化合成黑色素。

Scalable Biosynthesis of Melanin by the Basidiomycete Armillaria cepistipes.

机构信息

Laboratory for Applied Wood Materials , Empa , Lerchenfeldstrasse 5 , St. Gallen 9014 , Switzerland.

Laboratory for Soft and Living Materials, Department of Materials , ETH Zürich , Vladimir-Prelog-Weg 5 , Zürich 8093 , Switzerland.

出版信息

J Agric Food Chem. 2019 Jan 9;67(1):132-139. doi: 10.1021/acs.jafc.8b05071. Epub 2018 Dec 19.

Abstract

Natural melanin features many interesting properties, including the ability to shield electromagnetic radiation, the ability to act as scavenger for radical and reactive oxygen species and the capacity to chelate different metal ions. For these reasons, melanin is becoming increasingly relevant for the development of functional materials with potential applications in cosmetics, drug delivery, and water purification. However, the extraction and purification of melanin from conventional sources (e.g., sepia ink, hair, and wool) is inefficient and not easily scalable, hence diverting its technological applications. Some fungal species, especially wood-decay basidiomycetes, can be regarded as promising sources of melanin. In the present study, we screened different fungi in regard to their melanin-biosynthesis abilities using l-tyrosine as a precursor, and we found that an Armillaria cepistipes strain (Empa 655) produced the highest yield of melanin (27.98 g L). Physicochemical characterization of the obtained fungal melanin revealed a typical eumelanin structure. The method for the biosynthesis of fungal melanin we propose is efficient, scalable, and sustainable and has the potential to provide support for further technological exploitation.

摘要

天然黑色素具有许多有趣的特性,包括屏蔽电磁辐射的能力、作为自由基和活性氧物种清除剂的能力以及螯合不同金属离子的能力。出于这些原因,黑色素在功能性材料的开发中变得越来越重要,这些材料具有在化妆品、药物输送和水净化等领域的潜在应用。然而,从传统来源(例如乌贼墨、头发和羊毛)中提取和纯化黑色素的效率不高,且不易规模化,因此限制了其技术应用。一些真菌物种,特别是木材腐朽担子菌,可被视为黑色素的有前途的来源。在本研究中,我们使用 l-酪氨酸作为前体筛选了不同真菌的黑色素生物合成能力,我们发现一种蜜环菌(Armillaria cepistipes)菌株(Empa 655)产生的黑色素产量最高(27.98 g/L)。对获得的真菌黑色素进行理化特性分析表明,其具有典型的真黑色素结构。我们提出的真菌黑色素生物合成方法高效、可扩展且可持续,有潜力为进一步的技术开发提供支持。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验