Metabolomic Analysis of The Chemical Diversity of South Africa Leaf Litter Fungal Species Using an Epigenetic Culture-Based Approach
Microbial natural products are an invaluable resource for the biotechnological industry. Genome mining studies have highlighted the huge biosynthetic potential of fungi, which is underexploited by standard fermentation conditions. Epigenetic effectors and/or cultivation-based approaches have success...
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doaj-38cee50508334549adfde7beac49db432021-07-23T13:56:37ZengMDPI AGMolecules1420-30492021-07-01264262426210.3390/molecules26144262Metabolomic Analysis of The Chemical Diversity of South Africa Leaf Litter Fungal Species Using an Epigenetic Culture-Based ApproachRachel Serrano0Víctor González-Menéndez1Germán Martínez2Clara Toro3Jesús Martín4Olga Genilloud5 José R. Tormo6Fundación MEDINA, Av. Conocimiento 34, Health Sciences Technology Park, 18016 Granada, SpainFundación MEDINA, Av. Conocimiento 34, Health Sciences Technology Park, 18016 Granada, SpainFundación MEDINA, Av. Conocimiento 34, Health Sciences Technology Park, 18016 Granada, SpainFundación MEDINA, Av. Conocimiento 34, Health Sciences Technology Park, 18016 Granada, SpainFundación MEDINA, Av. Conocimiento 34, Health Sciences Technology Park, 18016 Granada, SpainFundación MEDINA, Av. Conocimiento 34, Health Sciences Technology Park, 18016 Granada, SpainFundación MEDINA, Av. Conocimiento 34, Health Sciences Technology Park, 18016 Granada, SpainMicrobial natural products are an invaluable resource for the biotechnological industry. Genome mining studies have highlighted the huge biosynthetic potential of fungi, which is underexploited by standard fermentation conditions. Epigenetic effectors and/or cultivation-based approaches have successfully been applied to activate cryptic biosynthetic pathways in order to produce the chemical diversity suggested in available fungal genomes. The addition of Suberoylanilide Hydroxamic Acid to fermentation processes was evaluated to assess its effect on the metabolomic diversity of a taxonomically diverse fungal population. Here, metabolomic methodologies were implemented to identify changes in secondary metabolite profiles to determine the best fermentation conditions. The results confirmed previously described effects of the epigenetic modifier on the metabolism of a population of 232 wide diverse South Africa fungal strains cultured in different fermentation media where the induction of differential metabolites was observed. Furthermore, one solid-state fermentation (BRFT medium), two classic successful liquid fermentation media (LSFM and YES) and two new liquid media formulations (MCKX and SMK-II) were compared to identify the most productive conditions for the different populations of taxonomic subgroups.https://www.mdpi.com/1420-3049/26/14/4262fungal fermentationsepigenetic modifiermetabolomicchemical diversity |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Rachel Serrano Víctor González-Menéndez Germán Martínez Clara Toro Jesús Martín Olga Genilloud José R. Tormo |
spellingShingle |
Rachel Serrano Víctor González-Menéndez Germán Martínez Clara Toro Jesús Martín Olga Genilloud José R. Tormo Metabolomic Analysis of The Chemical Diversity of South Africa Leaf Litter Fungal Species Using an Epigenetic Culture-Based Approach Molecules fungal fermentations epigenetic modifier metabolomic chemical diversity |
author_facet |
Rachel Serrano Víctor González-Menéndez Germán Martínez Clara Toro Jesús Martín Olga Genilloud José R. Tormo |
author_sort |
Rachel Serrano |
title |
Metabolomic Analysis of The Chemical Diversity of South Africa Leaf Litter Fungal Species Using an Epigenetic Culture-Based Approach |
title_short |
Metabolomic Analysis of The Chemical Diversity of South Africa Leaf Litter Fungal Species Using an Epigenetic Culture-Based Approach |
title_full |
Metabolomic Analysis of The Chemical Diversity of South Africa Leaf Litter Fungal Species Using an Epigenetic Culture-Based Approach |
title_fullStr |
Metabolomic Analysis of The Chemical Diversity of South Africa Leaf Litter Fungal Species Using an Epigenetic Culture-Based Approach |
title_full_unstemmed |
Metabolomic Analysis of The Chemical Diversity of South Africa Leaf Litter Fungal Species Using an Epigenetic Culture-Based Approach |
title_sort |
metabolomic analysis of the chemical diversity of south africa leaf litter fungal species using an epigenetic culture-based approach |
publisher |
MDPI AG |
series |
Molecules |
issn |
1420-3049 |
publishDate |
2021-07-01 |
description |
Microbial natural products are an invaluable resource for the biotechnological industry. Genome mining studies have highlighted the huge biosynthetic potential of fungi, which is underexploited by standard fermentation conditions. Epigenetic effectors and/or cultivation-based approaches have successfully been applied to activate cryptic biosynthetic pathways in order to produce the chemical diversity suggested in available fungal genomes. The addition of Suberoylanilide Hydroxamic Acid to fermentation processes was evaluated to assess its effect on the metabolomic diversity of a taxonomically diverse fungal population. Here, metabolomic methodologies were implemented to identify changes in secondary metabolite profiles to determine the best fermentation conditions. The results confirmed previously described effects of the epigenetic modifier on the metabolism of a population of 232 wide diverse South Africa fungal strains cultured in different fermentation media where the induction of differential metabolites was observed. Furthermore, one solid-state fermentation (BRFT medium), two classic successful liquid fermentation media (LSFM and YES) and two new liquid media formulations (MCKX and SMK-II) were compared to identify the most productive conditions for the different populations of taxonomic subgroups. |
topic |
fungal fermentations epigenetic modifier metabolomic chemical diversity |
url |
https://www.mdpi.com/1420-3049/26/14/4262 |
work_keys_str_mv |
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