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Phytosterols can be used by microorganisms as carbon and energy sources and completely degraded into CO and H O. The catabolic pathway of phytosterols was well characterized in many microorganisms. Blocking the steroid core ring degradation by deletions of fadE30 and fadD3 genes, two important steroid intermediates, 3aα-H-4α-(3'-Propionic acid)-5α-hydroxy-7aβ-methylhexahydro-1-indanone-δ-lactone (sitolactone, or HIL) and 3aα-H-4α-(3'-propionic acid)-7aβ-methylhexahydro-1,5-indanedione (HIP) can be accumulated. They are currently used to synthesize nor-steroid drugs with an α-methyl group or without the methyl group at the C -position, such as estrone and norethindrone. In this study, a key gene involved in the bioconversion of HIP to HIL was identified in Mycolicibacterium neoaurum. Through heterologous expression, gene hipR was found to be involved in the reduction of the C keto group of HIP to a hydroxy group, leading to spontaneously lactonization into HIL in vitro. Through gene complementation and knockout, HipR functions were verified and two HIP degradation pathways in vivo were elucidated. The finding of this research facilitated the understanding of the metabolic pathway of sterols, and was directly applied to engineering robust production strains by overexpression or knockout of related genes.
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http://dx.doi.org/10.1002/cbdv.202200800 | DOI Listing |
Appl Microbiol Biotechnol
July 2025
Institute of Materia Medica, School of Pharmaceutical Sciences, Xinjiang University, Urumqi, 830017, Xinjiang, China.
Mycobacterial phytosterol conversion naturally occurs within a vegetable oil environment, a process that has been widely adopted in water‒oil two-phase fermentation to produce active pharmaceutical intermediates of steroids. The use of hydroxypropyl-β-CD (HP-β-CD) as a potential replacement for vegetable oils has been explored. However, both approaches encounter challenges, particularly the need for a high concentration of either vegetable oil or HP-β-CD in the fermentation medium, which significantly affects the efficiency of mycobacterial phytosterol conversion as well as the recovery of the resulting products.
View Article and Find Full Text PDFChemistryOpen
September 2025
National Engineering Research Center of Industrial Enzymes and Tianjin Engineering Research Center of Biocatalytic Technology, National Center of Technology Innovation for Synthetic Biology, and Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin, 300308, China.
22-Hydroxy-23,24-bisnorchol-4-ene-3-one (4-HBC) and 3-oxo-4,17-pregnadiene-20-carboxylic acid methyl ester (PDCE) are useful precursors for the synthesis of steroidal active pharmaceutical ingredients. In this study, we identify the sterol metabolism-related genes, which encode the aldolases (Ltp2 and Thl) and carboxylic acid reductases (CAR) in Mycolicibacterium neoaurum NRRL B-3805 (B3805), by analysis of the metabolites from phytosterols biotransformation. Based on these results, a genetically modified strain is constructed by disrupting the kstD, ltp2, and hsd4A genes and overexpressing the aldolase gene (thl) in the strain B3805.
View Article and Find Full Text PDFAppl Biochem Biotechnol
July 2025
National Center of Technology Innovation for Synthetic Biology, National Engineering Research Center of Industrial Enzymes and Tianjin Engineering Research Center of Biocatalytic Technology, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin, 300308, China. zhu_dm@ti
Microbial transformation has enabled phytosterols as readily available and bio-renewable starting materials for the industrial synthesis of steroidal active pharmaceutical ingredients (APIs). Editing the phytosterol side chain would create various steroidal compounds with a specific C17-side chain, which will greatly facilitate the synthesis of steroidal APIs. Precise cleavage of the phytosterol side chain requires identification of the key enzymes and the reaction pathways of phytosterol side chain metabolism.
View Article and Find Full Text PDFJ Biotechnol
March 2025
Key Laboratory of Industrial Fermentation Microbiology, Ministry of Education, Tianjin Key Laboratory of Industrial Microbiology, College of Biotechnology, Tianjin University of Science & Technology, Tianjin 300457, China. Electronic address:
11α-Hydroxyandrost-4-ene-3,17-dione (11α-OH AD) is an essential steroid hormone drug intermediate that exhibits low biotransformation efficiency. In this study, a mixed-strain fermentation strategy was established for the efficient production of 11α-OH AD from phytosterols (PS). Initially, strains were screened for efficient transformation of AD to produce 11α-OH AD.
View Article and Find Full Text PDFJ Fungi (Basel)
November 2024
Federal Research Center, Pushchino Center for Biological Research of Russian Academy of Sciences, G.K. Skryabin Institute of Biochemistry and Physiology of Microorganisms, Prospekt Nauki, 5, 142290 Pushchino, Moscow Region, Russia.
Testosterone (TS) and its 1(2)-dehydrogenated derivative boldenone (BD) are widely used in medicine, veterinary science and as precursors in organic synthesis of many therapeutic steroids. Green production of these compounds is possible from androstenedione (AD) enzymatically, or from phytosterol (PS) using fermentation stages. In this study, the ascomycete sp.
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