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Open access Sep 2026

Proteome-wide profiling of lysine β-hydroxybutyrylation in Reynoutria japonica (Huzhang) and its dynamics under hydrogen sulfide stress.

Reynoutria japonica is both an important industrial source of resveratrol and a medicinal plant notable for its strong environmental adaptability. However, its responses to hydrogen sulfide (H2S), a key environmental signaling molecule, remain largely unexplored. Lysine β-hydroxybutyrylation (Kbhb) is a newly identified short-chain fatty acylation, but its role in regulating plant stress responses is unclear. Here, we performed the first proteome-wide profiling of Kbhb in R. japonica, identifying 17,102 high-confidence sites across 6185 proteins. Motif analysis revealed six conserved motifs. Functional enrichment analysis revealed that Kbhb-modified proteins are predominantly involved in core carbon and energy metabolism, with extensive modifications on enzymes related to acetyl-CoA flux, β-hydroxybutyrate metabolism, and the biosynthesis of resveratrol and anthraquinones. Under NaHS-imposed H2S stress, short-term exposure (3 h) triggered ROS accumulation and increased global Kbhb levels, particularly on histones H3 and H2A, suggesting an early signaling or chromatin-associated response; prolonged exposure reduced chlorophyll content and decreased Kbhb abundance. Pharmacological inhibition and in planta transient assays identified RjapHDA5L and RjapHDA9L as potential candidate regulators that regulate Kbhb modification's homeostasis. Furthermore, functional validation in a yeast heterologous expression system demonstrated that increasing Kbhb levels via β-hydroxybutyrate (BHB) or HDAC inhibitor treatment significantly enhanced the enzymatic activity of isocitrate dehydrogenase (IDH), a key TCA cycle enzyme. These findings indicate that Kbhb serves as a functional activator of core metabolic enzymes. Our study provides the first global landscape of Kbhb in R. japonica and establishes a molecular foundation for understanding how Kbhb dynamics regulate plant metabolism and epigenetic adaptation under environmental stress.

Lei You, Yu-Jie Deng, Yang-Fan Zhang et al. · 0 citations
Sep 2026

A root-cap-specific transcriptional network controls root hair elongation and nutrient foraging.

Root hairs (RHs) are critical for nutrient acquisition, yet the mechanisms by which their elongation is calibrated to environmental cues remain poorly understood. While the lateral root cap (LRC) physically encases the root tip, its potential regulatory role in determining the fate of the neighboring epidermis has been largely overlooked. In this study, we demonstrate that the persistence of LRC is required for a transient signaling hub that remotely controls RH elongation in Arabidopsis. The LRC-localized NAC transcription factor SOMBRERO acts as the integrative hub of an auxin-driven communication pathway between the LRC and epidermis. Specifically, ANAC033/SOMBRERO (SMB) coordinates auxin transport and biosynthesis by regulating the expression of AUX1 and the indole-3-butyric acid (IBA)-to-IAA conversion gene ECH2, which cooperatively create auxin maxima in the epidermis to drive RH elongation. Furthermore, we showed that SOMBRERO is required for maintaining basal expression levels of genes associated with RH development and acquisition of nitrogen and phosphorus, thereby regulating the RH responses to external nutrient conditions. Our findings uncover a non-cell-autonomous mechanism within the LRC through which SMB activates a precise transcriptional circuit that is coordinated with the LRC developmental program to optimize RH foraging strategies under fluctuating environments.

Zhen Wang, Yuan-Da Lv, Lu-Lu Zheng et al. · 0 citations

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