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1.
Microb Cell Fact ; 23(1): 189, 2024 Jul 02.
Article in English | MEDLINE | ID: mdl-38956629

ABSTRACT

Developing special textiles (for patients in hospitals for example) properties, special antimicrobial and anticancer, was the main objective of the current work. The developed textiles were produced after dyeing by the novel formula of natural (non-environmental toxic) pigments (melanin amended by microbial-AgNPs). Streptomyces torulosus isolate OSh10 with accession number KX753680.1 was selected as a superior producer for brown natural pigment. By optimization processes, some different pigment colors were observed after growing the tested strain on the 3 media. Dextrose and malt extract enhanced the bacteria to produce a reddish-black color. However, glycerol as the main carbon source and NaNO3 and asparagine as a nitrogen source were noted as the best for the production of brown pigment. In another case, starch as a polysaccharide was the best carbon for the production of deep green pigment. Peptone and NaNO3 are the best nitrogen sources for the production of deep green pigment. Microbial-AgNPs were produced by Fusarium oxysporum with a size of 7-21 nm, and the shape was spherical. These nanoparticles were used to produce pigments-nanocomposite to improve their promising properties. The antimicrobial of nanoparticles and textiles dyeing by nanocomposites was recorded against multidrug-resistant pathogens. The new nanocomposite improved pigments' dyeing action and textile properties. The produced textiles had anticancer activity against skin cancer cells with non-cytotoxicity detectable action against normal skin cells. The obtained results indicate to application of these textiles in hospital patients' clothes.


Subject(s)
Antineoplastic Agents , Coloring Agents , Silver , Textiles , Textiles/microbiology , Coloring Agents/chemistry , Humans , Antineoplastic Agents/pharmacology , Antineoplastic Agents/chemistry , Silver/pharmacology , Silver/chemistry , Fusarium/drug effects , Streptomyces/metabolism , Anti-Infective Agents/pharmacology , Anti-Infective Agents/chemistry , Metal Nanoparticles/chemistry , Pigments, Biological/pharmacology , Pigments, Biological/biosynthesis , Microbial Sensitivity Tests , Cell Line, Tumor
2.
Sci Rep ; 14(1): 17750, 2024 07 31.
Article in English | MEDLINE | ID: mdl-39085460

ABSTRACT

Serratia marcescens is an opportunistic human pathogen that produces a vibrant red pigment called prodigiosin. Prodigiosin has implications in virulence of S. marcescens and promising clinical applications. We discovered that addition of the virulent flagellotropic bacteriophage χ (Chi) to a culture of S. marcescens stimulates a greater than fivefold overproduction of prodigiosin. Active phage infection is required for the effect, as a χ-resistant strain lacking flagella does not respond to phage presence. Via a reporter fusion assay, we have determined that the addition of a χ-induced S. marcescens cell lysate to an uninfected culture causes a threefold increase in transcription of the pig operon, containing genes essential for pigment biosynthesis. Replacement of the pig promoter with a constitutive promoter abolished the pigmentation increase, indicating that regulatory elements present in the pig promoter likely mediate the phenomenon. We hypothesize that S. marcescens detects the threat of phage-mediated cell death and reacts by producing prodigiosin as a stress response. Our findings are of clinical significance for two main reasons: (i) elucidating complex phage-host interactions is crucial for development of therapeutic phage treatments, and (ii) overproduction of prodigiosin in response to phage could be exploited for its biosynthesis and use as a pharmaceutical.


Subject(s)
Bacteriophages , Prodigiosin , Promoter Regions, Genetic , Serratia marcescens , Serratia marcescens/metabolism , Serratia marcescens/genetics , Prodigiosin/metabolism , Prodigiosin/biosynthesis , Bacteriophages/genetics , Bacteriophages/metabolism , Gene Expression Regulation, Bacterial , Operon , Pigments, Biological/biosynthesis , Pigments, Biological/metabolism
3.
Adv Appl Microbiol ; 128: 1-40, 2024.
Article in English | MEDLINE | ID: mdl-39059841

