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Lima, C. D.

Publications and source records attributed to Lima, C. D..

3 recordsLinked to original sources

Architectures and biochemical activities of Mtl1-Red1 MTREC helicase complexes

RNA surveillance and decay is carried out in part by helicase containing complexes that identify, capture and sometimes modify RNA before delivering it to the RNA exosome complex for processing or degradation. The MTREC core complex includes a Mtr4-like protein (Mtl1) helicase and Red1 that works with other cofactors and the RNA exosome in Schizosaccharomyces pombe to degrade nuclear transcripts in processes that can result in formation of facultative heterochromatin. The activities of Mtl1 remain uncharacterized as do contributions of Red1 to Mtl1 within MTREC. Here, we reconstitute the MTREC core complex, resolve structures by cryo-electron microscopy, and compare MTREC activities to S. pombe Mtr4 and Mtl1. We show that Mtl1 is more active relative to MTREC and Mtr4, that MTREC binds RNA better than Mtl1, and that Red1 includes an autoinhibitory coiled-coil domain that dimerizes MTREC and contacts the Mtl1 RecA domains to disrupt its ATPase active site. Together, these data suggest that Red1 may endow MTREC to bind RNA while slowing translocation so that it remains associated with RNA long enough to chaperone it to the RNA exosome for processing or degradation.

biochemistry↗

FAF1 cofactor enhances UFD1/NPL4-p97 unfolding efficiency across ubiquitin chain lengths independent of SUMO2

The AAA+ protein p97/VCP and its cofactor UFD1/NPL4 interact with and unfold ubiquitinated proteins to promote disaggregation and unfolding for recycling or to prepare substrates for proteasomal degradation. The cofactor Fas-associated factor 1 (FAF1) is suggested to reduce the length of ubiquitin chain required for substrate unfolding by UFD1/NPL4-p97 and to interact with SUMO. Here, we employ in vitro reconstitution of UFD1/NPL4-p97 and FAF1/UFD1/NPL4-p97 complexes and fluorescent substrates modified with SUMO2-polyubiquitin hybrid or polyubiquitin-only chains of varying lengths to assess initial rates of unfolding. These assays reveal that FAF1 enhances initial rates of unfolding relative to UFD1/NPL4-p97 in a manner that is independent of SUMO2 and semi-dependent on ubiquitin chain length. Unlike preferences observed for yeast Ufd1/Npl4-Cdc48, these data suggest that the FAF1 cofactor does not contribute to preferential unfolding of the SUMO2-polyubiquitin substrates tested. Further dissection of FAF1 reveals that it significantly increases the rate of unfolding for all ubiquitin chain lengths tested with its greatest differential impact observed when unfolding chains with four to ten ubiquitin molecules that are considered physiologically relevant. Using cryoEM we resolve a series of reconstructions that reveal FAF1/UFD1/NPL4-p97 bound to substrate in non-translocating and translocating states. Observed interactions between a helix of FAF1 and UFD1 throughout the unfolding process are consistent with AlphaFold models and recent reports suggesting that FAF1 may stabilize interactions between UFD1, NPL4, and p97 to promote substrate engagement and unfolding.

biochemistry↗

Structural basis for a nucleoporin exportin complex between RanBP2, SUMO1-RanGAP1, the E2 Ubc9, Crm1 and the Ran GTPase

The human nucleoporin RanBP2/Nup358 interacts with SUMO1-modified RanGAP1 and the SUMO E2 Ubc9 at the nuclear pore complex (NPC) to promote export and disassembly of exportin Crm1/Ran(GTP)/cargo complexes. In mitosis, RanBP2/SUMO1-RanGAP1/Ubc9 remains intact after NPC disassembly and is recruited to kinetochores and mitotic spindles by Crm1 where it contributes to mitotic progression. Interestingly, RanBP2 binds SUMO1-RanGAP1/Ubc9 via motifs that also catalyze SUMO E3 ligase activity. Here, we resolve cryo-EM structures of a RanBP2 C-terminal fragment in complex with Crm1, SUMO1-RanGAP1/Ubc9, and two molecules of Ran(GTP). These structures reveal several unanticipated interactions with Crm1 including a nuclear export signal (NES) for RanGAP1, the deletion of which mislocalizes RanGAP1 and the Ran GTPase in cells. Our structural and biochemical results support models in which RanBP2 E3 ligase activity is dependent on Crm1, the RanGAP1 NES and Ran GTPase cycling.

biochemistry↗