Evidence map›Paper›PMID 42277708›Full record

ArticleBMC plant biology2026

Genome-wide identification of WRKY gene family reveals its regulatory role in ABA/CBF-mediated cold adaptation in king grass (Pennisetum purpureum × P. americanum).

Xianjun Lai, Qimeng Xiao, Zihan Chen, Siqi Liu, Junfeng Yan, Yizheng Zhang, Lang Yan

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Article in BMC plant biology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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7 authors.

Xianjun LaiPanxi Crops Improvement Key Laboratory of Sichuan Province, College of Agriculture Science, Xichang University, liangshan, China.
Qimeng XiaoPanxi Crops Improvement Key Laboratory of Sichuan Province, College of Agriculture Science, Xichang University, liangshan, China.
Zihan ChenPanxi Crops Improvement Key Laboratory of Sichuan Province, College of Agriculture Science, Xichang University, liangshan, China.
Siqi LiuPanxi Crops Improvement Key Laboratory of Sichuan Province, College of Agriculture Science, Xichang University, liangshan, China.
Junfeng YanChengdu Ke'an Technology Co., Ltd, Chengdu, China.
Yizheng ZhangSichuan Key Laboratory of Molecular Biology and Biotechnology, College of Life Sciences, Sichuan University, Chengdu, China.
Lang YanPanxi Crops Improvement Key Laboratory of Sichuan Province, College of Agriculture Science, Xichang University, liangshan, China. langyan0807@hotmail.com.

Funding

National Natural Science Foundation of China 32160329
6 · The paper itself

Abstract

backgroundKing grass is a fast-growing C4 perennial with high biomass potential, yet its productivity is limited by cold stress. WRKY transcription factors (TFs) regulate abiotic stress responses, but their roles in king grass cold adaptation remain unclear.

methodsWRKY TFs were identified genome-wide using BLASTP and HMMER, followed by phylogenetic classification, transcriptome profiling, promoter cis-element analysis, weighted gene co-expression network analysis (WGCNA), molecular docking, and yeast heterologous expression assays.

resultsSixty-two PsiWRKY genes were identified and classified into three groups. Time-series transcriptome analysis across nine cold-stress time points revealed four expression patterns, with 29 genes significantly induced (> 2-fold), mainly during late acclimation (48-72 h). qRT-PCR confirmed RNA-seq trends (R² = 0.742). Functional enrichment and WGCNA analyses indicated that cold-responsive PsiWRKYs coordinate abscisic acid-gibberellin antagonism and sugar metabolism. Molecular docking predicted interactions between PsiWRKY proteins and Calvin cycle enzymes, with PsiWRKY16 and PsiWRKY55 showing the highest structural confidence (pTM > 0.75). Network analysis identified PsiWRKY16 and PsiWRKY50 as hub regulators linking GA signaling genes (GID1/DELLA) with sugar metabolism enzymes such as GAPDH and PRK. Yeast assays quantitatively confirmed enhanced cold tolerance, as heterologous expression of PsiWRKY16 reduced doubling time by 0.56 h and increased area under the curve and carrying capacity by 26.20 and 3.39, respectively, while PsiWRKY50 increased these values by 14.45 and 1.43. Promoter analysis showed enrichment of ABRE and DRE elements (p = 0.00061), and integrative target prediction identified 193 genes co-regulated by WRKY and CBF pathways, supporting ABA-CBF signaling convergence.

conclusionsPsiWRKYs exhibit subgroup-specific and time-resolved responses to cold stress. PsiWRKY16, PsiWRKY50, and PsiWRKY55 are implicated in coordinating hormonal signaling and metabolic reprogramming, providing candidate targets for cold-tolerant breeding in king grass.

Indexed as

Abscisic AcidPennisetumPlant ProteinsTranscription FactorsCold-Shock ResponseCold TemperatureGene Expression ProfilingGene Expression Regulation, PlantMultigene FamilyPhylogenyAbscisic AcidPlant ProteinsTranscription FactorsABA/CBFsignlingCold stressKing grassTranscriptome analysisWRKY transcription factors

Identifiers

PMID42277708
PMCPMC13483852

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