ABSTRACT

In Chile, as in the rest of the world, only a small fraction of the fungal diversity inhabiting the wide variety of its ecosystems is known. This diversity must hide an inestimable richness of species with interesting biotechnological potential, including fungal pigment producers. Recently, interest in filamentous fungi has increased significantly due to their importance as alternative sources of pigments and colorants that are environmentally and human health friendly. As a result, fungal pigments are gaining importance in various industrial applications, such as food, textiles, pharmaceuticals, cosmetics, etc. The increasing consumer demand for "green label" natural colorants requires the exploration of different ecosystems in search of new fungal species that are efficient producers of different pigment with a wide range of colors and ideally without the co-production of mycotoxins. However, advances are also needed in pigment production processes through fermentation, scale-up from laboratory to industrial scale, and final product formulation and marketing. In this respect, the journey is still full of challenges for scientists and entrepreneurs. This chapter describes studies on pigment-producing fungi collected in the forests of central-southern Chile. Aspects such as the exploration of potential candidates as sources of extracellular pigments, the optimization of pigment production by submerged fermentation, methods of pigment extraction and purification for subsequent chemical characterization, and formulation (by microencapsulation) for potential cosmetic applications are highlighted. This potential use is due to the outstanding bioactivity of most fungal pigments, making them interesting functional ingredients for many applications. Finally, the use of fungal pigments for textile and spalting applications is discussed.


Subject(s)
Forests , Fungi , Pigments, Biological , Pigments, Biological/biosynthesis , Pigments, Biological/chemistry , Chile , Fungi/metabolism , Fungi/genetics , Fungi/classification , Fermentation
4.
World J Microbiol Biotechnol ; 40(9): 282, 2024 Jul 27.
Article in English | MEDLINE | ID: mdl-39060812

ABSTRACT

Nucleic acid demethylases of α-ketoglutarate-dependent dioxygenase (AlkB) family can reversibly erase methyl adducts from nucleobases, thus dynamically regulating the methylation status of DNA/RNA and playing critical roles in multiple cellular processes. But little is known about AlkB demethylases in filamentous fungi so far. The present study reports that Monascus purpureus genomes contain a total of five MpAlkB genes. The MpAlkB1 gene was disrupted and complemented through homologous recombination strategy to analyze its biological functions in M. purpureus. MpAlkB1 knockout significantly accelerated the growth of strain, increased biomass, promoted sporulation and cleistothecia development, reduced the content of Monascus pigments (Mps), and strongly inhibited citrinin biosynthesis. The downregulated expression of the global regulator gene LaeA, and genes of Mps biosynthesis gene cluster (BGC) or citrinin BGC in MpAlkB1 disruption strain supported the pleiotropic trait changes caused by MpAlkB1 deletion. These results indicate that MpAlkB1-mediated demethylation of nucleic acid plays important roles in regulating the growth and development, and secondary metabolism in Monascus spp.


Subject(s)
Citrinin , Fungal Proteins , Gene Expression Regulation, Fungal , Monascus , Secondary Metabolism , Monascus/genetics , Monascus/metabolism , Monascus/growth & development , Monascus/enzymology , Secondary Metabolism/genetics , Citrinin/biosynthesis , Citrinin/metabolism , Fungal Proteins/genetics , Fungal Proteins/metabolism , Pigments, Biological/biosynthesis , Pigments, Biological/metabolism , Spores, Fungal/growth & development , Spores, Fungal/genetics , Gene Knockout Techniques , Multigene Family , AlkB Enzymes/genetics , AlkB Enzymes/metabolism , DNA Methylation
5.
Curr Opin Chem Biol ; 81: 102477, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38878611

ABSTRACT

Food colorants are frequently added to processed foods since color is an important tool in the marketing of food products, influencing consumer perceptions, preferences, and purchasing behavior. While synthetic dyes currently dominate the food colorant market, consumer concern regarding their safety and sustainability is driving a demand for their replacement with naturally derived alternatives. However, natural colorants are costly compared to their synthetic counterparts as the pigment content in the native sources is usually very low and extraction can be challenging. Recent advances in the engineering of microbial metabolism have sparked interest in the development of cell factories capable of producing natural colorants from renewable resources. This review summarizes major developments within metabolic engineering for the production of nature-identical food colorants by fermentation. Additionally, it highlights common applications, formulations, and physicochemical characteristics of prevalent pigment classes. Lastly, it outlines a workflow for accelerating the optimization of cell factories for the production or derivatization of nature-identical food colorants.


