Cellular remodeling during reversible life-stage transition in sessile ciliates: Genomic and transcriptomic insights

转录组 生物 细胞生物学 线粒体 下调和上调 基因组 基因 重编程 线粒体DNA 遗传学 基因表达调控 细胞骨架 计算生物学 调节器 基因表达谱 氧化磷酸化 表型 肌动蛋白 转录调控 模式生物 基因表达
作者
Chao Li,Zhaorui Zhou,Tong Wu,Zheng Wang,Zhongyu Ji,Borong Lu,Xue Zhang,Michael F. Lynch,Ying Yan
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (40): e2536061123-e2536061123
标识
DOI:10.1073/pnas.2536061123
摘要

Unraveling mechanisms driving dramatic life-stage transitions in response to environmental stress is central to understanding cellular adaptation. We studied a distinctive group of sessile ciliates that undergo profound morphological and organellar remodeling when transitioning from sessile trophonts to motile telotrochs. We generated chromosome-level genomes for two colonial species ( Campanella sinica , Epistylis hentscheli ) and one solitary species ( Vorticella campanula ), revealing genome sizes of 41.30 to 60.37 Mb. Notably, minichromosomes (10 to 100 kb) represent a shared, distinct chromosomal architecture across all three species. We constructed a transcriptional atlas by profiling five transitional stages, revealing core gene sets linked to transcriptional regulation, cilia, cytoskeletal dynamics, and metabolism. Intermediate stages converge on conserved genes driving structural and energetic turnover, including polyubiquitin and the mitochondrial regulator CHCHD2 . Furthermore, we uncovered metabolic reprogramming and active spatial mobilization of mitochondria tailored to fuel these extreme morphological shifts. During structural remodeling, the mitochondrial genome exhibits asymmetric regulation—coordinating the upregulation of translational and early respiratory machineries with the downregulation of terminal electron transport potentially mitigating oxidative stress. Crucially, in vivo imaging physically corroborates this transcriptomic priming, revealing a marked increase in mitochondrial density and their targeted redistribution to regions of high ATP demand. Conversely, during stalk biosynthesis, organellar regulation selectively upregulates the mitochondrial protein ymf66 to sustain prolonged translational and energetic demands. Ultimately, our findings highlight how ciliates integrate global transcriptomic shifts with organelle-specific spatial and metabolic fine-tuning to meet the precise mechanical requirements of complex life-cycle transitions.
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