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Nielsen, K. H.

Publications and source records attributed to Nielsen, K. H..

2 recordsLinked to original sources

Brr2p-mediated unwinding of U4/U6 is promoted by a mutually exclusive intra-molecular stem loop in U4 and involves destabilization of the 5' stem-loop of U4

Before the spliceosome engages a pre-mRNA to excise its introns, the catalytic small nuclear RNA (snRNA) U6 is inactive because of base pairing with U4 snRNA; thus, spliceosome activation requires unwinding of base paired U4/U6, composed of stem I and stem II. The Ski2-like ATPase and RNA helicase Brr2p facilitates U4/U6 unwinding and the ultimately irreversible release of U4; however, the molecular mechanism behind Brr2p-mediated U4/U6 unwinding and the roles of the snRNAs in unwinding remains incompletely understood. To investigate the mechanism in vivo in budding yeast, we screened an unwinding deficient, cold-sensitive brr2 mutant, associated with retinitis pigmentosa in humans, for genetic interactions with mutations in U4 snRNA. Destabilizing U4 mutations in either stem I or stem II suppressed the brr2 mutant, providing functional evidence that Brr2p disrupts both stems in vivo. Further, destabilizing mutations in the intervening 5 stem loop of U4 also suppressed the brr2 mutant, and in vitro Brr2p displaced Prp31p from this stem loop, implicating Brr2p in disruption of this structure, too. Unexpectedly and counterintuitively, many destabilizing mutations in U4/U6 stem I exacerbated the brr2 mutant. These mutations disrupted an intramolecular stem loop (U4-ISL1) in U4 that is mutually exclusive with U4/U6 stem I. We found that U4-ISL1 is required for splicing in vivo and for U4/U6 unwinding in vitro. Altogether, these results implicate Brr2p in disrupting all U4 secondary structures upstream of its initial U4 binding site and implicate an important role for U4 in antagonizing U4/U6 reannealing during Brr2p-mediated U4/U6 unwinding.

molecular biology↗

Termination of pre-mRNA splicing requires that the ATPase and RNA unwindase Prp43 acts on the catalytic snRNA U6

The termination of pre-mRNA splicing functions to discard suboptimal substrates, thereby enhancing fidelity, and to release excised introns in a manner coupled to spliceosome disassembly, thereby allowing recycling. The mechanism of termination, including the RNA target of the DEAH-box ATPase Prp43, remains ambiguous. We discovered a critical role for nucleotides at the 3-end of the catalytic U6 small nuclear RNA in splicing termination. Though conserved sequence at the 3-end is not required, 2 hydroxyls are, paralleling requirements for Prp43 biochemical activities. While the 3-end of U6 is not required for recruiting Prp43 to the spliceosome, the 3 end crosslinks directly to Prp43 in an RNA-dependent manner. Our data indicate a mechanism of splicing termination in which Prp43 translocates along U6 from the 3 end to disassemble the spliceosome and thereby release suboptimal substrates or excised introns. This mechanism reveals that the spliceosome becomes primed for termination at the same stage it becomes activated for catalysis, implying a requirement for stringent control of spliceosome activity within the cell.

molecular biology↗