Filamentous fungi as a biotechnological tool for the biotransformation of betulin

IF 3.8 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Biocatalysis and agricultural biotechnology Pub Date : 2025-01-01 Epub Date: 2024-12-17 DOI:10.1016/j.bcab.2024.103476
Feyisayo O. Adepoju , Tarek M. Itani , Elena G. Kovaleva
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Abstract

Betulin, an inexpensive substrate extracted primarily from birch bark, exhibits wound-healing properties; yet its high hydrophobicity limits its bioavailability. Given that biotransformation can produce metabolites with modified chemical and biological properties, we sought to develop an efficient biocatalyst for the biotransformation of betulin. We isolated, characterized, and evaluated the ability of six fungi to biotransform betulin. The isolates were identified as Penicillium citreonigrum, Fusarium oxysporum, Fusarium redolens, Blastobotrys sp., Aspergillus niger, and Penicillium pimiteouiense and were cultured in biotransformation medium supplemented with betulin (10 mg/mL) for 4–7 days. Under the biotransformation conditions, Aspergillus niger exhibited the highest metabolic activity, producing biomass up to 1.29 g/L, acidifying the medium by increasing redox potential (404 mV), and lowering pH (3.29), while Blastobotrys sp. and Penicillium pimiteouiense had the lowest metabolic activity. All six isolates converted betulin to betulonic acid with Fusarium oxysporum exhibiting the highest bioconversion (0.74 g/L), followed by Fusarium redolens (0.72 g/L). Furthermore, at the adopted concentration, betulin biotransformation exerts no toxicity on fungal biomass. Therefore, the obtained results imply that the application of fungal cells as biological systems for betulin biotransformation can produce betulonic acid and for the first time, fungal-mediated biotransformation of betulin to betulonic acid was demonstrated.

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丝状真菌作为白桦脂素生物转化的生物技术工具
桦木素是一种主要从桦树皮中提取的廉价基质,具有伤口愈合的特性;然而它的高疏水性限制了它的生物利用度。鉴于生物转化可以产生具有改性化学和生物特性的代谢物,我们寻求开发一种有效的白桦脂生物转化的生物催化剂。我们分离、鉴定并评估了六种真菌转化白桦素的能力。分离菌株鉴定为柑橘青霉、尖孢镰刀菌、红镰刀菌、芽孢青霉、黑曲霉和青霉,在添加白松林(10 mg/mL)的生物转化培养基中培养4 ~ 7 d。在生物转化条件下,黑曲霉的代谢活性最高,生物量达1.29 g/L,通过增加氧化还原电位(404 mV)和降低pH(3.29)使培养基酸化,而Blastobotrys sp.和青霉菌的代谢活性最低。6株菌株均能将桦木素转化为桦木酸,其中尖孢镰刀菌的生物转化率最高(0.74 g/L),其次是红枝镰刀菌(0.72 g/L)。此外,在所采用的浓度下,桦木素的生物转化对真菌生物量没有毒性。因此,本文的研究结果表明,利用真菌细胞作为生物系统进行桦木素的生物转化可以产生桦木烯酸,并首次证实了真菌介导的桦木烯向桦木烯酸的生物转化。
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来源期刊
Biocatalysis and agricultural biotechnology
Biocatalysis and agricultural biotechnology Agricultural and Biological Sciences-Agronomy and Crop Science
CiteScore
7.70
自引率
2.50%
发文量
308
审稿时长
48 days
期刊介绍: Biocatalysis and Agricultural Biotechnology is the official journal of the International Society of Biocatalysis and Agricultural Biotechnology (ISBAB). The journal publishes high quality articles especially in the science and technology of biocatalysis, bioprocesses, agricultural biotechnology, biomedical biotechnology, and, if appropriate, from other related areas of biotechnology. The journal will publish peer-reviewed basic and applied research papers, authoritative reviews, and feature articles. The scope of the journal encompasses the research, industrial, and commercial aspects of biotechnology, including the areas of: biocatalysis; bioprocesses; food and agriculture; genetic engineering; molecular biology; healthcare and pharmaceuticals; biofuels; genomics; nanotechnology; environment and biodiversity; and bioremediation.
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