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Chaudhary, V. B.

Publications and source records attributed to Chaudhary, V. B..

2 recordsLinked to original sources

Unique soil fungal communities are associated with disappearing ash trees in a northern temperate hardwood forest

Native ash trees are destined for functional extinction in North America due to the spread of the non-native emerald ash borer. Yet, the consequences of ash loss for soil fungi are unclear. To address this, we employed a factorial study of forest soil fungi in two hydropedological soil types beneath four canopy tree species -- including white ash (Fraxinus americana). Sporocarp surveys and community DNA metabarcoding from soil samples revealed patterns in fungal communities related to canopy tree species but not soil type. Ash trees supported a particularly rich soil fungal community that was distinguishable from communities beneath beech, birch, and maple. We identified over 100 fungal taxa (OTUs) that are at risk of decline or loss from the studied forest, due to their association with ash. Our results indicate that canopy tree species influence soil fungi much more broadly than just the species with which they have mycorrhizal associations.

ecology↗

Climate-linked biogeography of mycorrhizal fungal spore traits

Climate-driven variation in microbial traits is crucial for predicting ecological responses to environmental change, yet global patterns remain understudied. Using global datasets of arbuscular mycorrhizal (AM) fungal observations linked to spore morphology, we show that climate gradients shape spore trait variation and functional diversity. Temperature and precipitation emerged as key drivers, influencing species range size and trait-environment relationships through trade-offs. Larger spore volumes were more prevalent in warm, wet, stable climates but were associated with smaller species range sizes, suggesting a trade-off between persistence and dispersal potential. Spores with ornamentation were also more prevalent in warm, wet climates and linked to restricted range sizes, possibly reflecting specialization to specific environmental conditions. Cell wall investment decreased in warmer, wetter climates, and was the strongest predictor of species range size, with intermediate investment associated with broader geographic distributions. Spore shape and color also exhibited climate-driven patterns, with spherical spores and greater pigmentation more common in warm, wet climates. Phylogenetic analyses revealed high trait conservatism for spore ornamentation, moderate for volume, low for color, and none for shape and cell wall investment. Additionally, functional diversity analyses revealed that warm, wet environments promote within-community trait richness but lower trait divergence, while broader climatic variability drives higher beta diversity. These findings highlight the role of climate in shaping microbial trait biogeography and suggest that evolutionary history constrains some traits while others are adaptable, suggesting that ongoing climate change may restructure AM fungal distributions, impacting plant-fungal interactions, nutrient cycling, and ecosystem stability. Significance statementA trait-based approach in microbial ecology helps explain how the environment shapes microbial traits, yet global patterns remain largely unknown. This study provides the first global assessment of climate influence on arbuscular mycorrhizal (AM) fungal spore traits. We identify key trade-offs between trait persistence and species range size, demonstrating that temperature and precipitation are primary drivers of spore volume, ornamentation, cell wall investment, shape, and color. These findings highlight the role of broad climatic patterns in shaping microbial communities and suggest that ongoing environmental change may alter AM fungal distributions, potentially disrupting plant-fungal interactions, soil health, and ecosystem stability.

ecology↗