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Open access Aug 2026

Evolutionary analysis of the bZIP gene family across green plants and its lineage-specific pangenomic landscape in apple ( Malus )

The basic leucine zipper (bZIP) transcription factor family plays crucial roles in plant development and stress responses, yet its evolutionary dynamics and functional diversification across green plants remain poorly understood. Here, we conducted a comprehensive analysis of the bZIP family across 114 green plant taxa, from algae to angiosperms, with emphasis on Rosaceae species and Malus accessions. Phylogenetic analysis showed that most bZIP subfamilies formed stable monophyletic clades across green plants, except for two atypical evolutionary patterns. An intertwined E-M-E-I complex suggested that the core domain of subfamily M originated from the group E lineage, whereas the highly divergent subclades, S1 and I1, highlighted the uneven evolutionary rates within the family. In Rosaceae, lineage-specific whole genome duplication (WGD) events, especially in Malinae subtribe and Potentilla, markedly expanded bZIP repertoires with asymmetric retention among subfamilies. Furthermore, lineage-specific pangenome in Malus identified 1251 core and 18 unique bZIP members across diverse accessions. Pan-transcriptome identified tissue-specific expression and stress-responsive co-expression modules. And functional characterization of MP_bZIP77, a gene derived from wild apple, provides a concrete example of this regulatory mechanism by demonstrating that its overexpression enhances salt tolerance through the activation of antioxidant enzyme activities. This study provides novel insights into the evolutionary origin, expansion pattern, and functional divergence of the bZIP family in green plants and Rosaceae, while laying a theoretical and genetic foundation for future molecular breeding aimed at improving stress resistance in fruit trees.

Xuejing Cao, Cheng Chen, Weifeng Ma et al. · 0 citations
Open access Jul 2026

Integrated multi-omics profiling reveals dynamic regulation of light-induced chloroplast biogenesis in Brassica napus seedlings

Abstract Photosynthetic efficiency, a pivotal determinant of crop yield, is governed by chloroplast development—a process that remains poorly understood in polyploid crops. Using tetraploid oilseed rape (Brassica napus) as a model, we phenotypically characterized chloroplast development under light induction and performed a high-resolution, multi-omics analysis of this process. Through the integration of time-series transcriptome, proteome, and post-translational modification (PTM) data—encompassing acetylation, phosphorylation, and ubiquitylation—we reveal a multi-layered regulatory network coordinating chloroplast maturation. A core, sequential transcription factor cascade orchestrates the temporal program, which is finely modulated by crosstalk between alternative splicing and PTMs. PTMs further fine-tune the activity of proteins within essential photosynthetic pathways. We also demonstrate differential subfunctionalization of homeologous gene pairs, a polyploid-specific strategy that enhances regulatory flexibility and robustness. Our findings establish a molecular map of chloroplast development, elucidating how transcriptional, post-transcriptional, and post-translational layers may contribute to efficient plastid maturation. This study also identifies upstream regulators, particularly within the photosystem and chlorophyll biosynthesis pathways, as potential candidates for functional validation to assess their roles in improving photosynthetic performance. Collectively, our findings provide a resource for future research in chloroplast biology, photosynthesis, polyploid biology, and comparative-omics studies.

Xiaoli Ma, Yanjun Jing, Yuan Gao et al. · 0 citations