TY - JOUR
T1 - Single Molecule FRET Analysis of CRISPR Cas9 Single Guide RNA Folding Dynamics
AU - Okafor, Ikenna C.
AU - Ha, Taekjip
N1 - Funding Information:
Figure 1A was created with PyMOL. We thank Sarah Woodson for advice on the design of labeled sgRNA constructs and input on the manuscript. A special thanks goes to Janice Choi, Vinu Harihar, and Chidinma Nnadi for their assistance with reagent prep and analysis. Research reported in this publication was supported by the National Institute of General Medical Sciences of the National Institutes of Health under Award F31GM134675. The content is solely the responsibility of the authors and does not necessarily represent the official views of the National Institutes of Health. The project was supported by grants from the National Science Foundation (Grant PHY-1430124 to T.H.) and the National Institutes of Health (Grant GM 122569 to T.H.). T.H. is an investigator with the Howard Hughes Medical Institute. I.C.O. is supported by a Ruth L. Kirschstein Predoctoral Individual National Research Service Award.
Funding Information:
A was created with PyMOL. We thank Sarah Woodson for advice on the design of labeled sgRNA constructs and input on the manuscript. A special thanks goes to Janice Choi, Vinu Harihar, and Chidinma Nnadi for their assistance with reagent prep and analysis. Research reported in this publication was supported by the National Institute of General Medical Sciences of the National Institutes of Health under Award F31GM134675. The content is solely the responsibility of the authors and does not necessarily represent the official views of the National Institutes of Health. The project was supported by grants from the National Science Foundation (Grant PHY-1430124 to T.H.) and the National Institutes of Health (Grant GM 122569 to T.H.). T.H. is an investigator with the Howard Hughes Medical Institute. I.C.O. is supported by a Ruth L. Kirschstein Predoctoral Individual National Research Service Award.
Publisher Copyright:
© 2022 The Authors. Published by American Chemical Society.
PY - 2023/1/12
Y1 - 2023/1/12
N2 - CRISPR Cas9 is an RNA guided endonuclease that is part of a bacterial adaptive immune system. Single guide RNA (sgRNA) can be designed to target genomic DNA, making Cas9 a programmable DNA binding/cutting enzyme and allowing applications such as epigenome editing, controlling transcription, and targeted DNA insertion. Some of the main hurdles against an even wider adoption are off-target effects and variability in Cas9 editing outcomes. Most studies that aim to understand the mechanisms that underlie these two areas have focused on Cas9 DNA binding, DNA unwinding, and target cleavage. The assembly of Cas9 RNA ribonucleoprotein complex (RNP) precedes all these steps and includes sgRNA folding and Cas9 binding to sgRNA. We know from the crystal structure of the Cas9 RNP what the final sgRNA conformation is. However, the assembly dynamics has not been studied in detail and a better understanding of RNP assembly could lead to better-designed sgRNAs and better editing outcomes. To study this process, we developed a single molecule FRET assay to monitor the conformation of the sgRNA and the binding of Cas9 to sgRNA. We labeled the sgRNA with a donor fluorophore and an acceptor fluorophore such that when the sgRNA folds, there are changes in FRET efficiency. We measured sgRNA folding dynamics under different ion conditions, under various methods of folding (refolding vs vectorial), and with or without Cas9. sgRNA that closely mimics the sgRNA construct used for high resolution structural analysis of the Cas9-gRNA complex showed two main FRET states without Cas9, and Cas9 addition shifted the distribution toward the higher FRET state attributed to the properly assembled complex. Even in the absence of Cas9, folding the sgRNA vectorially using a superhelicase-dependent release of the sgRNA in the direction of transcription resulted in almost exclusively high FRET state. An addition of Cas9 during vectorial folding greatly reduced a slow-folding fraction. Our studies shed light on the heterogeneous folding dynamics of sgRNA and the impact of co-transcriptional folding and Cas9 binding in sgRNA folding. Further studies of sequence dependence may inform rational design of sgRNAs for optimal function.
AB - CRISPR Cas9 is an RNA guided endonuclease that is part of a bacterial adaptive immune system. Single guide RNA (sgRNA) can be designed to target genomic DNA, making Cas9 a programmable DNA binding/cutting enzyme and allowing applications such as epigenome editing, controlling transcription, and targeted DNA insertion. Some of the main hurdles against an even wider adoption are off-target effects and variability in Cas9 editing outcomes. Most studies that aim to understand the mechanisms that underlie these two areas have focused on Cas9 DNA binding, DNA unwinding, and target cleavage. The assembly of Cas9 RNA ribonucleoprotein complex (RNP) precedes all these steps and includes sgRNA folding and Cas9 binding to sgRNA. We know from the crystal structure of the Cas9 RNP what the final sgRNA conformation is. However, the assembly dynamics has not been studied in detail and a better understanding of RNP assembly could lead to better-designed sgRNAs and better editing outcomes. To study this process, we developed a single molecule FRET assay to monitor the conformation of the sgRNA and the binding of Cas9 to sgRNA. We labeled the sgRNA with a donor fluorophore and an acceptor fluorophore such that when the sgRNA folds, there are changes in FRET efficiency. We measured sgRNA folding dynamics under different ion conditions, under various methods of folding (refolding vs vectorial), and with or without Cas9. sgRNA that closely mimics the sgRNA construct used for high resolution structural analysis of the Cas9-gRNA complex showed two main FRET states without Cas9, and Cas9 addition shifted the distribution toward the higher FRET state attributed to the properly assembled complex. Even in the absence of Cas9, folding the sgRNA vectorially using a superhelicase-dependent release of the sgRNA in the direction of transcription resulted in almost exclusively high FRET state. An addition of Cas9 during vectorial folding greatly reduced a slow-folding fraction. Our studies shed light on the heterogeneous folding dynamics of sgRNA and the impact of co-transcriptional folding and Cas9 binding in sgRNA folding. Further studies of sequence dependence may inform rational design of sgRNAs for optimal function.
UR - https://www.scopus.com/pages/publications/85144788493
UR - https://www.scopus.com/pages/publications/85144788493#tab=citedBy
U2 - 10.1021/acs.jpcb.2c05428
DO - 10.1021/acs.jpcb.2c05428
M3 - Article
C2 - 36563314
AN - SCOPUS:85144788493
SN - 1520-6106
VL - 127
SP - 45
EP - 51
JO - Journal of Physical Chemistry B
JF - Journal of Physical Chemistry B
IS - 1
ER -