Protein phosphatase 2C (PP2C) proteins are central regulators of plant signaling and stress responses, yet their macroevolutionary origin and diversification across the plant kingdom remain incompletely resolved. In this study, we performed a large-scale genome-wide analysis of the PP2C gene family using 402 representative plant genomes and integrated phylogenetic, duplication type, motif, expression, pangenome and selection-pressure analyses. A total of 36 960 PP2C genes were identified, showing substantial lineage-specific copy-number variation and marked expansion in angiosperms. Phylogenetic reconstruction classified plant PP2Cs into 12 subfamilies within three major clades and indicated that most subfamilies originated before the establishment of land plants, whereas angiosperm diversification mainly involved quantitative expansion rather than the emergence of new subfamilies. Duplication analysis revealed that dispersed and WGD/segmental duplication were the principal forces driving PP2C expansion, while phylogenetic tree reconciliation suggested extensive lineage-specific retention and loss after ancestral duplication events. Conserved motif analysis showed strong preservation of the catalytic scaffold, especially Motif1–Motif3 and Motif5, together with flexible remodeling of peripheral motifs. Cross-species transcriptome profiling in seven angiosperms revealed phylogenetically structured expression divergence: Clade II retained broad hormone, tissue and stress responsiveness, whereas Clades I and III displayed more condition- and organ-specific specialization. In 18 Brassica rapa accessions, 2478 PP2C genes were identified, most of which belonged to core orthogroups and syntenic regions. Ka/Ks analysis further indicated predominant purifying selection, with relaxed constraints in non-core genes. Collectively, these results provide a comprehensive evolutionary framework for PP2C functional diversification and candidate resources for stress-resistance improvement in horticultural crops.
Quanlong Liu, Jianbin Quan, Yuhua Cui et al.· Horticulture Research· 0 citations
MATH domain-containing proteins are important for plant growth, development, and stress adaptation, but their evolution and cold resistance in Brassica napus remain unexplored. Here, we characterized MATH genes in B. napus, Brassica rapa, Brassica oleracea, and Arabidopsis thaliana. We identified 461 MATH genes. Microcollinearity and pan-genomic analyses revealed stable syntenic gene numbers, purifying selection, and conserved evolution. The MATH family experienced ancient duplications, showing weak codon bias and reduced functional redundancy. Type A and D MATH genes exhibited low expression in root and leaf tissues, whereas type B and C genes showed high expression. RT-qPCR confirmed their roles in the cold stress response. Duplicated genes underwent defunctionalization or subfunctionalization. Subcellular localization showed that BnaA04g13830D and BnaC09g03690D were localized to the plasma membrane. Overexpression of BnaA04g13830D and BnaC09g03690D in Arabidopsis enhanced cold tolerance, potentially by influencing C-repeat binding factor signaling genes. This study provides insights into the evolutionary patterns and functions of the MATH gene families.
Yingchao Zhang, Jianbin Quan, Bingyu Han et al.· Journal of Agricultural and...· 0 citations