Aug 2026· Agriculture· Vol 16, pp. 1712· 0 citations· 51 references
TL;DR
This study provides a fundamental framework for exploring the regulatory functions of the wheat PR10/Bet v 1 family, and valuable hormone-responsive candidate genes for the genetic improvement of wheat agronomic traits.
Abstract
Wheat is a globally important staple crop, whose growth and yield formation rely on the precise regulation of phytohormone signaling. The PR10/Bet v 1 (Pathogenesis-related protein 10/Betula verrucosa 1) family consists of conserved small-molecule ligand-binding proteins that participate in phytohormone signaling and plant development; however, systematic investigations of this family in wheat remain limited. Here, we performed a genome-wide identification of 75 PR10/Bet v 1 members in wheat, which were phylogenetically classified into three subfamilies: 21 known members belonging to the PYL (Pyrabactin resistance 1-like) subfamily, and 54 members assigned to two previously uncharacterized subfamilies. Bioinformatic analyses revealed that whole-genome/segmental duplication has driven the expansion of this gene family, which has evolved under strong purifying selection. Expression profiling and promoter analysis revealed differential expression patterns, along with abundant cis-acting elements responsive to multiple hormones. Quantitative RT-PCR (qRT-PCR) of 12 representative genes revealed marked transcriptional changes in several members within 1 h of treatment with BR (Brassinosteroid), ABA (Abscisic acid), CK (Cytokinin), or SA (Salicylic acid) suggesting that these genes may be directly involved in hormone-regulated processes. This study provides a fundamental framework for exploring the regulatory functions of the wheat PR10/Bet v 1 family, and valuable hormone-responsive candidate genes for the genetic improvement of wheat agronomic traits.
An evolutionary and transcriptional atlas of the wheat TaBSK family is delivered and candidate genes for functional validation and molecular breeding toward salt-tolerant wheat varieties are provided.
Yong-Tao Zhao, Jun-Sen Wang, Zhong-Zhou Zhang et al.· Current Issues in Molecular...· 0 citations
Sugar transporter proteins (STPs) play pivotal roles in hexose allocation and plant stress responses. However, systematic characterization of the STP family in tobacco (Nicotiana tabacum) and its involvement in Ralstonia solanacearum resistance remains unclear. In this study, 37 NtSTP genes were identified and classified into six groups, with Group VI being the most conserved and Group V exhibiting dicot-specific expansion. Gene structure and conserved motif analyses revealed that most NtSTP members possess the typical MFS_STP domain, although variations in exon-intron organization and motif composition suggested functional divergence. Tandem duplication (TD) served as the primary driver of NtSTP family expansion, and Ka/Ks values of all paralogous pairs were less than 1, indicative of purifying selection. Promoter cis-element analysis revealed a complex regulatory network involving hormone signaling (ABA, JA, SA, GA, ET), stress responses, and light signaling. RT-qPCR expression profiling revealed that ten NtSTP genes (NtSTP1, 5, 7, 21, 22, 24, 26, 27, 28, and 29) exhibited significant transcriptional upregulation upon R. solanacearum infection. Specifically, NtSTP5, NtSTP7, NtSTP21, NtSTP22, NtSTP24, NtSTP26, and NtSTP27 peaked at 12 h post-inoculation (hpi), whereas NtSTP1, NtSTP28, and NtSTP29 reached their highest expression levels at 24 hpi. By contrast, NtSTP6, NtSTP13, and NtSTP30 displayed reduced expression upon R. solanacearum infection. These expression patterns indicate functional diversification within the NtSTP family and imply that these members may be transcriptionally modulated during plant responses to R. solanacearum. The present work provides preliminary and valuable candidate gene resources that may facilitate future disease resistance breeding programs in tobacco.
Hua Xuan, Da-Yin Liu, Ren-Ying Xu et al.· Frontiers in Plant Science· 0 citations
A systematic analysis of the MtPLATZ gene family in M. truncatula is provided, offering a valuable reference for functional studies and genetic improvement of stress tolerance in legumes.
This study systematically characterized the Aux/IAA gene family in pumpkin, highlighting its evolutionary diversity, structural conservation, and distinct regulatory features and inform the potential roles of CmIAA genes in abiotic stress responses.
Genes encoding DUF568 domain-containing proteins participate in plant stress adaptation. To elucidate the functional role of DUF568 domain-containing genes in Trichoderma-induced wheat defense responses against wheat Fusarium crown rot, we performed a genome-wide identification and characterization of the TaDUF568 gene family in hexaploid wheat (Triticum aestivum L.). In this study, a total of 33 TaDUF568 family genes were systematically identified and characterized at the genome-wide level, exhibiting uneven chromosomal distribution and diverse physicochemical properties. Phylogenetic, structural, and collinearity analyses revealed conserved family characteristics among monocot species. Segmental duplication was verified as the primary driver of gene family expansion. Expression profiling revealed divergent tissue-specific expression patterns among TaDUF568 family members, among which TaDUF568.18 was strongly induced by Trichoderma M2. Subcellular localization assays confirmed that TaDUF568.18 is a plasma membrane-localized protein. Functional validation via stable transgenes demonstrated that overexpression of TaDUF568.18 restricted lesion expansion, improved agronomic traits, and enhanced disease resistance. This study is the first to characterize the wheat DUF568 family and confirm that TaDUF568.18 (annotated as TaAIR12) acts as a positive regulator of Trichoderma-mediated wheat defense, providing a valuable gene resource for wheat disease-resistance breeding.
Jun-Chang Li, Ying-Ying Jin, Ying-Xue Wang et al.· Plants· 0 citations
A comprehensive characterization of the expansin gene family in S. bicolor is provided and suggests their potential involvement in drought response through modulation of cell wall dynamics, offering a foundation for future functional studies and the development of drought-resilient sorghum varieties.
Hameed Gul, Shareef Gul, Muhammad Usama et al.· BMC Plant Biology· 0 citations
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