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February 8, 20260 citationsOpen Access

Genome-Wide Identification and Characterization of the Maize ZmGT14 Gene Family Reveals ZmGT14-36 as a Drought-Responsive Gene Interacting with UGT85A2

MSMinghao SunYLYunlong LiSLSinan Li

Key Points

  • This research aims to characterize the ZmGT14 gene family and identify genes involved in maize drought response.
  • Identified 42 ZmGT14 gene family members through genome-wide analysis.
  • Conducted phylogenetic and structural analyses to assess gene relationships.
  • Performed promoter analysis to identify stress-responsive elements.
  • Used transcriptomic profiling and RT-qPCR to evaluate gene expression under drought conditions.
  • Conducted Yeast Two-Hybrid (Y2H) assays to probe protein interactions.
  • Identified 42 members of the ZmGT14 gene family distributed across 10 chromosomes.
  • ZmGT14-36 expression increased approximately 30-fold after 36 hours of drought treatment.
  • Demonstrated that ZmGT14-36 interacts physically with UGT85A2, relevant to redox homeostasis.

Abstract

Drought stress significantly disrupts plant water balance and cell wall integrity, thereby inhibiting growth and development. The Glycosyltransferase 14 (GT14) family plays a pivotal role in cell wall biosynthesis and environmental stress responses; however, the mechanisms underlying its involvement in the drought response of maize (Zea mays L.) remain elusive. In this study, we identified 42 ZmGT14 members distributed across 10 chromosomes by genome-wide analysis. Phylogenetic relationships, gene structures, and conserved motif analyses indicated high intra-subfamily conservation. Promoter analysis revealed that ZmGT14 genes are enriched with various stress-responsive elements, including ABRE, DRE, and MBS. Transcriptomic profiling and RT-qPCR verification demonstrated that the expression of ZmGT14-36 increased by approximately 30-fold within 36 h of drought treatment. Further screening and point-to-point Yeast Two-Hybrid (Y2H) assays identified that ZmGT14-36 physically interacts with UGT85A2, a protein associated with redox homeostasis. These findings provide preliminary evidence that ZmGT14-36 may participate in the drought resistance response in maize. Collectively, our study elucidates the molecular evolutionary characteristics of the ZmGT14 family and provides a key candidate gene for the molecular breeding of drought-tolerant maize varieties.

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Cite This Study

Sun et al. (2026) studied this question.

synapsesocial.com/papers/6988290a0fc35cd7a8849127https://doi.org/10.3390/plants15030512
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