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Complete mitochondrial genomic sequence of Lenzites betulinus (Polyporales, Basidiomycota).

Lenzites betulinus is a medicinal fungus in the Polyporaceae. Here, we report the first complete mitochondrial sequencing of this species. The circular genome is 61,288 bp in length, with a GC content of 26.32% and base composition of A (36.98%), T (36.70%), G (12.96%), and C (13.36%). It contains 14 core protein-coding genes (PCGs), 26 tRNA genes, two rRNA genes, and nine intronic ORFs within the cox1 gene. A maximum-likelihood phylogenetic tree based on 14 PCGs from 17 mitochondrial genomes confirmed that L. betulinus clusters within the Polyporaceae, closely related to Trametes and Fomitopsis. This served as a significant reference for ongoing research into other species within the Polyporales order.

Mitochondrial genome

Species-specific structuring of gut bacterial and fungal communities in honey bees Apis cerana and Apis mellifera.

Honey bee gut microbiome studies have primarily emphasized bacteria, leaving fungal communities comparatively overlooked despite their ecological and functional importance. Whole-genome shotgun metagenomics of Apis cerana and Apis mellifera revealed fungal assemblages dominated by Ascomycota, with Basidiomycota and Microsporidia in minor proportions, alongside gut bacterial communities composed mainly of Pseudomonadota, Bacillota, and Actinomycetota. The bacterial diversity was markedly higher in A. mellifera (Shannon = 5.90; Simpson = 0.98) than in A. cerana (Shannon = 4.01; Simpson = 0.94; p > 0.05), while fungal diversity remained comparable between species (p > 0.05). Beta-diversity analyses revealed strong host-specific clustering for both bacterial (PERMANOVA R2 = 0.7989, p > 0.05) and fungal communities (R2 = 0.7218, p > 0.05), indicating distinct microbial organization driven by host species. Bacterial-fungal co-occurrence patterns exhibited host-specific structuring, suggesting differential inter-kingdom community organization between A. cerana and A. mellifera. Linear Discriminant Analysis Effect Size (LEfSe) identified 93 discriminatory fungal taxa (45 enriched in A. cerana, 48 in A. mellifera), highlighting yeast-dominated signatures in A. mellifera and Basidiomycota-affiliated enrichments in A. cerana. KEGG and CAZy profiling revealed host- and kingdom-specific functional differences, with bacterial communities of A. mellifera showing distinct representation of carbohydrate metabolism and nutrient-cycling functions, while fungal communities exhibited a comparatively narrower functional repertoire. Together, these findings provide a high-resolution view of honey bee bacterial and fungal microbiomes, highlighting strong host-driven divergence in taxonomy, function, and cross-kingdom interactions.

Animals

Decoding the distribution, structure-function-redox potential relationship and recent advances in fungal laccases: a systematic approach.

Laccases, categorized as multicopper oxidases, are recognized for their multifaceted roles in ecosystems and their utility in diverse industrial applications. Laccases from higher fungi, specifically Ascomycota and Basidiomycota, have garnered significant research interest due to their elevated redox potentials and their capacity to degrade lignin in decaying wood, alongside other industrial uses. Here, we have conducted a comprehensive and systematic analysis on fungal laccases using Web of Science, Scopus, PubMed, and ScienceDirect. The genomic distribution, phylogenetic affiliation, and structural organization of laccase-encoding genes in higher fungal species were investigated, as were the catalytic mechanisms of the corresponding enzymes. Additionally, the study explores the correlation between structural domains and redox potential, as well as the impact of post-translational modifications like glycosylation on enzyme activity. Furthermore, the recent advancements in laccase engineering, employing strategies such as rational design, directed evolution, and heterologous expression are discussed. The review also explores the scope of "artificial intelligence and machine learning" in deducing the structure-function relationships, optimizing codon usage, predicting signal peptides, enhancing enzymatic performance, and developing host-specific genetic engineering techniques is also discussed for tailoring fungal laccases to meet the demands of industrial biocatalysis for improved activity and stability.

Laccase

Liquid fermentation and an adapted cetyltrimethylammonium bromide (CTAB) method enable sequencing-grade DNA extraction from Phanerodontia australis.

