aspergillus nidulans
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2022 ◽  
Vol 8 (1) ◽  
pp. 79
Author(s):  
Barnabás Cs. Gila ◽  
Károly Antal ◽  
Zsuzsanna Birkó ◽  
Judit Sz. Keserű ◽  
István Pócsi ◽  
...  

Understanding the coordinated regulation of the hundreds of carbohydrate-active enzyme (CAZyme) genes occurring in the genomes of fungi has great practical importance. We recorded genome-wide transcriptional changes of Aspergillus nidulans cultivated on glucose, lactose, or arabinogalactan, as well as under carbon-starved conditions. We determined both carbon-stress-specific changes (weak or no carbon source vs. glucose) and carbon-source-specific changes (one type of culture vs. all other cultures). Many CAZyme genes showed carbon-stress-specific and/or carbon-source-specific upregulation on arabinogalactan (138 and 62 genes, respectively). Besides galactosidase and arabinan-degrading enzyme genes, enrichment of cellulolytic, pectinolytic, mannan, and xylan-degrading enzyme genes was observed. Fewer upregulated genes, 81 and 107 carbon stress specific, and 6 and 16 carbon source specific, were found on lactose and in carbon-starved cultures, respectively. They were enriched only in galactosidase and xylosidase genes on lactose and rhamnogalacturonanase genes in both cultures. Some CAZyme genes (29 genes) showed carbon-source-specific upregulation on glucose, and they were enriched in β-1,4-glucanase genes. The behavioral ecological background of these characteristics was evaluated to comprehensively organize our knowledge on CAZyme production, which can lead to developing new strategies to produce enzymes for plant cell wall saccharification.


2022 ◽  
Vol 21 (1) ◽  
Author(s):  
Tobias Bruun Pedersen ◽  
Mikkel Rank Nielsen ◽  
Sebastian Birkedal Kristensen ◽  
Eva Mie Lang Spedtsberg ◽  
Trine Sørensen ◽  
...  

AbstractThe biosynthetic pathways for the fungal polyketides bikaverin and bostrycoidin, from Fusarium verticillioides and Fusarium solani respectively, were reconstructed and heterologously expressed in S. cerevisiae alongside seven different phosphopantetheinyl transferases (PPTases) from a variety of origins spanning bacterial, yeast and fungal origins. In order to gauge the efficiency of the interaction between the ACP-domains of the polyketide synthases (PKS) and PPTases, each were co-expressed individually and the resulting production of target polyketides were determined after 48 h of growth. In co-expression with both biosynthetic pathways, the PPTase from Fusarium verticillioides (FvPPT1) proved most efficient at producing both bikaverin and bostrycoidin, at 1.4 mg/L and 5.9 mg/L respectively. Furthermore, the remaining PPTases showed the ability to interact with both PKS’s, except for a single PKS-PPTase combination. The results indicate that it is possible to boost the production of a target polyketide, simply by utilizing a more optimal PPTase partner, instead of the commonly used PPTases; NpgA, Gsp and Sfp, from Aspergillus nidulans, Brevibacillus brevis and Bacillus subtilis respectively.


2022 ◽  
Vol 2 ◽  
Author(s):  
Jennifer Gerke ◽  
Anna M. Köhler ◽  
Jan-Peer Wennrich ◽  
Verena Große ◽  
Lulu Shao ◽  
...  

The soil microbiome comprises numerous filamentous fungi and bacteria that mutually react and challenge each other by the production of bioactive secondary metabolites. Herein, we show in liquid co-cultures that the presence of filamentous Streptomycetes producing antifungal glycopeptide antibiotics induces the production of the antibacterial and iron-chelating tropolones anhydrosepedonin (1) and antibiotic C (2) in the mold Aspergillus nidulans. Additionally, the biosynthesis of the related polyketide tripyrnidone (5) was induced, whose novel tricyclic scaffold we elucidated by NMR and HRESIMS data. The corresponding biosynthetic polyketide synthase-encoding gene cluster responsible for the production of these compounds was identified. The tropolones as well as tripyrnidone (5) are produced by genes that belong to the broad reservoir of the fungal genome for the synthesis of different secondary metabolites, which are usually silenced under standard laboratory conditions. These molecules might be part of the bacterium-fungus competition in the complex soil environment, with the bacterial glycopeptide antibiotic as specific environmental trigger for fungal induction of this cluster.


