97%,内毒素<0.1EU/μg,高活性超低内毒素批间稳定,可阻断IL-1炎症信号,适用于兽医炎症疾病、免疫紊乱、兽药研发研究。" data-qmeta="description">

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分子生物学
IVD分子诊断
细胞培养与分析
蛋白研究
细胞因子
重组蛋白
抗体
高通量测序建库
病原检测UCF系列
生物医药
工具酶
抑制剂激活剂与常用试剂
仪器
耗材

A C2H2 zinc finger transcription factor links a GWAS locus to linear growth in Gracilariopsis lemaneiformis via MCM helicase activation

Youtao Huang, Xinran Wang, Mengxing Cao, Zhenghong Sui

Journal:NEW PHYTOLOGIST

IF:8.7

DOI:10.1111/nph.71281

PMID:42219541

Published:2026-05-31

research field:功能基因组学藻类学分子生物学遗传学海洋植物学

Abstract

Summary The genetic basis of linear growth rate in the red alga Gracilariopsis lemaneiformis remains poorly characterized. This study functionally characterized the gene LXC001294 , a prior genome-wide association studies (GWAS) candidate associated with growth variation, to elucidate its molecular role. We employed phylogenetic analysis, yeast assays, and subcellular localization to characterize LXC001294. Its genome-wide binding sites were identified by ChIP-seq, and transcriptomic profiles of fast- (YT13) and slow-growing (QHD9) strains were compared via RNA-seq. Direct regulation of key targets was validated using yeast one-hybrid and dual-luciferase assays. LXC001294 was confirmed as a nuclear-localized C 2 H 2 zinc finger transcription factor. Integrated multi-omics analysis revealed its direct targeting and upregulation of five minichromosome maintenance ( MCM ) genes, core components of the DNA replication machinery, in the fast-growing strain. We demonstrate that LXC001294 promotes algal growth by activating the MCM complex, thereby enhancing DNA replication. This study provides a mechanistic link from a GWAS signal to a growth phenotype in a macroalga and establishes the transcriptional regulation of replication licensing as a key node controlling growth rate in nonmodel species. Graphical This study integrated genome-wide association studies and multiomics to identify a C 2 H 2 zinc finger transcription factor linked to linear growth in Gracilariopsis lemaneiformis . Structural and functional analyses, plus binding site validation, revealed it regulates growth by activating minichromosome maintenance helicase genes, bridging genetic variation to phenotypic traits in macroalgae.

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