Skip to content

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 Aug 2026

A vitamin B3–driven root bacterial metabolite primes systemic immunity in Arabidopsis

The microbiota is being increasingly recognized for its ability to regulate host physiology through the production of small bioactive molecules. However, how host-derived nutrients are metabolically transformed by root-associated microbes to influence plant immunity remains poorly understood. Here, we show that vitamin B3 (VB3; niacin) secreted by plant roots shapes the assembly of a functionally specialized root microbiota, which, in turn, metabolizes VB3 into an immune-active signal that enhances plant disease resistance. VB3 secretion selectively increases the abundance of root-associated bacteria harboring a conserved nic biosynthetic gene cluster (BGC), which enables the conversion of VB3 into 6-hydroxynicotinate (6-OHNA), a previously uncharacterized microbial metabolite involved in plant-microbe interactions. Microbially produced 6-OHNA is transported from roots to shoots, where it primes systemic immune responses in a salicylic acid–dependent manner. Disruption of the microbial nic BGC abolishes immune priming, whereas increased VB3 exudation from plant roots enhances disease resistance. Together, these findings reveal a metabolically mediated dialog between plant hosts and their microbiota that links host nutrient secretion to microbial functional specialization and the activation of systemic plant immunity.

Xue-Mei Wang, Peng Jiang, Xin-Dan Xu et al. · 0 citations
Open access Jul 2026

An Artificially Selected Cytokinin‐Pathway Transcription Factor Balances Soybean Yield and Pathogen Resistance

ABSTRACT Soybean contributes to sustainable food and feed production, but some modern varieties favor yield at the cost of disease resistance. Using a bottom‐up approach, we demonstrate that the RR2b transcription factor activates cytokinin signaling for plant growth and reproductive fitness but represses disease‐resistance and root‐nodulation pathways. RR2b was artificially selected during domestication and improvement, and its expression level correlate with ATT repeat polymorphisms in its promoter. Most wild soybeans and landraces have either more or less ATT repeats: more repeats lead to weak RR2b expression with lower yield and enhanced resistance to soybean bacterial blight, and fewer repeats cause strong RR2b expression, higher yield, but reduced blight resistance. Elite cultivars instead balance yield and defense via moderate RR2b expression and several ATT repeats. This confers contrasting RR2b functionality across haplotypes in response to contrasting selection pressures and offers insights into decoupling trade‐offs between yield and blight resistance to enhance crop productivity.

Qun Ma, Yaqing Chen, Yiwen Gao et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.