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March 23, 2026Physiologia Plantarum0 citations

The Bermudagrass CdbZIPs ‐ CdsHSP16.970 Regulatory Module Enhances Osmotic Stress Tolerance in Arabidopsis

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DYDi YangWWWeiliang WangXYXiaoqu Yi

Key Points

  • The research aims to investigate how small heat shock proteins (sHSPs) and associated regulatory factors contribute to drought tolerance in Arabidopsis.
  • Characterization of 99 sHSPs in bermudagrass
  • Analysis of gene expression under drought stress
  • Overexpression of CdsHSP16.970 in transgenic Arabidopsis
  • Assessment of root elongation and seedling growth performance
  • Evaluation of electrolyte leakage and malondialdehyde levels
  • CdsHSP16.970 was significantly induced under drought stress
  • Overexpression improved root elongation and seedling growth under osmotic stress
  • CdsHSP16.970-OE plants showed reduced electrolyte leakage and lower malondialdehyde levels
  • Induction of several stress-related genes in CdsHSP16.970-OE plants
  • CdbZIP04 and CdbZIP65 directly bind to the CdsHSP16.970 regulatory region

Abstract

ABSTRACT Small heat shock proteins (sHSPs) act as molecular chaperones that protect other proteins from damage caused by stress‐induced denaturation. Bermudagrass ( Cynodon dactylon L.) is a broadly adopted forage and turfgrass known for its capability to withstand various abiotic stresses. However, the biological pathways by which sHSPs promote drought tolerance in bermudagrass remain unclear. In this study, 99 sHSPs were characterized in the bermudagrass genome. Drought stress led to the induction of the majority of these genes with CdsHSP16.970 showing the most significant induction. Overexpression (OE) of CdsHSP16.970 promoted root elongation and improved seedling growth performance in transgenic Arabidopsis lines under osmotic stress, with reduced electrolyte leakage (EL) and lower malondialdehyde (MDA) deposition compared with the control. Meanwhile, several stress‐related genes were significantly induced in CdsHSP16.970‐ OE plants when subjected to osmotic stress compared to the control group. Two basic leucine zipper transcription factors, CdbZIP04 and CdbZIP65, were also induced by drought stress in bermudagrass. Further investigation using electrophoretic mobility shift assay, yeast one‐hybrid and dual‐LUC assays revealed that they directly and specifically bind to the upstream regulatory region of CdsHSP16.970 , consequently promoting its expression. In summary, our results suggest that the CdbZIPs– CdsHSP16.970 cascade positively regulates the osmotic stress signaling pathway in bermudagrass.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/69c0e016fddb9876e79c1a04https://doi.org/10.1111/ppl.70850
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