Suppr超能文献

利用萜烯耐受的子囊菌真菌生物合成α-松油醇和 R-(+)-柠檬烯衍生物,为柑橘价值链做出潜在贡献。

Bioproduction of α-terpineol and R-(+)-limonene derivatives by terpene-tolerant ascomycete fungus as a potential contribution to the citrus value chain.

机构信息

Laboratorio de Biotecnología Molecular, Facultad de Ciencias Exactas, Químicas y Naturales, Instituto de Biotecnología Misiones "Dra. María Ebe Reca", CONICET, Universidad Nacional de Misiones, Posadas, Misiones, Argentina.

Departamento de Ciencias Básicas, Área Química, Facultad de Ingeniería y Ciencias Agropecuarias, Universidad Nacional de San Luis - Instituto de Investigación en Tecnología Química (INTEQUI - CONICET), San Luis, Argentina.

出版信息

J Appl Microbiol. 2021 Jan;130(1):76-89. doi: 10.1111/jam.14777. Epub 2020 Jul 22.

Abstract

AIMS

The aims of this article were to select fungal species with high tolerance and high growth rate in mediums supplemented with limonene and citrus essential oils (CEOs), and to test the bioconversion capability of the chosen isolates for the bioproduction of aroma compounds.

METHODS AND RESULTS

Based on the use of predictive mycology, 21 of 29 isolates were selected after assaying R-(+)-limonene and CEO tolerance (10 g l ). With a dendrogram divisive coefficient of 0·937, the subcluster two with isolates Aspergillus niger LBM 055, Penicillium sp. LBM 150, Penicillium sp. LBM 151 and Penicillium sp. LBM 154 gathered the highest tolerance and mycelia growth speed. Ultrastructural analysis indicated that culture media containing limonene had no visible toxic activity that could promote morphological changes in the fungal cell wall. The biomass of A. niger LBM055 was distinctive in liquid media supplemented with R-(+)-limonene (0·57 ± 0·07 g) and it was selected to prove bioconversion capacity, under static and agitated conditions, and converted up to 98% of limonene, yielding a wide variety of products that were quantified by GC-FID. It was obtained at molecular weights less than limonene (64-100%), between limonene and α-terpineol (12-72%) and greater than α-terpineol (2-48%).

CONCLUSIONS

Aspergillus niger LBM 055, Penicillium sp. LBM 150, Penicillium sp. LBM 151 and Penicillium sp. LBM 154 showed to the highest tolerance and growth rate in mediums supplemented with R-(+)-limonene and orange and lemon essential oils. Particularly, A. niger LBM055, showed limonene bioconversion capability and produced different molecular weights compounds such us α-terpineol.

SIGNIFICANCE AND IMPACT OF THE STUDY

Different bioproducts can be obtained by changing operative condition with the same fungus, and this bioprocess aspect is a significant approach to be adopted on industrial scale leading to the creation of new natural flavours and fragrance compositions.

摘要

目的

本文旨在选择对柠檬烯和柑橘精油(CEO)培养基具有高耐受性和高生长速度的真菌物种,并测试所选分离物对香气化合物生物转化的能力。

方法和结果

基于预测真菌学的使用,在测试 R-(+)-柠檬烯和 CEO 耐受性(10 g l )后,从 29 个分离物中选择了 21 个。使用 dendrogram 分区系数 0.937,子群 2 中包含的分离物黑曲霉 LBM 055、青霉 LBM 150、青霉 LBM 151 和青霉 LBM 154 具有最高的耐受性和菌丝生长速度。超微结构分析表明,含有柠檬烯的培养基没有可见的毒性活性,可以促进真菌细胞壁的形态变化。在补充 R-(+)-柠檬烯的液体培养基中,黑曲霉 LBM055 的生物量(0.57±0.07 g)明显不同,选择它来证明在静态和搅拌条件下的生物转化能力,并将柠檬烯转化率高达 98%,产生各种通过 GC-FID 定量的产物。在分子量小于柠檬烯(64-100%)、在柠檬烯和α-萜品醇之间(12-72%)和大于α-萜品醇(2-48%)时获得。

结论

黑曲霉 LBM 055、青霉 LBM 150、青霉 LBM 151 和青霉 LBM 154 在补充 R-(+)-柠檬烯和橙油、柠檬油的培养基中表现出最高的耐受性和生长速度。特别是黑曲霉 LBM055 表现出柠檬烯的生物转化能力,并产生了不同分子量的化合物,如α-萜品醇。

研究的意义和影响

通过改变相同真菌的操作条件,可以获得不同的生物制品,这是在工业规模上采用的一个重要方法,从而创造新的天然香料和香精成分。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验