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Qin, P. Z.

Publications and source records attributed to Qin, P. Z..

3 recordsLinked to original sources

Structures of Cas9-Bound Double-Stranded DNA Mini-Circle Reveal Impacts of DNA Shape on Cas9 Target Interrogation

CRISPR-Cas9 is an RNA-guided endonuclease that cleaves double-stranded DNA at specific sites and has been adapted as a powerful tool for genome manipulation. Cas9 recognizes its target through multiple conformational transitions coordinated between the Cas9 ribonucleoprotein and the DNA duplex. Such transitions, and consequently Cas9 targeting specificity, are expected to be significantly influenced by the collective duplex physical properties referred to as DNA shape. To advance our currently limited understanding of the interplay between DNA shape and Cas9 target interrogation, we solved two cryo-EM structures of SpyCas9 bound to a cognate target embedded in a relaxed 95-base-pair DNA double-stranded minicircle. The Cas9-bound DNA segment engages in similar interactions involved in PAM-binding and R-loop initiation as those observed in Cas9-bound linear DNA. However, R-loop is limited to less than three base-pairs, thus interfering with Cas9 cleavage. The minicircle DNA, which is fully resolved, retains its global shape. As Cas9 locally unwinds the protospacer, the closed-ring topology constrains the movement of the paired PAM-distal DNA duplex, thus interfering with R-loop propagation. These data provide detailed insight into the interplay between DNA shape and Cas9 structure and function, and may shed light on genome-editing and manipulation in environments with varied DNA topologies.

biophysics↗

Cryo-EM Structure of a 95-Basepair Double-Stranded DNA Minicircle at 5.3 A Resolution

Double-stranded DNA minicircles have been observed in a variety of biological settings and are also widely employed in biotechnology, therapeutic applications, and basic research. Here, we report a cryo-EM structure of a 95-basepair minicircle (dsMC95) at a 5.3 [A] resolution. dsMC95 forms a closed ring as designed and no local deformation is observed. The two DNA strands are fully resolved, with the major and minor grooves clearly distinguishable. Analysis reveals a nine-fold periodicity in the helical twist, which corresponds to approximately 10.56 base pairs per turn. Together with groove width analysis, the data indicate that dsMC95 maintains a B-DNA configuration. The dsMC95 ring exhibits an in-plane ellipticity of 1.13 and an out-of-plane displacement of 15{degrees}, with differences in out-of-plane displacements observed between the two half-segments. The dsMC95 structure, which is the only free DNA cryo-EM structure with a resolution better than 6 [A] to date, allows comparison to other structures to better understand DNA physical features such as bending. The findings advance our understanding of DNA structure under topological constraints and may inform studies of naturally occurring small circular DNA as well as the manipulation of DNA in nanotechnology applications.

biophysics↗

A DNA Unwinding Equilibrium Serves as a Checkpoint for CRISPR-Cas12a Target Discrimination

CRISPR-associated proteins such as Cas9 and Cas12a are programable RNA-guided nucleases that have emerged as powerful tools for genome manipulation and molecular diagnostics. However, these enzymes are prone to cleaving off-target sequences that contain mismatches between the RNA guide and DNA protospacer. In comparison to Cas9, Cas12a has demonstrated distinct sensitivity to protospacer-adjacent-motif (PAM) distal mismatches, and the molecular basis of Cas12as enhanced target discrimination is of great interest. In this study, we investigated the mechanism of Cas12a target recognition using a combination of site-directed spin labeling, fluorescent spectroscopy, and enzyme kinetics. With a fully matched RNA guide, the data revealed an inherent equilibrium between a DNA unwound state and a DNA-paired duplex-like state. Experiments with off-target RNA guides and pre-nicked DNA substrates identified the PAM-distal DNA unwinding equilibrium as a mismatch sensing checkpoint prior to the first step of DNA cleavage. The data sheds light on the distinct targeting mechanism of Cas12a and may better inform CRISPR based biotechnology developments.

biochemistry↗