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The Histone Demethylase KDM5 Is Essential for Larval Growth in Drosophila

机译:组蛋白去甲基酶KDM5是果蝇幼虫生长必不可少的。

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Regulated gene expression is necessary for developmental and homeostatic processes. The KDM5 family of transcriptional regulators are histone H3 lysine 4 demethylases that can function through both demethylase-dependent and -independent mechanisms. While loss and overexpression of KDM5 proteins are linked to intellectual disability and cancer, respectively, their normal developmental functions remain less characterized. Drosophila melanogaster provides an ideal system to investigate KDM5 function, as it encodes a single ortholog in contrast to the four paralogs found in mammalian cells. To examine the consequences of complete loss of KDM5, we generated a null allele of Drosophila kdm5 , also known as little imaginal discs ( lid ), and show that it is essential for viability. Animals lacking KDM5 show a dramatically delayed larval development that coincides with decreased proliferation and increased cell death in wing imaginal discs. Interestingly, this developmental delay is independent of the well-characterized Jumonji C (JmjC) domain-encoded histone demethylase activity of KDM5, suggesting key functions for less characterized domains. Consistent with the phenotypes observed, transcriptome analyses of kdm5 null mutant wing imaginal discs revealed the dysregulation of genes involved in several cellular processes, including cell cycle progression and DNA repair. Together, our analyses reveal KDM5 as a key regulator of larval growth and offer an invaluable tool for defining the biological activities of KDM5 family proteins.
机译:调控的基因表达对于发育和体内平衡过程是必需的。 KDM5转录调节子家族是组蛋白H3赖氨酸4脱甲基酶,可以通过脱甲基酶依赖性和非依赖性机制发挥作用。虽然KDM5蛋白的丢失和过表达分别与智力障碍和癌症有关,但其正常发育功能的特征尚不充分。果蝇果蝇提供了一个理想的系统来研究KDM5的功能,因为它编码一个直向同源物,而哺乳动物细胞中却发现了四个旁系同源物。为了检查KDM5完全丧失的后果,我们生成了果蝇kdm5的无效等位基因,也称为小假想盘(lid),并表明它对生存力至关重要。缺乏KDM5的动物显示出幼虫发育显着延迟,这与机翼假想盘中的增殖减少和细胞死亡增加相吻合。有趣的是,这种发育延迟与KDM5的特征明确的Jumonji C(JmjC)域编码的组蛋白去甲基化酶活性无关,这提示了特征较少的域的关键功能。与观察到的表型一致,对kdm5无效突变型翼想象盘的转录组分析揭示了参与多个细胞过程(包括细胞周期进程和DNA修复)的基因失调。总之,我们的分析揭示了KDM5是幼虫生长的关键调节剂,并为定义KDM5家族蛋白的生物学活性提供了宝贵的工具。

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