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Li, J.-t.

Publications and source records attributed to Li, J.-t..

2 recordsLinked to original sources

Genomic insights into adaptation strategies and microevolutionary forces of novel non-AOA Nitrososphaeria in acid mine drainage ecosystems

The class Nitrososphaeria is best known for ammonia-oxidizing archaea (AOA), yet deeply branching non-AOA lineages remain poorly characterized, leaving a critical gap in our understanding of the groups early evolution and ecological diversification. Herein, we recovered 44 non-AOA Nitrososphaeria metagenome-assembled genomes (MAGs) from acid mine drainage (AMD) sediments in diverse metal mines, representing two novel genera within the family UBA164, Acidarchaeum and Thermosulfuris. A meta-analysis of 251 AMD-associated metagenomes showed that these potentially thermophilic lineages are globally distributed but typically rare, with local peaks ([~]6.6%) at sites such as Fankou. Metabolic reconstruction suggested a facultatively anaerobic, mixotrophic lifestyle capable of CO oxidation and sulfur reduction, and extensive acid- and heavy-metal resistance mediated primarily by ether-linked archaeal lipids, ion efflux systems, and enzymatic reduction. Genus-specific traits include dissimilatory sulfate reduction in Thermosulfuris and urea utilization in Acidarchaeum, illuminating distinct ecological niches for them. Population-genomic analyses reveal low homologous recombination and pervasive purifying selection in these non-AOA populations, together with local relaxation of selection and elevated diversity, the former being correlated with geochemical stressors (notably copper), pointing to long-term, geochemically driven adaptation. Overall, these findings provide insights into the biodiversity, ecophysiology, and evolutionary dynamics of non-AOA Nitrososphaeria. IMPORTANCEMembers of the class Nitrososphaeria that oxidize ammonia are central to the global nitrogen cycle, yet deep-branching lineages that lack this metabolism remain poorly explored, obscuring their early evolutionary trajectory. Here, we identify two new genera of non-ammonia-oxidizing Nitrososphaeria from acid mine drainage ecosystems and show that they recur globally in these acidic, metal-rich, oligotrophic habitats. Genomic analyses reveal adaptations for survival in harsh environments and genus-specific metabolic traits, suggesting distinct ecological strategies. Evolutionary analyses further indicate that these lineages are highly specialized, with population-genomic patterns consistent with long-term adaptation to geochemical conditions. This work sheds light on the biodiversity and evolutionary constraints of early-diverging lineages of Nitrososphaeria.

microbiology↗

Tap into non-symbiotic carbon? Exogenous myristate fuels the growth of symbiotic arbuscular mycorrhizal fungi but disrupts their carbon-phosphorus exchange with host plants

Arbuscular mycorrhizal fungi (AMF) are obligate biotrophs that rely on symbiotic carbohydrates and, in particular, lipids derived from their host plants. However, it remains unclear whether symbiotic AMF can access exogenous non-symbiotic lipids in the presence of plant-derived carbon, complicating our understanding of their relationship with host plants. Here, we investigated the direct uptake of exogenous 13C1-labeled myristate by three symbiotic AMF species (Rhizophagus irregularis, R. intraradices, and R. diaphanous) and assessed their growth responses using AMF-carrot hairy root co-culture systems. Furthermore, we explored the environmental distribution of myristate, and evaluated the impact of exogenous myristate on the carbon-phosphorus exchange between R. irregularis and alfalfa or rice in a greenhouse experiment. Our results showed that symbiotic AMF can absorb exogenous myristate, as evidenced by 13C enrichment and transcriptional activation of fatty acid transport and metabolism genes in AMF extraradical hyphae. Myristate is commonly present in various soil and plant environments, and its application increased both intraradical and extraradical fungal biomass, possibly linked to suppressed mycorrhizal-activated defense responses in host roots. Unexpectedly, exogenous myristate reduced the mycorrhizal phosphorus benefits for both alfalfa and rice and decreased their symbiotic carbon allocation to root-colonizing AMF, suggesting that the application of exogenous myristate may not be a promising strategy to enhance AM symbiosis. These findings provide new insights into understanding and manipulating the nutritional interactions between AMF and host plants.

ecology↗