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Metataxonomic insights into the effects of enhanced nitrogen addition on the bacterial communities in the tropical paddy soil of West Bengal, India

Chakraborty, S.; Sar, P.

2025-12-03 microbiology
10.64898/2025.12.02.691912 bioRxiv
Show abstract

In relation to global rice cultivation, nitrogen (N) is fundamental for paddy soil and crop productivity; however, the exploitation of synthetic N fertilisation in the global agri-food system has emerged as a major environmental concern. In this study, the effects of various synthetic N-compounds on paddy soil bacterial communities, including species abundance, diversity, and interactions, were investigated under four different N-amended [NO2-, NO3-, NH4+, and urea] conditions using a microcosm-based culturomics approach. The N-amendments altered soil properties, adversely impacting microbial abundance, diversity, and community composition. The 16S rRNA gene qPCR and amplicon sequencing indicated a negative effect of N on bacterial and archaeal abundance, species diversity, and richness. Our analyses revealed the predominance and cosmopolitan distribution of Proteobacteria, Bacilli, Anaerolineae, and Bacteroidota, their extensive adaptability and metabolic versatility under different N-amended conditions. Soil microbial community exhibited distinct responses to added N-substrates, with some bacterial taxa (Sphingomonadales) showing enhanced abundances while others were inhibited (Thermodesulfovibrionia and Clostridiales). The core-community across N-amended sets exhibited 68% taxonomic variation from its native counterpart, with two most abundant members of native soil, Nitrosomonadaceae and Beijerinckiaceae, diminishing, while Bacillaceae, Pseudomonadaceae, and Sphingomonadaceae became more prominent and resilient under N-amended conditions. The co-occurrence network highlighted that though total and core soil communities responded to N-amendments with an increased abundance of copiotroph bacteria, oligotrophs thrived under nutrient-limited conditions, serving as keystone taxa during prolonged fertilisation. These findings elucidate how synthetic N inputs restructure paddy soil microbiomes and alter their ecological functioning.

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