Sphingobium yanoikuyae 41R9 significantly boosts nitrogen uptake and root development in rapeseed, increasing nitrogen use efficiency by up to 50%.
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Moving in bioRxiv, Plant Physiology and Biochemistry, Plant, Cell & Environment, Nature Microbiology, Applied and environmental microbiology, Cell Reports, mSystems, The ISME Journal.
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Sphingobium yanoikuyae 41R9 significantly boosts nitrogen uptake and root development in rapeseed, increasing nitrogen use efficiency by up to 50%.
Wild rice gene OsRLK, mainly found in Oryza rufipogon, enhances nitrogen-use efficiency by promoting beneficial Acinetobacter microbiota, boosting crop yield.
Proteomic and metabolomic profiling uncovers 1,018 Medicago truncatula proteins in symbiosomes, revealing key transporters and metabolic activities essential for nitrogen fixation.
MtTCTP3 acts as a positive regulator of nodulation, with overexpression increasing nodule formation by 50% and silencing reducing nodules and nitrogenase activity in Medicago truncatula.
Polysaccharides like pectin and xyloglucan are crucial for the structural integrity of root extracellular traps in Pisum sativum and Glycine max, showing high resistance to enzymatic breakdown.
A microbial consortium enables 50% reduction in nitrogen fertilizer for maize without yield loss over three years.
Functional diversity, rather than taxonomy, drives bacterial recruitment into plant root microbiomes across different hosts and environments.
Ecological and evolutionary processes jointly cause a 50% decline in host benefit in legume-rhizobium mutualism after 33 years of nitrogen fertilization.
Inoculation with Azospirillum brasilense and Pseudomonas fluorescens enhances nutrient absorption and soil carbon retention, mitigating warming effects on tropical forage productivity.
Pseudomonas sp. M25 enhances drought tolerance in Arabidopsis thaliana by increasing root hair growth, with a 2- to 3-fold rise in root hair length and abundance.
Population genetics models reveal that long-lived hosts have higher probabilities of fixing heritable symbionts, shaping the evolution of host-microbe relationships.
Indigenous rhizospheric microbes significantly reduce root-knot disease and enhance growth and yield in green gram, with some isolates decreasing nematode reproduction by up to 77%.
Concurrent increases in root phosphorus acquisition and leaf phosphorus resorption enhance phosphorus economy in Cicer arietinum during reproduction, with a 28% rise in leaf P remobilization.
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