Through heterologous expression in Arabidopsis, this study systematically unveiled for the first time the pivotal role of LsPROG in plant growth, development, and stress responses, with its functional characteristics elucidated via cross-validation with multiple experimental approaches.
Abstract
Background
Leymus secalinus, a perennial grass in the Poaceae family, exhibits multiple stress resistances including drought, salt-alkali, and trampling tolerance, with developed rhizomes enabling adaptation to harsh environments such as sand dunes, thus holding significant value for grassland improvement and forage breeding.
Results
This study functionally characterized the stress-related LsPROG gene of L. secalinus, revealing that it encoded a 184-amino acid protein. Subcellular localization showed that it was localized to the cell membrane, and contained a conserved zinc-finger domain indicative of potential transcriptional regulatory functions. Using Arabidopsis as a heterologous system, we generated 35S:LsPROG overexpressing Arabidopsis lines. In Arabidopsis transgenic lines, we confirmed that LsPROG significantly promoted lateral root development (about 2-fold) and significantly increased leaf number (by about 1.5-fold at the seedling stage) in transgenic lines compared to the Col-0. Notably, under drought, salt (NaCl), and ABA stresses, the 35S:LsPROG transgenic lines exhibited significantly even more pronounced phenotypic advantages over the Col-0 including improved root system development in seedlings (specifically higher lateral root numbers under drought and enhanced primary root growth under salt/ABA) and better overall plant growth, accompanied by significantly enhanced activities of antioxidant enzymes (SOD increased by 35%, POD increased by 40%).
Conclusion
Through heterologous expression in Arabidopsis, this study systematically unveiled for the first time the pivotal role of LsPROG in plant growth, development, and stress responses, with its functional characteristics elucidated via cross-validation with multiple experimental approaches. These findings lay a critical theoretical foundation for the future breeding of high-quality forage varieties.
It is demonstrated that PlPAT1 functions as a positive regulator of salt stress tolerance, likely through modulating osmotic balance and enhancing reactive oxygen species scavenging capacity.
Jian Cai, Xuemei Zhang, Cong Yan et al.· BMC Genomics· 0 citations
Analysis of the role of a cyclophilin gene PoxCYP62-2, isolated from a halotolerant strain of Penicillium oxalicum, in abiotic stress tolerance of plants suggests that PoxCYP62-2 gene is a potential candidate for enhancing cold stress-tolerance of crop plants.
Anantika Suri, Mangaljeet Singh, Anish Kaachra et al.· Transgenic research· 0 citations
Drought stress severely restricts the growth and yield of woody nut crops. The xyloglucan endotransglucosylase/hydrolase (XTH) gene family participates in plant developmental and stress responses, yet its functions in pecan (Carya illinoinensis) under water limitation remain largely uncharacterized. Here, we performed a genome-wide identification of the XTH family in pecan, identifying 34 members distributed across four phylogenetic clades. Transcriptome-based expression analysis showed that several CiXTH genes responded to drought stress, among which CiXTH18 exhibited strong and sustained induction. To investigate its function, CiXTH18 was overexpressed in Arabidopsis thaliana. Under PEG-induced osmotic stress, CiXTH18-overexpressing lines exhibited significantly prolonged primary root lengths compared to wild-type plants. Furthermore, detached leaf assays revealed that transgenic plants had lower water loss rates under dehydration conditions. In addition, DAB staining indicated reduced H2O2 accumulation in CiXTH18-overexpressing plants under osmotic stress. Quantitative real-time PCR analysis revealed that the drought-responsive gene DREB2A and the ABA biosynthesis-related gene NCED3 were more strongly induced in transgenic lines than in wild-type plants after PEG treatment. Promoter activity assays confirmed that CiXTH18 was responsive to ABA treatment. Collectively, our findings indicate that heterologous expression of CiXTH18 is associated with improved performance of Arabidopsis under PEG-induced osmotic stress and support CiXTH18 as a promising candidate for further functional investigation.
Together, these findings provide a foundation for functional characterization and useful information for future research on the role of SlPHD family members in plant abiotic stress tolerance.
Tayeb Muhammad, Tao Yang, Haitao Yang et al.· Planta· 0 citations