Subject(s)
Food Coloring Agents , Metabolic Engineering , Food Coloring Agents/metabolism , Food Coloring Agents/chemistry , Metabolic Engineering/methods , Fermentation , Pigments, Biological/biosynthesis , Pigments, Biological/chemistry , Bacteria/metabolism
6.
Braz J Microbiol ; 55(2): 1251-1263, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38492163

ABSTRACT

Natural pigments have received special attention from the market and industry as they could overcome the harm to health and the environmental issues caused by synthetic pigments. These pigments are commonly extracted from a wide range of organisms, and when added to products they can alter/add new physical-chemical or biological properties to them. Fungi from extreme environments showed to be a promising source in the search for biomolecules with antimicrobial and antiparasitic potential. This study aimed to isolate fungi from Antarctic soils and screen them for pigment production with antimicrobial and antiparasitic potential, together with other previously isolated strains A total of 52 fungi were isolated from soils in front of the Collins Glacier (Southeast border). Also, 106 filamentous fungi previously isolated from the Collins Glacier (West border) were screened for extracellular pigment production. Five strains were able to produce extracellular pigments and were identified by ITS sequencing as Talaromyces cnidii, Pseudogymnoascus shaanxiensis and Pseudogymnoascus sp. All Pseudogymnoascus spp. (SC04.P3, SC3.P3, SC122.P3 and ACF093) extracts were able to inhibit S. aureus ATCC6538 and two (SC12.P3, SC32.P3) presented activity against Leishmania (L.) infantum, Leishmania amazonensis and Trypanossoma cruzii. Extracts compounds characterization by UPLC-ESI-QToF analysis confirmed the presence of molecules with biological activity such as: Asterric acid, Violaceol, Mollicellin, Psegynamide A, Diorcinol, Thailandolide A. In conclusion, this work showed the potential of Antartic fungal strains from Collins Glacier for bioactive molecules production with activity against Gram positive bacteria and parasitic protozoas.


Subject(s)
Antiparasitic Agents , Pigments, Biological , Antarctic Regions , Pigments, Biological/pharmacology , Pigments, Biological/biosynthesis , Antiparasitic Agents/pharmacology , Anti-Infective Agents/pharmacology , Anti-Infective Agents/metabolism , Fungi/drug effects , Fungi/metabolism , Fungi/classification , Soil Microbiology , Bacteria/drug effects , Bacteria/classification , Bacteria/metabolism , Bacteria/isolation & purification , Bacteria/genetics , Microbial Sensitivity Tests , Animals , Staphylococcus aureus/drug effects
8.
Proc Natl Acad Sci U S A ; 120(33): e2306322120, 2023 08 15.
Article in English | MEDLINE | ID: mdl-37549256

ABSTRACT

Plants produce various pigments that not only appear as attractive colors but also provide valuable resources in applications in daily life and scientific research. Biosynthesis pathways for these natural plant pigments are well studied, and most have multiple enzymes that vary among plant species. However, adapting these pathways to animals remains a challenge. Here, we describe successful biosynthesis of betalains, water-soluble pigments found only in a single plant order, Caryophyllales, in transgenic silkworms by coexpressing three betalain synthesis genes, cytochrome P450 enzyme CYP76AD1, DOPA 4,5-dioxygenase, and betanidin 5-O-glucosyltransferase. Betalains can be synthesized in various tissues under the control of the ubiquitous IE1 promoter but accumulate mainly in the hemolymph with yields as high as 274 µg/ml. Additionally, transformed larvae and pupae show a strong red color easily distinguishable from wild-type animals. In experiments in which expression is controlled by the promoter of silk gland-specific gene, fibroin heavy-chain, betalains are found predominantly in the silk glands and can be secreted into cocoons through spinning. Betalains in transformed cocoons are easily recovered from cocoon shells in water with average yields reaching 14.4 µg/mg. These data provide evidence that insects can synthesize natural plant pigments through a complex, multiple enzyme-mediated synthesis pathway. Such pigments also can serve as dominant visible markers in insect transgenesis applications. This study provides an approach to producing valuable plant-derived compounds by using genetically engineered silkworms as a bioreactor.


