Aug 2026· New Zealand journal of crop and horticultural science· 0 citations· 37 references
TL;DR
It is suggested that exogenous SNP enhances drought tolerance by promoting cuticular wax accumulation and improving physiological performance, providing new insights into the role of SlKCS genes in drought adaptation.
Abstract
3‐Ketoacyl‐CoA synthase (
KCS
) genes are essential for the biosynthesis of cuticular wax and very‐long‐chain fatty acids, which are key adaptation mechanisms for drought tolerance in plants. Nitric oxide (NO) is a well‐established signaling molecule implicated in plant abiotic stress responses, although its involvement in regulating KCS‐mediated wax biosynthesis during drought remains poorly understood. In this study, 21
SlKCS
genes were identified in the tomato (
Solanum lycopersicum
) genome through genome‐wide analysis. These genes were unevenly distributed across 12 chromosomes, with six duplicated gene pairs evolving under strong purifying selection. Synteny analysis revealed greater collinearity with
Glycine
max
than with the monocot
Oryza sativa
, consistent with the evolutionary divergence between dicot and monocot lineages. Promoter analysis identified 81
cis
‐regulatory elements, including 19 stress‐responsive motifs such as MYC, MYB, STRE, and ABRE, suggesting the involvement of
SlKCS
genes in abiotic stress responses. Based on these findings, the expression of four representative genes (
SlKCS5
,
SlKCS7
,
SlKCS12
, and
SlKCS20
) was examined under nitric oxide donor sodium nitroprusside (SNP), drought stress, and combined SNP + drought treatments, using qRT‐PCR. All four genes exhibited treatment‐dependent expression patterns, with
SlKCS20
showing the strongest response, reaching approximately 58‐fold higher expression under drought stress. Drought stress also significantly increased cuticular wax accumulation in both leaves and stems, while combined SNP and drought treatment resulted in the greatest wax deposition, particularly in stems. These changes were accompanied by reduced leaf water loss, increased chlorophyll content, and partial recovery of the net photosynthetic rate under drought stress. Together, these findings suggest that exogenous SNP enhances drought tolerance by promoting cuticular wax accumulation and improving physiological performance, providing new insights into the role of
SlKCS
genes in drought adaptation.
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
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.
Yanfu Jing, Yang Yu, Zimin Xiao et al.· International Journal of Mol...· 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
FaNAC6 was selected for its strong induction in leaves and roots in response to drought and salinity, as well as under oxidative stress and ABA, and was associated with the upregulation of genes involved in photosystems, electron transport and carbon fixation.
Facundo Spadoni-Revol, M. D. Moreno-Recio, Sara Aguado-Delgado et al.· International Journal of Mol...· 0 citations
AP2/ERF (APETALA2/ethylene-responsive factor) represents one of the largest transcription factor superfamilies in plants, playing crucial roles in regulating plant growth and development as well as responding to abiotic stresses. Investigating the functions of maize (Zea mays L.) AP2/ERF family genes will provide novel genetic resources for maize genetic improvement. In this study, the AP2/ERF transcription factor superfamily member ZmEREB54 (GRMZM2G020054, Gene ID: 100,278,463) was cloned from maize and was systematically analyzed functionally. The full-length CDS of ZmEREB54 gene was 561 bp, encoding 186 amino acids with a typical AP2/ERF conserved domain. Its promoter region contained cis-acting elements associated with responses to various abiotic stresses and hormones. Maize expression pattern analysis revealed that ZmEREB54 was highly expressed in V12 roots, with significant expression changes under osmotic stress, drought, high salinity, and treatments with abscisic acid (ABA) and jasmonic acid (JA). Phenotypic analysis showed that transgenic Arabidopsis thaliana over-expressing ZmEREB54 exhibited significantly longer roots compared to wild-type plants under high salinity, drought, osmotic stress, and hormone treatments (JA, ABA). Stress-responsive marker genes RD29A and RD22 were upregulated in the transgenic A. thaliana lines. The significantly decreased malondialdehyde (MDA) accumulation and markedly increased peroxidase (POD) activity in transgenic A. thaliana further demonstrate the improvement of its stress tolerance. Yeast two-hybrid (Y2H) assays revealed an interaction between ZmEREB54 and ZmMADS24.6, suggesting potential cooperative regulation of ZmEREB54 and ZmMADS24.6 in maize root development and stress responses. This study establishes a solid foundation for further clarifying the biological functions and molecular mechanisms of ZmEREB54 in regulating maize root growth and development, as well as responding to drought and salt stresses.
Yu-Qian Gao, Jun-Xia Wang, D. Zheng et al.· BMC Plant Biology· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.