Genome-Wide Identification and Characterization of the Laccase Gene Family in and Its Potential Roles in Response to Salt and Drought Stresses.

Plants (Basel)

Key Laboratory of Horticultural Crop Germplasm Innovation and Utilization (Co-Construction by Ministry and Province), Institute of Horticultural, Anhui Academy of Agricultural Sciences, Hefei 230031, China.

Published: November 2024


Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

Laccase (, EC 1.10.3.2) is integral to the formation of lignin synthesis, flavonoid production, and responses to both biotic and abiotic stresses. While recent studies have characterized numerous gene families and their functions across various plants, information regarding genes in woodland strawberry () remains limited. In this study, we identified a total of 57 genes in the genome, which were phylogenetically categorized into five distinct groups. Analysis of the gene structures revealed a uniformity in the exon-intron structure among the subgroups, while conserved motifs identified unique motifs specific to certain subgroups, suggesting functional variations. Chromosomal localization studies indicated that are distributed across seven chromosomes, and collinearity analysis demonstrated that exhibit collinearity within the species. Additionally, cis-acting element analysis suggested that genes are involved in stress responses, hormone responses, light responses, and the growth and development of plants. qRT-PCR demonstrated that responded to salt, drought, and hormone stresses, with the expression levels of , , and continuously increasing under these stress conditions. Furthermore, transgenic yeast experiments revealed that enhanced yeast tolerance to both salt and drought stresses, while and negatively regulated yeast tolerance under these same conditions. These findings provide a theoretical foundation for further investigation into the functions of genes in woodland strawberry.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11644271PMC
http://dx.doi.org/10.3390/plants13233366DOI Listing

Publication Analysis

Top Keywords

salt drought
12
drought stresses
8
genes woodland
8
woodland strawberry
8
yeast tolerance
8
genome-wide identification
4
identification characterization
4
characterization laccase
4
laccase gene
4
gene family
4

Similar Publications

Climatic challenges increasingly threaten global food security, necessitating crops with enhanced multi-stress resilience. Through systematic transcriptomic analysis of 100 wheat genotypes under heat, drought, cold, and salt stress, we identified 3237 differentially expressed genes (DEGs) enriched in key stress-response pathways. Core transcription factors (, , ) and two functional modules governing abiotic tolerance were characterized.

View Article and Find Full Text PDF

Genome-wide identification analysis of aldo-keto reductase gene family in cotton and GhAKR40 role in salt stress tolerance.

Funct Integr Genomics

September 2025

Zhengzhou Research Base, State Key Laboratory of Cotton Bio-Breeding and Integrated Utilization, Zhengzhou University/Institute of Cotton Research, Chinese Academy of Agricultural Sciences, Zhengzhou, China.

In this study, a comprehensive genome-wide identification and analysis of the aldo-keto reductase (AKR) gene family was performed to explore the role of Gossypium hirsutumAKR40 under salt stress in cotton. A total of 249 AKR genes were identified with uneven distribution on the chromosomes in four cotton species. The diversity and evolutionary relationship of the cotton AKR gene family was identified using physio-chemical analysis, phylogenetic tree construction, conserved motif analysis, chromosomal localization, prediction of cis-acting elements, and calculation of evolutionary selection pressure under 300 mM NaCl stress.

View Article and Find Full Text PDF

Trees harbor large stores of nonstructural carbohydrates, some of which are quite old (> 10 yr), yet we know little of how these older stores may be used for woody growth. Crucially, the use of old carbohydrates during cellulose biosynthesis could confound climate reconstructions that rely on tree ring stable isotope ratios. We analyzed tree-ring cellulose ΔC and δC in earlywood of two pine species from montane forests in western North America using tree rings produced during the radiocarbon bomb pulse (1966-1980).

View Article and Find Full Text PDF

The rice cation/calcium exchanger OsCCX2 is involved in calcium signal clearance and osmotic tolerance.

J Integr Plant Biol

September 2025

Hunan Province Key Laboratory of Crop Sterile Germplasm Resource Innovation and Application, College of Life Science, Hunan Normal University, Changsha, 410081, China.

Hyperosmolality-triggered physiological drought hinders plant growth and development, leading to a drop in crop yields. Hyperosmolality triggers calcium signaling, and yet how osmotic-induced calcium signaling participates in cellular osmotic response remains enigmatic. To date, several Ca channels and transporters have been identified to regulate osmotic-induced calcium signal generation (CaSG) or Ca homeostasis.

View Article and Find Full Text PDF

The WRKY Transcription Factor SbWRKY51 Positively Regulates Salt Tolerance of Sorghum.

Plant Sci

September 2025

Shandong Provincial Key Laboratory of Plant Stress, College of Life Sciences, Shandong Normal University, Jinan 250014, China. Electronic address:

Salt stress is one of the main abiotic stresses that affects plant growth and development, as well as crop yield. A large number of studies have reported that the WRKY gene family plays significant roles in the plant responses to salt stress, but the underlying mechanisms remain largely unknown, and research on WRKY proteins in sorghum is also limited. In this study, we identified the sorghum gene SbWRKY51, which encodes a group II WRKY transcription factor.

View Article and Find Full Text PDF