High-quality genomic DNA extraction from basidiomycete fungi remains challenging due to polysaccharide co-purification and nuclease-mediated DNA degradation. We systematically compared 22 experimental conditions combining five DNA extraction methods (one Dellaporta-based method, three CTAB-based variants, and one commercial kit) with five mycelium preparation techniques (scalpel scraping, fungal suspension, silica bead homogenization, liquid fermentation, and liquid nitrogen treatment) for Phanerodontia australis (BRM62389). DNA quality was assessed by 1% agarose gel electrophoresis, NanoDrop spectrophotometry, and Qubit fluorimetry. The optimal protocol combined liquid-fermentation mycelium with an adapted CTAB method, yielding Qubit-quantified concentrations of 34.2 and 62.6 ng/µL (samples S21 and S22), 260/280 ratios of 2.06 and 2.05, 260/230 ratios of 1.88 and 1.85, and no detectable DNA degradation by agarose gel electrophoresis. This protocol enabled whole-genome sequencing, yielding a 37.62 Mb assembly with 98.5% completeness as assessed by BUSCO v5 (basidiomycota_odb10 lineage dataset, n = 1,764). Liquid fermentation is associated with the production of younger, actively growing hyphae with reduced cell wall thickness, and the adapted CTAB method effectively removed residual polysaccharides. This protocol provides a reliable, cost-effective approach for obtaining sequencing-grade DNA from P. australis.

Basidiomycota

Metagenomic Insights Into Microbial Diversity of Tea Rhizosphere of the Kangra Valley.

This study provides the first metagenomic assessment of microbial diversity from the tea rhizosphere of the Kangra valley. Tea rhizosphere soil samples were collected from 4 locations (Dharamshala, Baijnath, Palampur, and Joginder Nagar) of the Kangra valley. DNA extracts of rhizosphere samples were analysed for bacterial and Archaeal diversity using amplicon sequencing (V3-V4) region of the 16S rRNA gene and Fungal diversity using ITS1 and ITS2 regions. Baijnath and Palampur samples showed the highest bacterial richness, while Dharamshala and Palampur had the highest fungal richness. Proteobacteria was a dominant phylum in all the rhizosphere samples, followed by Firmicutes, Actinobacteria, Acidobacteria, and Bacteroidetes. A total of 11 fungal phyla were identified among all the locations, with abundance of Ascomycota and Basidiomycota. For the Archaea domain, uncultured archaeon and Aeropyrum camini were the most common found among all the locations. A small fraction (<&#x2009;0.5%) of Bacillus and Pseudomonas species were observed among all the locations. Alpha and beta diversity indices displayed notable differences within and between microbial diversities. Soil factors were variably associated with microbial diversity, with nitrogen positively aligned with fungal diversity, while EC and K were associated with Archaeal diversity. Soil pH and OM% showed moderate associations with bacterial diversity. These findings provided valuable and comprehensive insights into tea rhizosphere microbial ecology and could be used to better understand microbial functions and their role in plant health.

Rhizosphere

Restoration contexts shape the bacterial and fungal soil communities in desertification hotspots in the Brazilian semiarid region.

Desertification in the Brazilian semiarid has compromised ecosystem functionality, impacting soil microbial biodiversity. Thus, restoration strategies have been implemented, aiming to mitigate the negative impacts. However, little is known about their effects on soil microbial communities. In this study, we hypothesized that the two restoration contexts would promote distinct trajectories of soil microbial community recovery. We evaluated 36 soil samples collected from two desertification hotspots in the Brazilian semiarid, representing active (Gilbu&#xe9;s) and passive (Irau&#xe7;uba) restoration contexts. Soil DNA was extracted and subjected to 16S and ITS amplicon sequencing to characterize bacterial and fungal communities, respectively. Community differences were assessed using alpha-diversity metrics, redundancy analysis (RDA), and PERMANOVA. The results showed that within Gilbu&#xe9;s (active restoration), bacterial and fungal community composition differed among soils under desertification and restoration. In Irau&#xe7;uba (passive restoration), only native soils differed from both soils under desertification and restoration. Proteobacteria, Actinobacteriota, and Firmicutes (bacteria), and Ascomycota and Basidiomycota (fungi), were the dominant phyla in both hotspots. Bacterial and fungal communities showed distinct taxonomic patterns among native, degraded, and restored soils within each restoration context. Niche occupancy patterns also differed between restoration contexts. In conclusion, the two hotspots followed contrasting microbial recovery trajectories, demonstrating that restoration responses are context-dependent and vary according to the microbial groups, rather than supporting the universal superiority of one restoration strategy over the other.

