Biotransformation of Phytosterols into Androstenedione—A Technological Prospecting Study

Author:

Nunes Victor1,Vanzellotti Nathália1,Fraga Jully1ORCID,Pessoa Fernando12,Ferreira Tatiana1ORCID,Amaral Priscilla1ORCID

Affiliation:

1. By&Bio—By-Products to Bioproducts Lab, Escola de Química, Universidade Federal do Rio de Janeiro, Rio de Janeiro 21941-909, RJ, Brazil

2. Centro Universitário SENAI CIMATEC, Salvador 41650-010, BA, Brazil

Abstract

Androstenedione (AD) is a key intermediate in the body’s steroid metabolism, used as a precursor for several steroid substances, such as testosterone, estradiol, ethinyl estradiol, testolactone, progesterone, cortisone, cortisol, prednisone, and prednisolone. The world market for AD and ADD (androstadienedione) exceeds 1000 tons per year, which stimulates the pharmaceutical industry’s search for newer and cheaper raw materials to produce steroidal compounds. In light of this interest, we aimed to investigate the progress of AD biosynthesis from phytosterols by prospecting scientific articles (Scopus, Web of Science, and Google Scholar databases) and patents (USPTO database). A wide variety of articles and patents involving AD and phytosterol were found in the last few decades, resulting in 108 relevant articles (from January 2000 to December 2021) and 23 patents of interest (from January 1976 to December 2021). The separation of these documents into macro, meso, and micro categories revealed that most studies (articles) are performed in China (54.8%) and in universities (76%), while patents are mostly granted to United States companies. It also highlights the fact that AD production studies are focused on “process improvement” techniques and on possible modifications of the “microorganism” involved in biosynthesis (64 and 62 documents, respectively). The most-reported “process improvement” technique is “chemical addition” (40%), which means that the addition of solvents, surfactants, cofactors, inducers, ionic liquids, etc., can significantly increase AD production. Microbial genetic modifications stand out in the “microorganism” category because this strategy improves AD yield considerably. These documents also revealed the main aspects of AD and ADD biosynthesis: Mycolicibacterium sp. (basonym: Mycobacterium sp.) (40%) and Mycolicibacterium neoaurum (known previously as Mycobacterium neoaurum) (32%) are the most recurrent species studied. Microbial incubation temperatures can vary from 29 °C to 37 °C; incubation can last from 72 h to 14 days; the mixture is agitated at 140 to 220 rpm; vegetable oils, mainly soybean, can be used as the source of a mixture of phytosterols. In general, the results obtained in the present technological prospecting study are fundamental to mapping the possibilities of AD biosynthesis process optimization, as well as to identifying emerging technologies and methodologies in this scenario.

Funder

Fundação Carlos Chagas Filho de Amparo à Pesquisa do Estado do Rio de Janeiro

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior

Conselho Nacional de Desenvolvimento Científico e Tecnológico

SENAI CIMATEC

Publisher

MDPI AG

Subject

Chemistry (miscellaneous),Analytical Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Molecular Medicine,Drug Discovery,Pharmaceutical Science

Reference141 articles.

1. Rokade, R., Ravindran, S., Singh, P., and Suthar, J.K. (2018). Secondary Metabolites-Sources and Applications, IntechOpen.

2. Microbial Catabolism of Sterols: Focus on the Enzymes That Transform the Sterol 3ß-Hydroxy-5-En into 3-Keto-4-En;Kreit;FEMS Microbiol. Lett.,2017

3. Wang, F.-Q., Yao, K., and Wei, D.-Z. (2011). Soybean and Health, IntechOpen.

4. Production of Androstenones from Phytosterol by Mutants of Mycobacterium sp.;Huang;Enzym. Microb. Technol.,2006

5. Androstenedione Production by Biotransformation of Phytosterols;Malaviya;Bioresour. Technol.,2008

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