An Expanded Role for the RFX Transcription Factor DAF-19, with Dual Functions in Ciliated and Nonciliated Neurons

Author:

De Stasio Elizabeth A1,Mueller Katherine P11,Bauer Rosemary J1,Hurlburt Alexander J1,Bice Sophie A1,Scholtz Sophie L1,Phirke Prasad2,Sugiaman-Trapman Debora2,Stinson Loraina A1,Olson Haili B1,Vogel Savannah L1,Ek-Vazquez Zabdiel1,Esemen Yagmur1,Korzynski Jessica1,Wolfe Kelsey1,Arbuckle Bonnie N1,Zhang He1,Lombard-Knapp Gaelen1,Piasecki Brian P1,Swoboda Peter2

Affiliation:

1. Department of Biology, Lawrence University, Appleton, Wisconsin 54911

2. Department of Biosciences and Nutrition, Karolinska Institute, 141 83 Huddinge, Sweden

Abstract

Abstract Regulatory Factor X (RFX) transcription factors (TFs) are best known for activating genes required for ciliogenesis in both vertebrates and invertebrates. In humans, eight RFX TFs have a variety of tissue-specific functions, while in the worm Caenorhabditis elegans, the sole RFX gene, daf-19, encodes a set of nested isoforms. Null alleles of daf-19 confer pleiotropic effects including altered development with a dauer constitutive phenotype, complete absence of cilia and ciliary proteins, and defects in synaptic protein maintenance. We sought to identify RFX/daf-19 target genes associated with neuronal functions other than ciliogenesis using comparative transcriptome analyses at different life stages of the worm. Subsequent characterization of gene expression patterns revealed one set of genes activated in the presence of DAF-19 in ciliated sensory neurons, whose activation requires the daf-19c isoform, also required for ciliogenesis. A second set of genes is downregulated in the presence of DAF-19, primarily in nonsensory neurons. The human orthologs of some of these neuronal genes are associated with human diseases. We report the novel finding that daf-19a is directly or indirectly responsible for downregulation of these neuronal genes in C. elegans by characterizing a new mutation affecting the daf-19a isoform (tm5562) and not associated with ciliogenesis, but which confers synaptic and behavioral defects. Thus, we have identified a new regulatory role for RFX TFs in the nervous system. The new daf-19 candidate target genes we have identified by transcriptomics will serve to uncover the molecular underpinnings of the pleiotropic effects that daf-19 exerts on nervous system function.

Publisher

Oxford University Press (OUP)

Subject

Genetics

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