Exploration of the Production of Three Thiodiketopiperazines by an Endophytic Fungal Strain of Cophinforma mamane

Author:

Pacheco‐Tapia Romina12ORCID,Ortíz Sergio3,Jargeat Patricia4,Amasifuen Carlos56ORCID,Vansteelandt Marieke1,Haddad Mohamed1

Affiliation:

1. UMR 152 Pharma Dev Université de Toulouse, IRD UPS France

2. Laboratorios de Investigación y Desarrollo Facultad de Ciencias y Filosofía, Universidad Peruana Cayetano Heredia Lima Perú

3. Therapeutic Innovation Laboratory UMR CNRS 7200, Faculty of Pharmacy Université de Strasbourg Strasbourg France

4. Laboratoire Evolution et Diversité Biologique UMR 5174 Université de Toulouse, CNRS IRD France

5. Instituto Nacional de Innovación Agraria, Dirección de Recursos Genéticos y Biotecnología Avenida La Molina 1981 Lima 15024 Perú

6. Present address: Epigénomique Fonctionnelle et Physiologie Moléculaire Du Diabète et Maladies Associées UMR 1283/8199 Université de Lille Lille France

Abstract

AbstractEndophytic fungi possess a versatile metabolism which is related to their ability to live in diverse ecological niches. While culturing under laboratory conditions, their metabolism is mainly influenced by the culture media, time of incubation and other physicochemical factors. In this study, we focused on the production of 3 thiodiketopiperazines (TDKPs) botryosulfuranols A−C produced by an endophytic strain of Cophinforma mamane isolated from the leaves of Bixa orellana L collected in the Peruvian Amazon. We studied the time‐course production of botryosulfuranols A−C during 28 days and evaluated the variations in the production of secondary metabolites, including the TDKPs, produced by C. mamane in response to different culture media, light versus dark conditions and different incubation times. We observed a short time‐frame production of botryosulfuranol C while its production was significantly affected by the light conditions and nutrients of the culture media. Botryosulfuranols A and B showed a similar production pattern and a similar response to culturing conditions. Molecular networking allowed us to detect three compounds related to TDKPs that will be the focus of future experiments.

Publisher

Wiley

Subject

Molecular Biology,Molecular Medicine,General Chemistry,Biochemistry,General Medicine,Bioengineering

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