Subject(s)
Bombyx , Genetic Engineering , Animals, Genetically Modified , Animals , Pigments, Biological/biosynthesis , Betalains/biosynthesis , Betalains/chemistry , Gene Expression , Gene Expression Regulation, Enzymologic , Color
9.
Molecules ; 28(11)2023 May 24.
Article in English | MEDLINE | ID: mdl-37298767

ABSTRACT

Violacein and deoxyviolacein are bis-indole pigments synthesized by a number of microorganisms. The present study describes the biosynthesis of a mixture of violacein and deoxyviolacein using a genetically modified Y. lipolytica strain as a production chassis, the subsequent extraction of the intracellular pigments, and ultimately their purification using column chromatography. The results show that the optimal separation between the pigments occurs using an ethyl acetate/cyclohexane mixture with different ratios, first 65:35 until both pigments were clearly visible and distinguishable, then 40:60 to create a noticeable separation between them and recover the deoxyviolacein, and finally 80:20, which allows the recovery of the violacein. The purified pigments were then analyzed by thin-layer chromatography and nuclear magnetic resonance.


Subject(s)
Indoles , Pigments, Biological , Yarrowia , Indoles/isolation & purification , Fermentation , Yarrowia/chemistry , Yarrowia/genetics , Yarrowia/metabolism , Biotechnology , Genetic Engineering , Pigments, Biological/biosynthesis , Pigments, Biological/genetics , Pigments, Biological/isolation & purification
10.
J Nat Prod ; 85(9): 2236-2250, 2022 09 23.
Article in English | MEDLINE | ID: mdl-36098709

ABSTRACT

This Review provides a critical analysis of the literature covering the naturally occurring partially reduced perylenequinones (PQs) from fungi without carbon substituents (which can be named class A perylenequinones) and discusses their structures, stereochemistry, biosynthesis, and biological activities as appropriate. Perylenequinones are natural pigments with a perylene skeleton produced by certain fungi, aphids, some plants, and animal species. These compounds display several biological activities, e.g., antimicrobial, anti-HIV, photosensitizers, cytotoxic, and phytotoxic. It describes 36 fungal PQs and cites 81 references, covering from 1956 to August 2022.


Subject(s)
Fungi , Perylene , Pigments, Biological , Quinones , Animals , Fungi/chemistry , Perylene/analogs & derivatives , Perylene/chemistry , Perylene/pharmacology , Photosensitizing Agents , Pigments, Biological/biosynthesis , Pigments, Biological/chemistry , Pigments, Biological/isolation & purification , Pigments, Biological/pharmacology , Quinones/chemistry , Quinones/pharmacology
11.
J Ind Microbiol Biotechnol ; 49(1)2022 Jan 20.
Article in English | MEDLINE | ID: mdl-34661657

ABSTRACT

Polar regions are rich in microbial and product resources. Geomyces sp. WNF-15A is an Antarctic psy chrotrophic filamentous fungus producing high quality red pigment with potential for industrial use. However, efficient biosynthesis of red pigment can only realize at low temperature, which brings difficult control and high cost for the large-scale fermentation. This study aims to develop transposon insertion mutation method to improve cell growth and red pigment production adaptive to normal temperature. Genetic manipulation system of this fungus was firstly developed by antibiotic marker screening, protoplast preparation and transformation optimization, by which transformation efficiency of ∼50% was finally achieved. Then transposable insertion systems were established using Helitron, Fot1, and Impala transposons. The transposition efficiency reached 11.9%, 9.4%, and 4.6%, respectively. Mutant MP1 achieved the highest red pigment production (OD520 of 39) at 14°C, which was 40% higher than the wild-type strain. Mutant MP14 reached a maximum red pigment production (OD520 of 14.8) at 20°C, which was about twofold of the wild-type strain. Mutants MP2 and MP10 broke the repression mechanism of red pigment biosynthesis in the wild-type and allowed production at 25°C. For cell growth, eight mutants grew remarkably better (12%∼30% biomass higher) than the wild-type at 25°C. This study established an efficient genetic manipulation and transposon insertion mutation platform for polar filamentous fungus. It provides reference for genetic breeding of psychrotrophic fungi from polar and other regions.


Subject(s)
Ascomycota , Pigments, Biological/biosynthesis , Temperature , Adaptation, Physiological , Antarctic Regions , Ascomycota/genetics , Ascomycota/metabolism , DNA Transposable Elements , Fermentation , Mutagenesis, Insertional , Mutation
12.
J Basic Microbiol ; 61(10): 900-909, 2021 Oct.
Article in English | MEDLINE | ID: mdl-34467566

