International Journal of Molecular Sciences (Jan 2020)

Systematic Analysis of the Maize <i>OSCA</i> Genes Revealing <i>ZmOSCA</i> Family Members Involved in Osmotic Stress and <i>ZmOSCA2.4</i> Confers Enhanced Drought Tolerance in Transgenic <i>Arabidopsis</i>

  • Liru Cao,
  • Pengyu Zhang,
  • Xiaomin Lu,
  • Guorui Wang,
  • Zhenhua Wang,
  • Qianjin Zhang,
  • Xin Zhang,
  • Xin Wei,
  • Fujian Mei,
  • Li Wei,
  • Tongchao Wang

DOI
https://doi.org/10.3390/ijms21010351
Journal volume & issue
Vol. 21, no. 1
p. 351

Abstract

Read online

OSCAs are hyperosmolality-gated calcium-permeable channel proteins. In this study, two co-expression modules, which are strongly associated with maize proline content, were screened by weighted correlation network analysis, including three ZmOSCA family members. Phylogenetic and protein domain analyses revealed that 12 ZmOSCA members were classified into four classes, which all contained DUF221 domain. The promoter region contained multiple core elements responsive to abiotic stresses and hormones. Colinear analysis revealed that ZmOSCAs had diversified prior to maize divergence. Most ZmOSCAs responded positively to ABA, PEG, and NaCl treatments. ZmOSCA2.3 and ZmOSCA2.4 were up-regulated by more than 200-fold under the three stresses, and showed significant positive correlations with proline content. Yeast two-hybrid and bimolecular fluorescence complementation indicated that ZmOSCA2.3 and ZmOSCA2.4 proteins interacted with ZmEREB198. Over-expression of ZmOSCA2.4 in Arabidopsis remarkably improved drought resistance. Moreover, over-expression of ZmOSCA2.4 enhanced the expression of drought tolerance-associated genes and reduced the expression of senescence-associated genes. We also found that perhaps ZmOSCA2.4 was regulated by miR5054.The results provide a high-quality molecular resource for selecting resistant breeding, and lay a foundation for elucidating regulatory mechanism of ZmOSCA under abiotic stresses.

Keywords