Soil Microbiology

Dynamics of soil fungal communities restored with biochar from a quarry site.

Quarrying activities have intensified due to population expansion, leading to landscape degradation and ecological destruction. Quarry restoration is usually mandatory in Hong Kong, China. Although biochar is used for sustainable soil amendment, its effectiveness in restoring quarry soil with poor properties has rarely been investigated. A 24-month field study was conducted to evaluate the ecological feasibility of restoring a quarry site by using native species (that is, Castanopsis fissa and Cyclobalanopsis edithiae) and biochar amendment. The results revealed that after 24 months, the application of biochar increased the organic carbon, phosphorus and potassium of the vegetated soil by at least 120 %, 31 % and 12 %, respectively, due to higher cation exchange capacity and better plant growth. The relative abundance of Ascomycota and Basidiomycota increased by 24 % and 47 % with biochar application when C. fissa was planted, which was likely associated with the improved nutrient cycling and soil fertility. Even though adding biochar to bare soil was found to increase the complexity of fungal co-occurrence networks, biochar application only increased fungal diversity in vegetated quarry soil but usually reduced its fungal richness. Moreover, fungal co-occurrence networks in vegetated soil became less complex, suggesting that biochar potentially helped plants to assemble specific, beneficial fungal communities. This effect is most pronounced in the soil planted with C. edithiae, where the structure of fungal communities after 24 months was significantly different from that at other restoration times. This study identifies key fungal phyla enhanced by biochar in quarry soil and provides an effective strategy for facilitating the restoration and management of degraded lands, especially quarry sites.

Charcoal

The genome of the polyextremophilic yeast, Naganishia friedmannii, reveals adaptations involved in stress response pathways, carbohydrate metabolism expansion, and a limited DNA repair repertoire.

Here we report the draft genome sequence of Naganishia friedmannii (formerly Cryptococcus friedmannii) isolate, a Basidiomycota yeast commonly found in some of the most extreme environments of the Earth's cryosphere. We isolated N. friedmannii strain Llullensis from soils at 6000&#xa0;m above sea level on Volc&#xe1;n Llullaillaco, Argentina. The genome was 22.2 Mb with 6251 identified protein coding genes. Proteins known to be associated with thermal, osmotic, and radiation stress were identified in the genome. Comparative analysis with seven other Naganishia genomes revealed unique features underlying its polyextremophilic lifestyle. Naganishia friedmannii showed an expansion of genes involved in breaking down plant-derived carbohydrates, supporting the hypothesis that it survives at high elevations by metabolizing wind-deposited organic matter. Surprisingly, many genes involved in cell-cycle checkpoints and DNA repair were missing, as in several other Naganishia species. This extensive loss may be adaptive in extreme environments prone to abiotic stress, where a high mutation rate could generate advantageous traits, and reduced cell-cycle control may allow for faster reproduction that would be advantageous for rapid growth during brief periods of soil wetting following rare snow events.

Carbohydrate Metabolism

Unveiling microbial communities and biogeochemical cycles in Antarctic colored snow.

