Jul 2026· International Journal of Molecular Sciences· Vol 27· 0 citations· 80 references
Medicine
TL;DR
The results of STRING-based computer simulations predicting protein–protein interactions indicate that PpTCP3 and PpTCP5 interact with key hormone pathways and stress-related transcription factors (TFs), including auxin signaling and strigolactone signaling.
Abstract
The TCP (Teosinte branched 1/Cycloidea/Proliferating) gene family comprises plant-specific transcription factors essential for regulating growth, development, and environmental adaptation. Utilizing the high-quality ‘Rui Youpan 1’ (‘RYP1’) reference genome, we conducted a comprehensive genome-wide identification and characterization of the TCP family in peach (Prunus persica). We identified 20 PpTCP genes and systematically evaluated their physicochemical properties, chromosomal distribution, phylogeny, gene architecture, and promoter cis-regulatory elements. Notably, the enrichment of abscisic acid-responsive elements (ABREs) in their promoters suggests a significant role in abiotic stress signaling. Integrated RNA-seq and RT-qPCR analyses identified six putative candidates (PpTCP3, 5, 6, 11, 14, and 15) with pronounced differential expression under drought conditions. Subcellular localization confirmed that all tested PpTCPs function within the nucleus. Moreover, the results of STRING-based computer simulations predicting protein–protein interactions indicate that PpTCP3 and PpTCP5 interact with key hormone pathways and stress-related transcription factors (TFs), including auxin signaling and strigolactone signaling.
The GmWIP gene family has expanded substantially in soybean relative to previously characterized species and shows genotype-dependent transcriptional responses to salt stress, suggesting that specific GmWIP members are candidate regulators of salt tolerance and warrant further functional investigation.
Tianjiao Gao, Shuping Yan, S. F. Lamlom et al.· Genes· 0 citations
Introduction Drought is a major abiotic stress limiting the growth and ecological adaptation of tropical and subtropical trees. The SnRK2 gene family is a core regulator in ABA signaling and drought response pathways. However, genome-wide identification and functional characterization of the SnRK2 family remain unclear in Bombax ceiba, a typical drought-tolerant tropical pioneer tree species with important ecological and economic value. Methods We performed genome-wide identification of the BcSnRK2 gene family using bioinformatics approaches. Phylogenetic relationships, gene structures, conserved motifs, cis-acting elements, chromosomal localization, and protein structures were systematically analyzed. Subcellular localization was verified by transient expression in Nicotiana benthamiana. Tissue-specific expression and drought-responsive patterns were detected by qRT-PCR under 10% PEG6000 treatment. Protein–protein interaction networks were predicted using the STRING database. Results A total of nine BcSnRK2 genes were identified and unevenly distributed across eight chromosomes. All BcSnRK2 proteins contained conserved kinase domains and shared a highly conserved exon–intron structure. Promoter regions harbored abundant ABA-responsive and stress-related cis-elements. BcSnRK2 genes exhibited distinct tissue-specific expression profiles. All genes were significantly induced by drought stress in a tissue- and time-dependent manner, with BcSnRK2.9 and BcSnRK2.7 showing strong and sustained activation in shoots and BcSnRK2.7 and BcSnRK2.3 responding prominently in roots. BcSnRK2 proteins were localized in the cytoplasm, plasma membrane, and nucleus, and were predicted to interact with core components of the ABA signaling pathway. Discussion The BcSnRK2 family exhibits evolutionary conservation and functional divergence in Bombax ceiba. The compact size of the SnRK2 family, conserved structural features, and distinct tissue-specific drought response patterns are consistent with a streamlined stress signaling system that may contribute to the ecological adaptation of Bombax ceiba in seasonally dry tropical environments, although formal evolutionary analyses are required to establish adaptive significance. This study provides valuable gene resources for drought resistance breeding of woody plants and advances the understanding of stress signaling mechanisms in tropical trees.
Yu-Mei Shi, Zhifang Zhang, Ruoxin He et al.· Frontiers in Plant Science· 0 citations
Together, these findings provide a foundation for functional characterization and useful information for future research on the role of SlPHD family members in plant abiotic stress tolerance.
Tayeb Muhammad, Tao Yang, Haitao Yang et al.· Planta· 0 citations
An extensive genome-wide study of the DUF668 gene family in potato demonstrated that StDUF668s play a role in crucial biological processes, involving abiotic and biotic stress responses, and provided a valuable resource for future research aimed at improving potato stress tolerance and growth.
Aiana Gill, Tanvi Mongia, Garima Kakkar et al.· Journal of Applied Genetics· 0 citations
It is demonstrated that heterologous expression of TksPLATZ1, TksPLATZ2 and TksPLATZ7 localize to the cell nucleus and act as transcriptional activators and repressors, respectively, which enhances the tolerance of Arabidopsis to salt and osmotic stress.
Jinxian Chen, Wenhao Wu, Ming-Hua Luo et al.· Phytochemistry· 0 citations