ABSTRACT

Recently, the demand for fungal pigments has increased due to their several benefits over synthetic dyes. Many species of fungi are known to produce pigments and a large number of fungal strains for pigment production are yet to be extensively investigated. The natural pigment from sustainable natural sources has good economic and industrial value. Many synthetic colorants used in textile and various industries have many harmful effects on the human population and environment. Pigments and coloring agents may be extracted from a wide range of fungal species. These compounds are among the natural compounds having the most significant promise for medicinal, culinary, cosmetics, and textile applications. This study attempts to isolate and optimize the fermentation conditions of Penicillium sclerotiorum strain AK-1 for pigment production. A dark yellow-colored pigment was isolated from the strain with significant extractive value and antioxidant capacity. This study also identifies that the pigment does not have any cytotoxic effect and is multicomponent. The pigment production was optimized for the parameters such as pH, temperature, carbon and nitrogen source. Fabric dyeing experiments showed significant dyeing capacity of the pigment on cotton fabrics. Accordingly, the natural dye isolated from P. sclerotiorum strain AK-1 has a high potential for industrial-scale dyeing of cotton materials.


Subject(s)
Coloring Agents , Penicillium/metabolism , Pigments, Biological/biosynthesis , Pigments, Biological/isolation & purification , Antioxidants , Biomass , Carbon , Fermentation , Humans , Hydrogen-Ion Concentration , Nitrogen , Pigmentation , Temperature , Textiles
13.
Biomolecules ; 11(8)2021 08 04.
Article in English | MEDLINE | ID: mdl-34439820

ABSTRACT

Cold-loving microorganisms of all three domains of life have unique and special abilities that allow them to live in harsh environments. They have acquired structural and molecular mechanisms of adaptation to the cold that include the production of anti-freeze proteins, carbohydrate-based extracellular polymeric substances and lipids which serve as cryo- and osmoprotectants by maintaining the fluidity of their membranes. They also produce a wide diversity of pigmented molecules to obtain energy, carry out photosynthesis, increase their resistance to stress and provide them with ultraviolet light protection. Recently developed analytical techniques have been applied as high-throughoutput technologies for function discovery and for reconstructing functional networks in psychrophiles. Among them, omics deserve special mention, such as genomics, transcriptomics, proteomics, glycomics, lipidomics and metabolomics. These techniques have allowed the identification of microorganisms and the study of their biogeochemical activities. They have also made it possible to infer their metabolic capacities and identify the biomolecules that are parts of their structures or that they secrete into the environment, which can be useful in various fields of biotechnology. This Review summarizes current knowledge on psychrophiles as sources of biomolecules and the metabolic pathways for their production. New strategies and next-generation approaches are needed to increase the chances of discovering new biomolecules.


Subject(s)
Adaptation, Physiological/genetics , Anti-Bacterial Agents/biosynthesis , Antifreeze Proteins/biosynthesis , Bacteria/metabolism , Extracellular Polymeric Substance Matrix/metabolism , Metabolic Networks and Pathways/genetics , Antifreeze Proteins/genetics , Arctic Regions , Bacteria/genetics , Bacteria/growth & development , Biotechnology/methods , Chlorophyta/genetics , Chlorophyta/growth & development , Chlorophyta/metabolism , Cold Temperature , Computational Biology/methods , Diatoms/genetics , Diatoms/growth & development , Diatoms/metabolism , Extracellular Polymeric Substance Matrix/genetics , Fungi/genetics , Fungi/growth & development , Fungi/metabolism , Humans , Lipids/biosynthesis , Lipids/genetics , Membrane Fluidity , Metagenome , Pigments, Biological/biosynthesis , Pigments, Biological/genetics
14.
Chembiochem ; 22(21): 3027-3036, 2021 11 03.
Article in English | MEDLINE | ID: mdl-34190382

ABSTRACT

Azaphilones are a family of polyketide-based fungal natural products that exhibit interesting and useful bioactivities. This minireview explores the literature on various characterised azaphilone biosynthetic pathways, which allows for a proposed consensus scheme for the production of the core azaphilone structure, as well as identifying early diversification steps during azaphilone biosynthesis. A consensus understanding of the core enzymatic steps towards a particular family of fungal natural products can aid in genome-mining experiments. Genome mining for novel fungal natural products is a powerful technique for both exploring chemical space and providing new insights into fungal natural product pathways.


