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J. Campos-Guillén

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Open access Aug 2026

Pisolithus arhizus Inoculation Enhances Mercury Tolerance and Growth of Trifolium repens in Mining Soils

Highlights What are the main findings? Inoculation with the ectomycorrhizal fungus Pisolithus arhizus significantly enhanced the growth, biomass production, and mercury (Hg) tolerance of Trifolium repens (white clover) in contaminated mining soils. Mycorrhized plants achieved a 9.53% mercury removal rate from the soil, compared to a 4.33% removal rate in non-mycorrhized treatments. Inoculated plants successfully accumulated nearly 9% of soil Hg, yielding a Bioconcentration Factor (BCF) of 0.939, which classifies T. repens as an Hg low accumulator under these experimental conditions. What are the implications of the main findings? The study demonstrates that mycorrhizal symbiosis functions as a “metabolic buffer,” offering a viable, nature-based strategy to mitigate the phytotoxic effects of heavy metals and support more sustainable land rehabilitation practices in mining-impacted areas. The delayed growth recovery observed in contaminated treatments highlights that the symbiotic benefit is contingent upon the establishment of an extensive extraradicular mycelial network, identifying P. arhizus as a critical bio-amendment for ecosystem restoration. Abstract While mining provides critical raw materials for modern infrastructure and the energy transition, it leaves behind severe environmental damages, such as soil mercury (Hg) contamination. In the present study, we present the first study evaluating the relationship of the ectomycorrhizal fungus Pisolithus arhizus with Trifolium repens (white clover) as a novel nature-based mycoremediation strategy for mercury-stressed soils. Through a controlled 2 × 2 factorial experiment over six months, we demonstrate that P. arhizus significantly enhances both plant biomass and heavy-metal tolerance. Inoculation achieved a 9.53% reduction in soil Hg and drove a dramatic 53% increase in stem growth under Hg stress (compared to 36% in non-contaminated conditions) once the extraradicular mycelial network was established. Furthermore, we report novel soil-chemistry dynamics under Hg stress, including a 16% shift in electrical conductivity alongside unexpected increases in the available potassium (+9%) and phosphorus (+3%). These findings present first results for a novel approach of mycoremediation by incorporating P. arhizus into T. repens co-cultivation as a viable remediation strategy, prior to field-scale remediation.

Mónica López Velarde Santos, Adrian Ferrucio García-Morales, J. A. Rodríguez Morales et al. · 0 citations
Open access Jul 2026

Antimicrobial Effect of Silver Nanoparticles Capped with Killer Yeast-Derived Protein Fractions

Recently, novel nanobiotechnological approaches have been developed to reduce the impact of pollutants during the synthesis of nanoparticles (NPs). To do so, green synthesis methods have now become widely adopted, using biomolecules to produce high-quality, stable nanoparticles. In this work, we employed the K1 toxin produced by S. cerevisiae as a reducing and capping agent for silver nanoparticles. The synthesis of Ag-K1 NPs was carried out using a concentrated protein fraction from the culture medium of S. cerevisiae 42300 containing the secreted K1 toxin. The obtained nanoparticles were characterized using UV–Vis spectroscopy, STEM, EDS, and FTIR, and the antimicrobial efficacy was determined against S. cerevisiae, P. aeruginosa, and B. subtilis. The synthesized NPs showed high antimicrobial efficacy, killing all tested strains; additionally, dose–response modeling suggested differential activity among the nanoparticles. This work reports, for the first time, the bio-assisted synthesis and antimicrobial characterization of silver nanoparticles associated with K1 killer toxin-containing protein fractions.

Carlos Molina-Vera, Verónica Morales-Tlalpan, J. Campos-Guillén et al. · 0 citations

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