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Khashan, R.

Publications and source records attributed to Khashan, R..

2 recordsLinked to original sources

Mechanistic Insight into the Conformational Changes of Cas8 upon Binding to Different PAM Sequences in the Transposon-Encoded Type I-F CRISPR-Cas System

The INTEGRATE system is a gene-editing approach that offers advantages over the widely used CRISPR-Cas9 system. It does not introduce double strand breaks in the target DNA but rather integrates the desired DNA sequence directly into it. The first step in the integration process is PAM recognition, which is critical to understanding and optimizing the system. Experimental testing revealed varying integration efficiencies of different PAM mutants, and computational simulations were carried out to gain mechanistic insight into the conformational changes of Cas8 during PAM recognition. Our results showed that the interaction between Arg246 and Guanine at position (-1) of the target strand is critical for PAM recognition. We found that unfavorable interactions in the 5-AC-3 PAM mutant disrupted this interaction and may be responsible for its 0% integration efficiency. Additionally, we discovered that PAM sequences not only initiate the integration process but also regulate it through an allosteric mechanism that connects the N-terminal domain and the helical bundle of Cas8. This allosteric regulation was present in all PAMs tested, even those with lower integration efficiencies, such as 5-TC-3 and 5-AC-3. We identified the Cas8 residues that are involved in this regulation. Our findings provide valuable insights into PAM recognition mechanisms in the INTEGRATE system and can help improve the gene-editing technology.

molecular biology↗

The Impact of Mismatches Within the RNA: DNA Hybrid in the Transposon-Encoded Type I-F CRISPR-Cas System

Recent research has revealed a collaboration between type I-F CRISPR systems and Tn7 transposons in certain bacteria, leading to the discovery of a new gene-editing tool called INTEGRATE. This system integrates transposons into the target strand without introducing a double-strand break or repair mechanism, making it highly promising. The published results showed that a full match between the spacer region of crRNA and the target DNA is necessary to form a stable and complete R-loop, which is critical for accurate integration. PAM-distal mismatches affected RNA-guided DNA transposition differently, with mismatches in positions 25-28 completely blocking the process, while mismatches in positions 29-32 were tolerated. To understand the impact of PAM-distal mismatches on the R-loop stabilization and transposition process, classical all-atom molecular dynamics simulations were conducted using three independent models, including one with a complete RNA-DNA match and two with PAM-distal mismatches located at positions 25-32. Our results suggest that the stable rotation of Cas8-HB is a critical step in the interaction with TniQ and initiation of the DNA transposition process. Network analysis techniques were employed to investigate the communication pathways within Cas8 and TniQ dimers, including eigenvector centrality and correlation analysis. These techniques revealed that certain amino acids in TniQ and Cas8 were highly central to the communication pathways, as they exhibited significant changes in centrality under both mismatches. The findings discussed in this study provide valuable insights into the mechanisms involved in the DNA transposition process and shed light on how PAM-distal mismatches can affect these mechanisms.

molecular biology↗