2021 ◽  
Vol 16 ◽  
pp. 1-17
Author(s):  
Daniela Granella Gomes Guidoti ◽  
David Teixeira Guidoti ◽  
Adriano Lopes Romero ◽  
Carmem Lúcia de Mello Sartori Cardoso da Rocha

As plantas são amplamente utilizadas na medicina popular e apresentam os chamados constituintes bioativos, produzidos sob a forma de metabólitos secundários, capazes de desencadear efeitos farmacológico ou toxicológico no homem e nos animais. Annona squamosa, conhecida popularmente como fruta-do-conde, é empregada pela população na cura de doenças; possui amplo espectro nutricional e representa uma excelente fonte de diversas classes de constituintes bioativos, como alcaloides, terpenos, taninos, compostos fenólicos e acetogeninas. Apesar das atividades biológicas já descritas para essa planta, é necessária a investigação de extratos e/ou isolados a fim de verificar a genotoxicidade de extratos de frações obtidas a partir de sementes e pericarpo de A. squamosa na germinação de conídios de Aspergillus nidulans, utilizando como parâmetro a estimativa de mortos e malformados. Os resultados indicaram que a fração acetato de etila do pericarpo apresentou, em menores concentrações (2,5 e 25 μg.mL-1) efeitos pró-reparo, e antiapoptótico na maior concentração (250 μg.mL-1). A fração metanólica do extrato do pericarpo demonstrou efeito apoptótico, também em menores concentrações e efeito genotóxico na maior concentração. Quanto ao extrato das sementes, a fração acetato de etila também indicou ativação de apoptose em todas as concentrações, enquanto a fração metanólica apresentou efeito pró-reparo. A diversidade de bioatividades de frações dessa planta reflete a presença de inúmeras classes de metabólitos secundários que poderão atuar beneficamente na saúde humana. Portanto, o presente trabalho contribui na escolha de frações para futuro isolamento e identificação química de metabólitos com potencial medicinal.


2021 ◽  
Vol 7 (12) ◽  
pp. 1040
Author(s):  
Sofia Dimou ◽  
Xenia Georgiou ◽  
Eleana Sarantidi ◽  
George Diallinas ◽  
Athanasios K. Anagnostopoulos

Prof. Peñalva and co-workers provided evidence that AN11127 is related by sequence and function to Sec12 [...]


2021 ◽  
Vol 4 (1) ◽  
Author(s):  
Ang Li ◽  
Chirag Parsania ◽  
Kaeling Tan ◽  
Richard B. Todd ◽  
Koon Ho Wong

AbstractNutrient acquisition is essential for all organisms. Fungi regulate their metabolism according to environmental nutrient availability through elaborate transcription regulatory programs. In filamentous fungi, a highly conserved GATA transcription factor AreA and its co-repressor NmrA govern expression of genes involved in extracellular breakdown, uptake, and metabolism of nitrogen nutrients. Here, we show that the Aspergillus nidulans PnmB protease is a moonlighting protein with extracellular and intracellular functions for nitrogen acquisition and metabolism. PnmB serves not only as a secreted protease to degrade extracellular nutrients, but also as an intracellular protease to control the turnover of the co-repressor NmrA, accelerating AreA transcriptional activation upon nitrogen starvation. PnmB expression is controlled by AreA, which activates a positive feedback regulatory loop. Hence, we uncover a regulatory mechanism in the well-established controls determining the response to nitrogen starvation, revealing functional evolution of a protease gene for transcriptional regulation and extracellular nutrient breakdown.


