This work explored how the guide RNA of CRISPR genome editing system folds and modulates its structural flexibility to carry out the roles required for each assembly state from its unbound apo form to the functional Cas9 RNP state for target DNA cleavage using ABEL-FRET spectroscopy.
Abstract
The structural flexibility of RNA is essential for forming ribonucleoprotein (RNP) complexes, which regulate diverse biological processes. This intrinsic property permits RNA to act as a dynamic scaffold along the assembly pathway as it folds into a specific structure for initial recognition by protein and undergoes conformational rearrangements for functional maturation as a complex. Yet, RNA flexibility and RNP multicomponent assembly create significant obstacles for traditional structural methods. To overcome these challenges, we applied recently developed ABEL-FRET spectroscopy to measure tether-free single-molecule Förster resonance energy transfer (smFRET) over extended observation times. Furthermore, ABEL-FRET enables the unique ability for simultaneous measurements of ultrahigh resolution smFRET and hydrodynamic size of individual complexes, which offers distinct advantages for studying dynamic RNA molecules that undergo assembly via sequential binding events. Using ABEL-FRET, we explored how the guide RNA (gRNA) of CRISPR genome editing system folds and modulates its structural flexibility to carry out the roles required for each assembly state from its unbound apo form to the functional Cas9 RNP state for target DNA cleavage. Multi-perspective view of gRNA structure gained by probing its two primary functional domains enabled to capture dramatic changes in gRNA flexibility that are highly dependent on its specific structural domains as well as assembly states. Collectively, our work with ABEL-FRET highlights the intrinsic link between the structural flexibility of RNA and its functionality in RNP assembly.
High-resolution structure determination of RNA remains a major challenge due to its conformational flexibility, intrinsic heterogeneity, and susceptibility to degradation. Although RNA plays central roles in gene regulation, viral replication, and cellular homeostasis, RNA-only structures represent a small fraction of...
Jerricho Tipo, K. Gottipati, Marc C. Morais et al.· Journal of Biological Chemis...· 0 citations
This chapter describes a single-molecule fluorescence resonance energy transfer (smFRET) approach to monitor cotranscriptional RNA folding within native transcription complexes to study cotranscriptional regulatory mechanisms taking place either in bacterial or eukaryotic elongation complexes.
Mirette Hashem, Patrick St-Pierre, Adrien Chauvier et al.· Methods in Enzymology· 0 citations
Abstract Cas9 nucleases of CRISPR-Cas adaptive immune systems are programmable RNA-guided DNA endonucleases that evolved from the transposon-associated IscB enzymes. Comparative structural studies have revealed substantial architectural elaboration during this evolutionary transition, including the replacement of the l...
O. Nureki, K. Onishi, Yuta Shuto et al.· Research Square· 0 citations
The mechanisms of nuclease activation are explored by solving seven ternary cryo-electron mi-croscopy structures of wild-type Cas13d in complex with matched and mismatched targets and an active site loop in the HEPN domains that regulates substrate accessibility is identified.
Chia-Wei Chou, Selma Sinan, Hung-Che Kuo et al.· bioRxiv· 0 citations
A new machine-learning framework aims to improve the success rate of computational protein design while moving away from results that reproduce sequences found in nature.