It is demonstrated that the availability of the RuvC catalytic channel is determined not by induced fit binding but by the chemical cleavability of the occupant, which provides a theoretical framework and additional insights for developing more precise gene-editing tools and designing Cas12a-based in vitro diagnostic platforms.
Abstract
CRISPR-Cas12a is widely utilized for genome engineering and nucleic acid diagnostics, being distinguished by its indiscriminate single-stranded DNA (ssDNA) trans-cleavage activity triggered by its specific cis-target recognition. However, the precise kinetic coordination between these dual catalytic modes remains unclear because of methodological limitations, which preclude simultaneous monitoring of both activities. Here, we established a real-time, dual-wavelength fluorescence reporter system to dissect these dynamics utilizing phosphorothioate (PS) backbone modifications as chemical probes to interrogate enzyme turnover. We identified a functional decoupling and an asymmetric competitive mechanism strictly governed by “channel occupancy”. Specifically, we found that the PS modification of the cis-target abolished the trans-activity via a “product release gating” mechanism, where high-affinity product retention occluded the active site. Furthermore, we identified a critical length-dependent regulatory regime for ssDNA reporters, while short, noncleavable ligands (5-nt) acted as passive spectator molecules, and long analogues (30-nt) functioned as potent competitive inhibitors. The long ligands induced an irreversible “kinetic trap”, creating a nonproductive complex where the enzyme was permanently sequestered because of the lack of cleavage-mediated release. These findings demonstrate that the availability of the RuvC catalytic channel is determined not by induced fit binding but by the chemical cleavability of the occupant. This study establishes an integrated Cas12a-regulated kinetic model and systematically investigates the simultaneous effects of PS-modification on the cis- and trans-hydrolytic activities of Cas12a. The findings provide a theoretical framework and additional insights for developing more precise gene-editing tools and designing Cas12a-based in vitro diagnostic platforms.
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
The CRISPR/Cas12a system is widely used in nucleic-acid diagnostics because Cas12a couples guide-directed recognition of a cis-target with indiscriminate collateral trans-cleavage of ssDNA. Controlling these activities through DNA structure can tune diagnostic signals. G-quadruplexes (G4s) are strong structural regulat...
I. Safenkova, Maria V. Kamionskaya, A. V. Samokhvalov et al.· bioRxiv· 0 citations
Achieving precise control over CRISPR-Cas12a activity remains a fundamental challenge in the development of versatile sensing platforms, particularly for applications in diagnostics. Herein, we report an allosteric strategy that employs modular loop-engineered hairpin (MLEH) to precisely control Cas12a activation, ther...
N. Yin, Li Zhang, Rui-Ling Lu et al.· ACS Sensors· 0 citations
This review summarizes recent advances in the molecular basis and activity regulation of CRISPR-Cas12a- and Cas13a-based biosensing systems and aims to provide a framework for designing more controllable and adaptable CRISPR trans-cleavage biosensing systems.
Xiao-Hui Wang, Ya-Ru Huang, Lei Zhang et al.· Biotechnology Advances· 0 citations
Abstract CRISPR diagnostics enable sensitive detection of infectious diseases, with the RNA endonuclease Cas13a providing specific, amplification-free RNA detection through collateral trans-cleavage of fluorescent reporters. However, background cleavage from unbound enzyme, contaminating nucleases, and unsynchronized i...
Carlos F. Ng, Deepak Krishnamurthy, Andres Dextre et al.· Nucleic Acids Research· 0 citations
It is established that a positive charge at 921 is required for CRISPR RNA-dependent DNA cleavage (cis cleavage), whereas R918 primarily enhances cleavage efficiency, and the potential of modifying active pocket residues to reduce unwanted DNA cleavage while increasing on-target specificity is highlighted.
Saadi Rostami, A. M. dos Santos, Richard S. Van et al.· Journal of Biological Chemis...· 0 citations
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