Alternative splicing controls pan-neuronal homeobox gene expression

生物 同源盒 同源框A1 HNF1B型 遗传学 RNA剪接 选择性拼接 基因 同源框蛋白Nkx-2.5 DLX5型 基因表达 EMX2型 PAX4型 基因表达调控 计算生物学 外显子 核糖核酸
作者
Eduardo Leyva‐Díaz,Michael Cesar,Karinna Pe,José Ignacio Jordá-Llorens,Jessica Valdivia,Oliver Hobert
出处
期刊:Genes & Development [Cold Spring Harbor Laboratory Press]
被引量:1
标识
DOI:10.1101/gad.352184.124
摘要

The pan-neuronally expressed and phylogenetically conserved CUT homeobox gene ceh-44/CUX orchestrates pan-neuronal gene expression throughout the nervous system of Caenorhabditis elegans. As in many other species, including humans, ceh-44/CUX is encoded by a complex locus that also codes for a Golgi-localized protein, called CASP (Cux1 alternatively spliced product) in humans and CONE-1 (“CASP of nematodes”) in C. elegans . How gene expression from this complex locus is controlled—and, in C. elegans , directed to all cells of the nervous system—has not been investigated. We show here that pan-neuronal expression of CEH-44/CUX is controlled by a pan-neuronal RNA splicing factor, UNC-75, the C. elegans homolog of vertebrate CELF proteins. During embryogenesis, the cone-1&ceh-44 locus exclusively produces the Golgi-localized CONE-1/CASP protein in all tissues, but upon the onset of postmitotic terminal differentiation of neurons, UNC-75/CELF induces the production of the alternative CEH-44/CUX CUT homeobox gene-encoding transcript exclusively in the nervous system. Hence, UNC-75/CELF-mediated alternative splicing not only directs pan-neuronal gene expression but also excludes a phylogenetically deeply conserved golgin from the nervous system, paralleling surprising spatial specificities of another golgin that we describe here as well. Our findings provide novel insights into how all cells in a nervous system acquire pan-neuronal identity features and reveal unanticipated cellular specificities in Golgi apparatus composition.

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