EMD-13814

Single-particle
3.3 Å
EMD-13814 Deposition: 01/11/2021
Map released: 02/03/2022
Last modified: 13/12/2023
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links

EMD-13814

AMP-PCP-treated A-like U2 snRNP

EMD-13814

Single-particle
3.3 Å
EMD-13814 Deposition: 01/11/2021
Map released: 02/03/2022
Last modified: 13/12/2023
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Sample Organism: Homo sapiens, synthetic construct
Sample: AMP-PCP-treated A-like U2 snRNP

Deposition Authors: Tholen J , Galej WP
Structural basis of branch site recognition by the human spliceosome.
Tholen J , Razew M , Weis F , Galej WP
(2022) Science , 375 , 50 - 57
PUBMED: 34822310
DOI: doi:10.1126/science.abm4245
ISSN: 1095-9203
ASTM: SCIEAS
Abstract:
Recognition of the intron branch site (BS) by the U2 small nuclear ribonucleoprotein (snRNP) is a critical event during spliceosome assembly. In mammals, BS sequences are poorly conserved, and unambiguous intron recognition cannot be achieved solely through a base-pairing mechanism. We isolated human 17S U2 snRNP and reconstituted in vitro its adenosine 5´-triphosphate (ATP)–dependent remodeling and binding to the pre–messenger RNA substrate. We determined a series of high-resolution (2.0 to 2.2 angstrom) structures providing snapshots of the BS selection process. The substrate-bound U2 snRNP shows that SF3B6 stabilizes the BS:U2 snRNA duplex, which could aid binding of introns with poor sequence complementarity. ATP-dependent remodeling uncoupled from substrate binding captures U2 snRNA in a conformation that competes with BS recognition, providing a selection mechanism based on branch helix stability.