Subject(s)
Biological Products/metabolism , Monascus/chemistry , Pigments, Biological/biosynthesis , Benzopyrans/chemistry , Biological Products/chemistry , Molecular Structure , Monascus/metabolism , Pigments, Biological/chemistry
15.
mBio ; 12(3)2021 05 18.
Article in English | MEDLINE | ID: mdl-34006650

ABSTRACT

The recent leveraging of genome-resolved metagenomics has generated an enormous number of genomes from novel uncultured microbial lineages yet left many clades undescribed. Here, we present a global analysis of genomes belonging to Binatota (UBP10), a globally distributed, yet-uncharacterized bacterial phylum. All orders in Binatota encoded the capacity for aerobic methylotrophy using methanol, methylamine, sulfomethanes, and chloromethanes as the substrates. Methylotrophy in Binatota was characterized by order-specific substrate degradation preferences, as well as extensive metabolic versatility, i.e., the utilization of diverse sets of genes, pathways, and combinations to achieve a specific metabolic goal. The genomes also encoded multiple alkane hydroxylases and monooxygenases, potentially enabling growth on a wide range of alkanes and fatty acids. Pigmentation is inferred from a complete pathway for carotenoids (lycopene, ß- and γ-carotenes, xanthins, chlorobactenes, and spheroidenes) production. Further, the majority of genes involved in bacteriochlorophyll a, c, and d biosynthesis were identified, although absence of key genes and failure to identify a photosynthetic reaction center preclude proposing phototrophic capacities. Analysis of 16S rRNA databases showed the preferences of Binatota to terrestrial and freshwater ecosystems, hydrocarbon-rich habitats, and sponges, supporting their potential role in mitigating methanol and methane emissions, breakdown of alkanes, and their association with sponges. Our results expand the lists of methylotrophic, aerobic alkane-degrading, and pigment-producing lineages. We also highlight the consistent encountering of incomplete biosynthetic pathways in microbial genomes, a phenomenon necessitating careful assessment when assigning putative functions based on a set-threshold of pathway completion.IMPORTANCE A wide range of microbial lineages remain uncultured, yet little is known regarding their metabolic capacities, physiological preferences, and ecological roles in various ecosystems. We conducted a thorough comparative genomic analysis of 108 genomes belonging to the Binatota (UBP10), a globally distributed, yet-uncharacterized bacterial phylum. We present evidence that members of the order Binatota specialize in methylotrophy and identify an extensive repertoire of genes and pathways mediating the oxidation of multiple one-carbon (C1) compounds in Binatota genomes. The occurrence of multiple alkane hydroxylases and monooxygenases in these genomes was also identified, potentially enabling growth on a wide range of alkanes and fatty acids. Pigmentation is inferred from a complete pathway for carotenoids production. We also report on the presence of incomplete chlorophyll biosynthetic pathways in all genomes and propose several evolutionary-grounded scenarios that could explain such a pattern. Assessment of the ecological distribution patterns of the Binatota indicates preference of its members to terrestrial and freshwater ecosystems characterized by high methane and methanol emissions, as well as multiple hydrocarbon-rich habitats and marine sponges.


Subject(s)
Alkanes/metabolism , Bacteria/genetics , Bacteria/metabolism , Genome, Bacterial , Genomics/methods , Pigments, Biological/biosynthesis , Bacteria/classification , Ecosystem , Phylogeny , Pigments, Biological/genetics , RNA, Ribosomal, 16S/genetics
16.
Fungal Genet Biol ; 152: 103567, 2021 07.
Article in English | MEDLINE | ID: mdl-33989788

ABSTRACT

Fungi produce secondary metabolites that are not directly involved in their growth, but often contribute to their adaptation to extreme environmental stimuli and enable their survival. Conidial pigment or melanin is one of the secondary metabolites produced naturally by a polyketide synthesis (PKS) gene cluster in several filamentous fungi and is known to protect these fungi from extreme radiation conditions. Several pigmented or melanized fungi have been shown to grow under extreme radiation conditions at the Chernobyl nuclear accident site. Some of these fungi, including Paecilomyces variotii, were observed to grow towards the source of radiation. Therefore, in this study, we wanted to identify if the pigment produced by P. variotii, contributes to providing protection against radiation condition. We first identified the PKS gene responsible for synthesis of pigment in P. variotii and confirmed its role in providing protection against UV irradiation through CRISPR-Cas9 mediated gene deletion. This is the first report that describes the use of CRISPR methodology to create gene deletions in P. variotii. Further, we showed that the pigment produced by this fungus, was not inhibited by DHN-melanin pathway inhibitors, indicating that the fungus does not produce melanin. We then identified the pigment synthesized by the PKS gene of P. variotii, as a naptho-pyrone Ywa1, by heterologously expressing the gene in Aspergillus nidulans. The results obtained will further aid in understanding the mechanistic basis of radiation resistance.