Snow cover, the extensive terrestrial habitat in Antarctica, sometimes exhibits vivid coloration, yet the structure and function of its microbial communities remain poorly characterized. Using metagenomic sequencing of red snow (RS) and green snow (GS) from the Fildes Peninsula, we found that bacterial, eukaryotic, and archaeal relative abundances were 85.82%, 13.52% and 0.16%, respectively. &#x3b2;-Diversity differed significantly between RS and GS across these three domains (P&#x2009;<&#x2009;0.05). Dominant bacterial phyla included Bacteroidota (RS: 62.61%; GS: 38.72%) and Pseudomonadota (RS: 32.80%; GS: 54.10%). Among eukaryotes, Chlorophyta (RS: 58.10%; GS: 52.98%) and Basidiomycota (RS: 14.80%; GS: 8.08%) were prevalent. Nanobdellota dominated archaea, with lower abundance in RS than GS. In the algal community, Sanguina, Gonium and Chloromonas were significantly enriched in red snow, while Chlorella and Micractinium were enriched in green snow (P&#x2009;<&#x2009;0.05). Marker genes associated with carbon (C), nitrogen (N), phosphorus (P) and sulfur (S) cycles were identified in green and red snow. Aerobic respiration and phosphate regulation were significantly enriched in red snow, while CO oxidation, fermentation, and denitrification were significantly enriched in green snow. Key microbial genera associated with these functional pathways also varied. In the denitrification of red snow, Stutzerimonas was the most abundant genus, while Janthinobacterium was abundant in green snow. Nitrification-related genes were detected only in red snow based on the present metagenomic data. The network of the red snow microbial community was potentially more complex and resistant based on topology, which not only benefited its own long-term survival but might also have potentially influenced the positive feedback effect of snowmelt by maintaining a low-albedo snow surface. This provided an ecological implication under climate warming: the expansion of red snow patches showed the potential to the increase nitrate runoff export, which would affect nitrogen nutrient levels in coastal Antarctic waters. Overall, this study used metagenomics to compare the multidomain (bacteria, archaea and eukaryotes) composition and diversity between red snow and green snow, and directly linked key microbial taxa with functional genes of biogeochemical cycles. This study provided new insights into the biological characteristics and functional potential of Antarctic colored snow.

Snow

Food additives (natural and synthetic).

Food additives can be divided into the following categories: intentional, unintentional, contaminants, and those resulting from food processing procedures. Representative food additives from each category are discussed, with special attention being paid to the status of those suspected or proven to be toxic to humans. In addition, certain chemical components of food and methods for testing food additives are considered. Areas requiring additional testing include saccharin, cooking procedures, especially charcoal broiling, and hydrozines in mushrooms. The more recent developments in test procedures, including in vitro test methods, the transplacental exposure route, the use of maximal tolerated dose, and the initiation--promotion sequence, are evaluated.

Animals

Metabolism of diethylstilbestrol: identification of a catechol derived from dienestrol.

The enzymatic oxidation of E-3,4-bis-(p-hydroxyphenyl)-hex-3-ene (diethylstilbestrol) by either mushroom tyrosinase or rat liver microsomes in the presence of NADPH and air yields a catechol. Upon further oxidation of both compounds with periodate and condensation of the resulting o-quinones with o-phenylenediamine, phenazines are produced. The phenazines derived from the products of both the plant and animal enzyme systems are identical to the product obtained by oxidation of diethylstilbestrol with potassium nitrosodisulfonate and condensation of the o-quinone produced with o-phenylenediamine. High and low resolution mass spectra of the phenazine are consistent with its derivation from a catechol having two fewer hydrogens than diethylstilbestrol.

Animals

[Dry matter losses in mushroom (Lactarius rufus) by blanching].

According to recommended international standards edible fungi are blanched before salting and freezing. A study was conducted on the solution losses of Lactarius rufus due to blanching. Weight losses, changes of dry matter, raw fat, total nitrogen, amino nitrogen and ash contents as well as the pH value were determined when various methods of blanching were used. 3 min blanching at 95-100 degrees C was able to inactivate catalase and peroxydase while 6 min blanching was needed for inactivating polyphenoloxydase totally. After blanching there were 1/10 - 1/100 of spores left. During the 3 min blanching in water five times the quantity of mushrooms the losses of dry matter were about 10%; when doubling the quantity of blanching water the losses increased to 2-3 fold. The doubling of blanching time had no significant influence on the losses. The soluble dry matter content of blanched mushrooms was less than 50% of that of the fresh. Total nitrogen of fresh mushrooms was equal to that of the blanched but the amino nitrogen decreased to one tenth by blanching. The mineral element content of blanched mushrooms was about the half of that of the fresh. Blanching caused a slight decrease in the pH value. The necessity of the blanching of all edible fungi before freezing was discussed.

Basidiomycota

[Uptake of lead, cadmium and mercury by cultivated mushrooms].

