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Multimerization of ELAV in Drosophila is essential for directing neuronal alternative splicing and polyadenylation programs.

Aug 2026 · Genes & Development · 0 citations
Medicine

TL;DR

X-ray crystal structures of ELAV RNA recognition motif 3 (RRM3) are determined to reveal that multimerization is mediated by two evolutionarily conserved interfaces in non-RNA-binding parts of the RRM to form a tetramer and RNA binding is not required for multimerization.

Abstract

ELAV/Hu RNA-binding proteins (RBPs) are key regulators of neuronal alternative splicing and polyadenylation programs across animals. How ELAV/Hu RBPs achieve gene-specific regulation by recognizing spaced U-rich motifs through multimerization, remains uncertain. We determined X-ray crystal structures of ELAV RNA recognition motif 3 (RRM3) to reveal that multimerization is mediated by two evolutionarily conserved interfaces in non-RNA-binding parts of the RRM to form a tetramer and RNA binding is not required for multimerization. Mutational probing of these two interfaces in Drosophila photoreceptor neurons shows that both interfaces contribute to ELAV function in development. Notably, multimerization defective Drosophila elav mutants are embryonic lethal. Genomic profiling demonstrates that multimerization is required to direct neuronal alternative splicing and polyadenylation programs of some, but not all ELAV target genes. Our study provides a structural basis for a mechanistic understanding how ELAV/Hu proteins can extract gene-specific regulation from a landscape of redundant sequence motifs.

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