Subject(s)
Paecilomyces/genetics , Paecilomyces/metabolism , Paecilomyces/radiation effects , Pigments, Biological/biosynthesis , Pigments, Biological/genetics , Pigments, Biological/isolation & purification , Ultraviolet Rays , Aspergillus nidulans/genetics , Byssochlamys , Chernobyl Nuclear Accident , Fungal Proteins/genetics , Fungal Proteins/metabolism , Gene Expression Regulation, Fungal , Melanins/genetics , Melanins/isolation & purification , Metabolic Networks and Pathways , Microbial Sensitivity Tests , Multigene Family , Paecilomyces/isolation & purification , Pigmentation , Pigments, Biological/metabolism , Polyketide Synthases/genetics , Pyrones/metabolism , Secondary Metabolism , Spores, Fungal/genetics , Spores, Fungal/metabolism
17.
Molecules ; 26(9)2021 Apr 30.
Article in English | MEDLINE | ID: mdl-33946396

ABSTRACT

The increasing culinary use of onion (Alium cepa) raises pressure on the current production rate, demanding sustainable approaches for increasing its productivity worldwide. Here, we aimed to investigate the beneficial effects of licorice (Glycyrrhiza glabra) root extract (LRE) in improving growth, yield, nutritional status, and antioxidant properties of two high-yielding onion cultivars, Shandaweel and Giza 20, growing under field conditions in two consecutive years. Our results revealed that pretreatments of both onion cultivars with LRE exhibited improved growth indices (plant height and number of leaves) and yield-related features (bulb length, bulb diameter, and bulb weight) in comparison with the corresponding LRE-devoid control plants. Pretreatments with LRE also improved the nutritional and antioxidant properties of bulbs of both cultivars, which was linked to improved mineral (e.g., K+ and Ca2+) acquisition, and heightened activities of enzymatic antioxidants (e.g., superoxide dismutase, catalase, ascorbate peroxidase, glutathione peroxidase, and glutathione S-transferase) and increased levels of non-enzymatic antioxidants (e.g., ascorbic acid, reduced glutathione, phenolics, and flavonoids). LRE also elevated the contents of proline, total free amino acids, total soluble carbohydrates, and water-soluble proteins in both onion bulbs. In general, both cultivars displayed positive responses to LRE pretreatments; however, the Shandaweel cultivar performed better than the Giza 20 cultivar in terms of yield and, to some extent, bulb quality. Collectively, our findings suggest that the application of LRE as biostimulant might be an effective strategy to enhance bulb quality and ultimately the productivity of onion cultivars under field conditions.


Subject(s)
Antioxidants/pharmacology , Crop Production , Glycyrrhiza/chemistry , Onions/drug effects , Plant Extracts/pharmacology , Plant Roots/chemistry , Amino Acids/metabolism , Antioxidants/chemistry , Biomarkers , Carbohydrate Metabolism , Onions/physiology , Oxidation-Reduction , Photosynthesis , Pigments, Biological/biosynthesis , Plant Extracts/chemistry , Reactive Oxygen Species/metabolism
18.
Int J Mol Sci ; 22(8)2021 Apr 16.
Article in English | MEDLINE | ID: mdl-33923591

ABSTRACT

Flower colour is an important trait for plants to attract pollinators and ensure their reproductive success. Among yellow flower pigments, the nudicaulins in Papaver nudicaule L. (Iceland poppy) are unique due to their rarity and unparalleled flavoalkaloid structure. Nudicaulins are derived from pelargonidin glycoside and indole, products of the flavonoid and indole/tryptophan biosynthetic pathway, respectively. To gain insight into the molecular and chemical basis of nudicaulin biosynthesis, we combined transcriptome, differential gel electrophoresis (DIGE)-based proteome, and ultra-performance liquid chromatography-high resolution mass spectrometry (UPLC-HRMS)-based metabolome data of P. nudicaule petals with chemical investigations. We identified candidate genes and proteins for all biosynthetic steps as well as some key metabolites across five stages of petal development. Candidate genes of amino acid biosynthesis showed a relatively stable expression throughout petal development, whereas most candidate genes of flavonoid biosynthesis showed increasing expression during development followed by downregulation in the final stage. Notably, gene candidates of indole-3-glycerol-phosphate lyase (IGL), sharing characteristic sequence motifs with known plant IGL genes, were co-expressed with flavonoid biosynthesis genes, and are probably providing free indole. The fusion of indole with pelargonidin glycosides was retraced synthetically and promoted by high precursor concentrations, an excess of indole, and a specific glycosylation pattern of pelargonidin. Thus, nudicaulin biosynthesis combines the enzymatic steps of two different pathways with a spontaneous fusion of indole and pelargonidin glycoside under precisely tuned reaction conditions.


