Scientists Unveil Spliceosome Disassembly After RNA Processing

Research led from Vienna with CABIMER's contribution details the final steps of splicing and intron release.

Complex molecular structure of a spliceosome being disassembled.
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Complex molecular structure of a spliceosome being disassembled.

An international scientific team, with the collaboration of CABIMER, has discovered the molecular mechanisms that enable the disassembly of the spliceosome once RNA processing is complete, a fundamental process for gene expression.

The study, published in the prestigious journal Nature, sheds light on the final stage of splicing, a crucial process in gene expression. During this phase, a complex molecular machinery called the spliceosome removes introns from the precursor RNA and joins exons to form mature messenger RNA. Once its task is completed, this complex must be released and disassembled so its components can be reused.
The research, led by Clemens Plaschka from the Institute of Molecular Pathology (IMP) in Vienna, utilized cryo-electron microscopy to identify two intermediate states of the human spliceosome. The findings describe the coordinated action of three RNA helicases (DHX15, Aquarius, and DHX35), molecular motors that rearrange the machinery and facilitate intron release, thereby enabling the complex's disassembly.
CABIMER, through its proteomics unit, provided crucial analyses for the proteomic aspects of this research. These findings significantly expand the understanding of splicing termination and offer new insights into how cells manage the disassembly of spliceosomes that may become stalled during RNA processing.
Based on information from the official source: CABIMER (Centro Andaluz de Biología Molecular y Medicina Regenerativa) (08/10/2026)