A MITE-Mediated Cis-Regulatory Module Regulates PsiGCN2 Expression for High-intensity Light Acclimation in Populus simonii

光防护 生物 转座因子 非光化学猝灭 转录组 适应 光合作用 突变体 细胞生物学 基因 下调和上调 转录调控 组蛋白 表观遗传学 遗传学 染色质免疫沉淀 拟南芥 基因表达 RNA序列 调节器 植物 发起人 基因表达调控 转录因子 电子传输链 鲁比斯科 叶绿体 H3K4me3 抄写(语言学)
作者
Chenhao Bu,Yuepeng Song,Gao Y,Li J,Panfei Chen,Hui Li,Xin Yuan,Di Zhang
出处
期刊:Plant Physiology [Oxford University Press]
标识
DOI:10.1093/plphys/kiag323
摘要

The genetic basis of long-term photoprotection under sustained high-light exposure in perennial trees remains poorly understood. Here, we report that a miniature inverted-repeat transposable element (MITE) located 1.2 kb upstream of PsiGCN2 reduces promoter activity by approximately 26% (P < 0.01) in transient heterologous reporter assays, consistent with a potential cis-regulatory contribution in Populus simonii. Genome-wide association study of 334 accessions identified PsiGCN2 (Chr07:14786025) as significantly associated with electron transport rate (ETR, P < 1×10-7) and non-photochemical quenching (NPQ, P < 3.72×10-7) under high-intensity light stress. Loss-of-function paggcn2 mutants demonstrated enhanced photoprotection during prolonged high-intensity light exposure, including 19% higher maximum PSII efficiency, 46% increased NPQ, and 10-20% ETR following eight-day exposure compared to wild-type plants. Transcriptomic profiling revealed 432 differentially expressed genes, with photosynthetic antenna proteins significantly upregulated (NES = 1.86, P < 0.001) and reduced enrichment of mitogen-activated protein kinase signaling components (NES = -1.56, P = 0.0078) in mutants. Nuclear-localized PsiGCN2 is positioned as an integrative regulatory hub, coordinating 514 protein interactions spanning proteostasis, photosynthesis, and RNA metabolism pathways. Genome-wide annotation identified 27,395 MITEs with 42.6% of genes harboring insertions near transcriptional boundaries. Phylogenetic analysis revealed episodic MITE amplification at 16.7 million years ago, coinciding with Mid-Miocene climatic shifts. These findings support a MITE-PsiGCN2-phenotype regulatory axis that influences the balance between photoprotection and photosynthetic efficiency under sustained high-light conditions. They also shed light on how promoter-proximal transposable element insertions contribute to transcriptional modulation of light acclimation in woody species.
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