Skip to content

Author

Han-Qing Wang

2 papers indexed here

We haven’t gathered this author’s papers yet. Follow them and we’ll fetch their work.

Not the right person? Other researchers publish under this name.

Open access Jul 2026

Culturable Fungi Recovered from Deep-Sea Sediments: Diversity, Phylogenetic Placement, and In Vitro Antagonistic Activity Against Phytopathogenic Fungi

Deep-sea sediment-derived fungal isolates remain underrepresented in organized living collections for phenotype-based screening. We applied 12 complementary isolation protocols—dilution plating, ethylenediaminetetraacetic acid (EDTA) pretreatment, and plate stamping—to four deep-sea sediment materials (2595–6000 m) representing three sampling units from the Mariana Trench slope region and the South China Sea. After morphotype-based purification, isolates were characterized by internal transcribed spacer (ITS) closest-match analysis and phylogenetic placement; selected representatives were further screened against five phytopathogenic strains using dual-culture, culture filtrate, and volatile organic compound (VOC) assays. In total, 159 isolates were placed within Ascomycota, Basidiomycota, and Mucoromycota, representing 35 closest-match genus-level groups and 22 low-similarity ITS phylotypes (<95% similarity) preserved as living cultures. Cladosporium, Penicillium, and Aspergillus were most frequent. Recovered diversity profiles varied among sediment materials and protocols, with plate stamping capturing a large, compositionally distinct subset of the collection. In dual culture, all 23 tested isolates inhibited at least one pathogen, with maximum mycelial growth inhibition reaching 98.74%. Culture filtrate and VOC assays produced partially discordant activity profiles, highlighting assay-format-dependent effects. This study establishes an ITS-organized living fungal collection and provides a phenotype-based framework for targeted taxonomic, chemical, and biocontrol-oriented follow-up.

Xiao-Xiong Xu, Zhong-Min Lin, Tian-You Liao et al. · 0 citations
Sep 2026

Genomic analysis of an Arctic marine Tenacibaculum sp. SM2510 reveals its genetic potential for glutathione utilization.

Glutathione is a key intracellular antioxidant, playing a crucial role in resisting oxidative stress and maintaining cellular redox homeostasis. However, the glutathione metabolic capacity of Tenacibaculum remains poorly characterized. In this study, a Gram-stain-negative bacterium, Tenacibaculum sp. SM2510, was isolated from seawater collected from Kongsfjorden, Svalbard, Norway. Genome sequencing revealed that the strain possesses a single circular chromosome of 2,904,982 bp with a G + C content of 31.44%, encoding 2564 protein-coding genes. Genomic analysis indicates that Tenacibaculum sp. SM2510 may directly take up extracellular oxidized glutathione (GSSG) and reduce it to reduced glutathione (GSH) through a reductive pathway, which potentially allows the strain to alleviate the accumulation of reactive oxygen species (ROS) caused by strong ultraviolet radiation and low temperature in polar environments. Furthermore, genomic analysis predicts that the strain degrades GSH to produce essential life-sustaining substances. In conclusion, these results suggest that Tenacibaculum sp. SM2510 may potentially utilize exogenous glutathione for both antioxidant defense and nutrient acquisition through direct GSH degradation, providing new insights into the environmental adaptive evolution of polar marine bacteria.

Can You, Han-Qing Wang, Jing-Li Lv et al. · 0 citations