PubMed HealthSearch

PubMed · 40121081

Visualizing the conformational landscape of CRISPR-Cas9 through kinetics-informed structural studies.

Abstract

CRISPR-Cas9 has transformed genome editing through its programmability and versatility. Its DNA cleavage activity involves dynamic conformational changes during gRNA binding, DNA recognition, R-loop formation, and endonuclease activation. Understanding these molecular transitions is critical for improving the specificity and efficiency of Cas9, but this remains challenging precisely due to these rapid structural rearrangements. Early structural studies provided foundational insights but were limited to static states under catalytically inactive conditions. Cryo-EM has since enabled visualization of the dynamic nature of active Cas9, by enriching for specific conformations. This chapter introduces a kinetics-informed cryo-EM approach to capture the stepwise activation of Cas9 in real time. With thorough kinetic analyses, such as stopped-flow measurements of R-loop formation, we describe how to identify optimal timepoints to visualize key conformational states with cryo-EM. Integration of kinetic and structural data enables precise mapping of the conformational landscape of Cas9 and other dynamic enzymes, advancing our understanding of their molecular mechanisms and providing a framework for engineering enhanced variants.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Grace N Hibshman, David W Taylor. 2025-03-06. Visualizing the conformational landscape of CRISPR-Cas9 through kinetics-informed structural studies.. https://doi.org/10.1016/bs.mie.2025.01.004

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Human endogenous retrovirus K (HERV-K) envelope structures in pre- and postfusion by cryo-EM.

Human endogenous retroviruses (HERVs) are remnants of ancient infections that comprise ~8% of the human genome. The HERV-K envelope glycoprotein (Env) is aberrantly expressed in cancers, autoimmune disorders, and neurodegenerative diseases, and is targeted by patients' own antibodies. However, a lack of structural information has limited molecular and immunological studies of the roles of HERVs in disease. Here, we present cryo-electron microscopy structures of stabilized HERV-K Env in the prefusion conformation, revealing a distinct fold and architecture compared to HIV and simian immunodeficiency virus. We also generated and characterized a panel of monoclonal antibodies with subunit and conformational specificity, serving as valuable research tools. These antibodies enabled structure determination of the postfusion conformation of HERV-K Env, including its unique "tether" helix, and antibody-bound prefusion Env. Together, these results provide a structural framework that opens the door to mechanistic studies of HERV-K Env and tools for its evaluation as a potential therapeutic target.

Cryoelectron Microscopy

Disassembly activates Retron-Septu for antiphage defense.

Retrons are antiphage defense systems that produce multicopy single-stranded DNA (msDNA) and hold promise for genome engineering. However, the mechanisms of defense remain unclear. The Retron-Septu system integrates retron and Septu antiphage defenses. Cryo-electron microscopy structures reveal asymmetric nucleoprotein complexes comprising a reverse transcriptase, msDNA (a hybrid of msdDNA and msrRNA), and two PtuAB copies. msdDNA and msrRNA are essential for assembling this complex, with msrRNA adopting a conserved lariat-like structure that regulates reverse transcription. Notably, the assembled Retron-Septu complex is inactive, with msdDNA occupying the PtuA DNA binding site. Activation occurs upon disassembly, releasing PtuAB, which degrades single-stranded DNA to restrict phage replication. This "arrest-and-release" mechanism underscores the dynamic regulatory roles of msDNA, advancing our understanding of antiphage defense strategies.

Cryoelectron Microscopy

General and robust sample preparation strategies for cryo-EM studies of CRISPR-Cas9 and Cas12 enzymes.

Cas9 and Cas12 are RNA-guided DNA endonucleases derived from prokaryotic CRISPR-Cas adaptive immune systems that have been repurposed as versatile genome-engineering tools. Computational mining of genomes and metagenomes has expanded the diversity of Cas9 and Cas12 enzymes that can be used to develop versatile, orthogonal molecular toolboxes. Structural information is pivotal to uncovering the precise molecular mechanisms of newly discovered Cas enzymes and providing a foundation for their application in genome editing. In this chapter, we describe detailed protocols for the preparation of Cas9 and Cas12 enzymes for cryo-electron microscopy. These methods will enable fast and robust structural determination of newly discovered Cas9 and Cas12 enzymes, which will enhance the understanding of diverse CRISPR-Cas effectors and provide a molecular framework for expanding CRISPR-based genome-editing technologies.

Cryoelectron Microscopy