2021 ◽  
Vol 7 (12) ◽  
pp. 1018
Author(s):  
Ofer Grunwald ◽  
Ety Harish ◽  
Nir Osherov

Fungi are embedded in human culture, tradition, and art, and have featured as inspirational and visual motifs. Psychedelic and medicinal mushrooms have been sculpted, painted, and ingested by our ancestors since prehistory. In modern times, the growing divide between the arts and sciences has delegated fungal art to a niche activity, with the bulk of the focus being on mycelium as a biomaterial. A collaboration between a multidisciplinary artist and a research laboratory, specializing in the molecular study of Aspergillus molds, has allowed us to develop new forms of mycelial art. We describe in detail the development of fungal art techniques using nutrient-rich agar containing Aspergillus nidulans conidia spotted on glass acrylic surfaces or impregnated onto etched acrylic blocks. This approach generates visually and temporally dynamic artwork that is user-friendly, safe, relatively resistant to contamination and easily scalable. Moreover, it offers countless avenues of artistic development based on the diversity of colors, textures and shapes afforded by different fungal species.


2021 ◽  
Author(s):  
Ken Miyazawa ◽  
Takaaki Yamashita ◽  
Ayumu Takeuchi ◽  
Yuka Kamachi ◽  
Akira Yoshimi ◽  
...  

α-1,3-Glucan is one of the main polysaccharides in the cell wall of Aspergillus nidulans. We previously revealed that it plays a role in hyphal aggregation in liquid culture, and that its molecular mass (MM) in an agsA-overexpressing (agsAOE) strain was larger than that in an agsB-overexpressing (agsBOE) strain. The mechanism that regulates the MM of α-1,3-glucan is poorly understood. Although the gene amyD, which encodes glycosyl-phosphatidylinositol (GPI)-anchored α-amylase (AmyD), is involved in the biosynthesis of α-1,3-glucan in A. nidulans, how it regulates this biosynthesis remains unclear. Here we constructed strains with disrupted amyD (ΔamyD) or overexpressed amyD (amyDOE) in the genetic background of the ABPU1 (wild-type), agsAOE, or agsBOE strain, and characterized the chemical structure of α-1,3-glucans in the cell wall of each strain, focusing on their MM. The MM of α-1,3-glucan from the agsBOE amyDOE strain was smaller than that in the parental agsBOE strain. In addition, the MM of α-1,3-glucan from the agsAOE ΔamyD strain was greater than that in the agsAOE strain. These results suggest that AmyD is involved in decreasing the MM of α-1,3-glucan. We also found that the C-terminal GPI-anchoring region is important for these functions.


2021 ◽  
Vol 7 (11) ◽  
pp. 961
Author(s):  
Virginia Casado-del Castillo ◽  
Andrew P. MacCabe ◽  
Margarita Orejas

Protoplast transformation for the introduction of recombinant DNA into Aspergillus nidulans is technically demanding and dependant on the availability and batch variability of commercial enzyme preparations. Given the success of Agrobacterium tumefaciens-mediated transformation (ATMT) in diverse pathogenic fungi, we have adapted this method to facilitate transformation of A. nidulans. Using suitably engineered binary vectors, gene-targeted ATMT of A. nidulans non-homologous end-joining (NHEJ) mutant conidia has been carried out for the first time by complementation of a nutritional requirement (uridine/uracil auxotrophy). Site-specific integration in the ΔnkuA host genome occurred at high efficiency. Unlike other transformation techniques, however, cross-feeding of certain nutritional requirements from the bacterium to the fungus was found to occur, thus limiting the choice of auxotrophies available for ATMT. In complementation tests and also for comparative purposes, integration of recombinant cassettes at a specific locus could provide a means to reduce the influence of position effects (chromatin structure) on transgene expression. In this regard, targeted disruption of the wA locus permitted visual identification of transformants carrying site-specific integration events by conidial colour (white), even when auxotrophy selection was compromised due to cross-feeding. The protocol described offers an attractive alternative to the protoplast procedure for obtaining locus-targeted A. nidulans transformants.


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