It is reported of the uptake of lead, cadmium and mercury by cultivated mushrooms (Agaricus bisporus) from lead, cadmium and mercury-containing substrates. Cd and Hg were observed to accumulate significantly via the mycelium, whereas Pb accumulated scarely, even if the Pb contents in the substrate were high. High lead concentrations in wild mushrooms, therefore, are likely to be mainly due to emissions; whereas, with Cd and Hg, uptake from the soil must also be considered.

Basidiomycota

[Cleavage of alpha-L-arabinofuranoside, beta-D-glucopyranoside and beta-cellobioside of 4-nitrophenol by enzymes of various fungi - a contribution to increase the selectivity of tumor therapy].

To carry out long-term experiments as part of a therapy concept of malignant tumours using inactive transport forms of cancerostatic substances and their specific cleavage in the acidic pH region of the tumours by application of extraneous enzymes, we require enzymes with similar catalytic and pharmacokinetic properties which differ from each other in immunological respect. In the search for such enzymes, the alpha-L-arabinofuranosidases from 12 different fungi, among them 9 basidiomycetes, were studied. The enzymes mentioned were demonstrable in all fungi. Optimum pH values ranged between 2.5 and 5.5. The Km values for the cleavage of alpha-L-arabinofuranoside were, in most cases, 0.5 to 1.8 moles-liter-1-10(-3). With regard to pH dependence, the alpha-L-arabinofuranosidases of most of the fungi investigated proved adequate for the long-term trials envisaged. 4-nitrophenyl-beta-D-glucopyranoside and -beta-cellobioside were also cleaved by enzyme preparations of all the 11 fungi investigated. The beta-D-glucopyranosidases showed a less favourable pH dependence than the alpha-L-arabinofuranosidases. The cleavage of 4-nitrophenyl-beta-cellobioside, on the contrary, showed mostly a comparatively favourable pH dependence. On the basis of the coinciding optimal pH values and the occurrence of 4-nitrophenyl-beta-D-glucopyranoside as an intermediate product in the cleavage of the corresponding cellobioside, we assume that both substrates are cleaved by beta-glucosidase. Because the occurrence of the glucoside during the cleavage of cellobioside is undesirable for the therapeutic trial, a method is proposed for selection of an appropriate cellobioside splitting enzyme basing on the present studies and the relevant literature.

Aspergillus niger

[Rhodosporidium Banno: yeast phase inactivation by ultraviolet light and N-methyl-N'-nitro-N-nitrosoguanidine].

The inactivation of stationary phase cells by ultraviolet light (UV) and N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) was examined in eight wild strains of Rhodotorula, six of which are the sporidial yeast phase of Rhodosporidium, a basidiomycetous fungus. It has been found that (1) the UV-resistance of Rhodosporidium and Rhodotorula yeasts is higher and the MNNG-resistance lower than the resistance of Candida and Hansenula yeasts, (2) the shape of the survival curves is sigmoid in the case of UV and two-phase exponential in the case of MNNG, (3) the mutagen sensitivities but not the inactivation kinetics of the strains are different, (4) the UV- and MNNG-sensitivities for each of the strains are correlated, (5) the relatively high resistance to UV cannot be due to the carotenoid pigments of the cells, (6) mutations to UV-sensitivity can be induced with a high rate, (7) the sigmoidal character of the UV survival curves were reduced or transformed to an exponential shape by the UVS-mutations.

Basidiomycota

[Search for nucleic acid influencing, as well as membrane active, potential cancerostatic fungal metabolites using microbiological and cytological screening methods].

A prescreening program including microbiological and cytological assays was employed in search of potential cancerostatic antibiotics in crude extracts of mushrooms. The microbiological tests based on agar diffusion techniques consist of prophage induction test and BIP-test. All active compounds selected by these microbiological models are potential inhibitors of nucleic acid metabolism. Cytological assays on leukemia L 1210 cells have been carried out by microscopic examination and by evaluation using an electronic particle counter. Activity was expressed as decrease of the number of single cells caused by agglutination or lysis of cells, changes in cell surface area, dye exclusion, and increase of cell volume. A wide variety of mushrooms was demonstrated to exhibit interesting activities in some of these screening systems. The influence of primary metabolic products of mushrooms on microbiological models was studied additionally. In vivo assays have not yet been accomplished.

Antibiotics, Antineoplastic