Subject(s)
Flavonoids/biosynthesis , Indole Alkaloids/metabolism , Papaveraceae/metabolism , Pigments, Biological/biosynthesis , Plant Proteins/metabolism , Flavonoids/genetics , Flowers/chemistry , Flowers/genetics , Flowers/metabolism , Metabolome , Papaveraceae/chemistry , Papaveraceae/genetics , Pigments, Biological/genetics , Plant Proteins/genetics , Proteome , Transcriptome
19.
PLoS One ; 16(4): e0250705, 2021.
Article in English | MEDLINE | ID: mdl-33914790

ABSTRACT

Antimicrobial resistance (AMR) is emerging as a global threat to public health. One of the strategies employed to combat AMR is the use of adjuvants which act to enhance or reinstate antimicrobial activity by inhibiting resistance mechanisms. However, these adjuvants are themselves not immune to selecting resistant phenotypes. Thus, there is a need to utilise mechanisms which are either less likely to or unable to trigger resistance. One commonly employed mechanism of resistance by microorganisms is to prevent antimicrobial uptake or efflux the antibiotic which manages to permeate its membrane. Here we propose amino acids as antimicrobial adjuvants that may be utilizing alternate mechanisms to fight AMR. We used a modified ethidium bromide (EtBr) efflux assay to determine its efflux in the presence of ciprofloxacin within Staphylococcus aureus (NCTC 8325) and Pseudomonas aeruginosa (PAO1). In this study, aspartic acid and glutamic acid were found to inhibit growth of both bacterial species. Moreover, a reduced production of toxic pigments, pyocyanin and pyoverdine by P. aeruginosa was also observed. As evident from similar findings with tetracycline, these adjuvants, may be a way forward towards tackling antimicrobial resistance.


Subject(s)
Amino Acids, Acidic/pharmacology , Ciprofloxacin/pharmacology , Pigments, Biological/biosynthesis , Pseudomonas aeruginosa/growth & development , Pseudomonas aeruginosa/metabolism , Staphylococcus aureus/growth & development , Staphylococcus aureus/metabolism , Pseudomonas aeruginosa/drug effects , Staphylococcus aureus/drug effects
20.
FEMS Microbiol Lett ; 368(8)2021 05 06.
Article in English | MEDLINE | ID: mdl-33881506

ABSTRACT

Streptomyces are efficient chemists with a capacity to generate diverse and potent chemical scaffolds. The secondary metabolism of these soil-dwelling prokaryotes is stimulated upon interaction with other microbes in their complex ecosystem. We observed such an interaction when a Streptomyces isolate was cultivated in a media supplemented with dead yeast cells. Whole-genome analysis revealed that Streptomyces sp. MBK6 harbors the red cluster that is cryptic under normal environmental conditions. An interactive culture of MBK6 with dead yeast triggered the production of the red pigments metacycloprodigiosin and undecylprodigiosin. Streptomyces sp. MBK6 scavenges dead-yeast cells and preferentially grows in aggregates of sequestered yeasts within its mycelial network. We identified that the activation depends on the cluster-situated regulator, mbkZ, which may act as a cross-regulator. Cloning of this master regulator mbkZ in S. coelicolor with a constitutive promoter and promoter-deprived conditions generated different production levels of the red pigments. These surprising results were further validated by DNA-protein binding assays. The presence of the red cluster in Streptomyces sp. MBK6 provides a vivid example of horizontal gene transfer of an entire metabolic pathway followed by differential adaptation to a new environment through mutations in the receiver domain of the key regulatory protein MbkZ.


Subject(s)
Pigments, Biological/biosynthesis , Prodigiosin/analogs & derivatives , Streptomyces/metabolism , Gene Expression Regulation, Bacterial , Genes, Bacterial , Molecular Structure , Prodigiosin/biosynthesis , Promoter Regions, Genetic , Saccharomyces cerevisiae , Secondary Metabolism , Streptomyces/genetics
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