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Habib, O.

Publications and source records attributed to Habib, O..

4 recordsLinked to original sources

A preclinical pig model of Angelman syndrome mirrors the early developmental trajectory of the human condition

Angelman syndrome is a neurodevelopmental disorder characterized by severe motor and cognitive deficits. It is caused by the loss of the maternally inherited allele of the imprinted ubiquitin-protein ligase E3A (UBE3A) gene. Rodent models of Angelman syndrome do not fully recapitulate all the symptoms associated with the condition and are limited as a preclinical model for therapeutic development. Here, we show that pigs (Sus scrofa) with a maternally inherited deletion of UBE3A (UBE3A-/+) have altered postnatal behaviors, impaired vocalizations, reduced brain growth, motor incoordination, and ataxia. Neonatal UBE3A-/+ pigs exhibited several symptoms observed in infants with Angelman syndrome, including hypotonia, suckling deficits, and failure to thrive. Collectively, these findings are consistent with the pathophysiology and developmental trajectory observed in individuals with Angelman syndrome. We anticipate that this pig model will advance our understanding of the pathophysiology of Angelman syndrome and be used as a preclinical large animal model for therapeutic development.

genetics↗

Investigating the Structural Impact and Conformational Dynamics of a Sequence Variant (c.242G>A) in TMIE Gene Provoking Usher Syndrome

Usher syndrome (USH) is a retinal autosomal recessive genetic disorder, characterized by congenital severe-to-profound sensorineural hearing loss, retinitis pigmentosa (RP), and rarely vestibular dysfunction. A transmembrane inner ear gene TMIE causing autosomal recessive usher syndrome hearing loss, which may open up interesting perspectives into the function of this protein in inner ear. This disease is linked with mutations in TMIE gene. In this study delineates the pathogenic association, miss-fold aggregation, and conformational paradigm of a missense variant (c.242G>A) resulting into (p.Arg81His) in TMIE gene segregating usher syndrome through a molecular dynamics simulations approach. The transmembrane inner ear expressed protein assumes a critical role as its helices actively engage in binding with specific target DNA base pairs. The alteration observed in the mutant protein, characterized by an outward repositioning of the proximal helical portion, which is attributed to the absence of preceding beta-hairpins in the C-terminal region. This structural modification results in the loss of hydrogen bonds, exposure of hydrophobic residues to the solvent, and a consequential transformation of helices into loops, ultimately leading to functional impairment in the TMIE protein. These notable modifications in the stability and conformation of the mutant protein were verified through essential dynamics analysis, revealing that a point mutation induces distinct overall motions and correlations between proteins, ultimately resulting in usher syndrome. The current study provides insilico evidences of Usher syndrome hearing loss disease as protein folding disorder. The energy calculation also revealed that there is a difference of -251.211Kj/mol which also indicates that the SNP has significantly decreased the stability of protein consequently folding into Usher syndrome. This study contributes molecular insights into the structural correlation between the TMIE protein and usher syndrome. The docking analysis highlight various interaction between wild and mutant structure emphasizing key residues involved in hydrogen and hydrophobic interaction.

bioinformatics↗

Detailed mechanisms for unintended large DNA deletions with CRISPR, base editors, and prime editors

CRISPR-Cas9 nucleases are versatile tools for genetic engineering cells and function by producing targeted double-strand breaks (DSBs) in the DNA sequence. However, the unintended production of large deletions (>100 bp) represents a challenge to the effective application of this genome-editing system. We optimized a long-range amplicon sequencing system and developed a k-mer sequence-alignment algorithm to simultaneously detect small DNA alteration events and large DNA deletions. With this workflow, we determined that CRISPR-Cas9 induced large deletions at varying frequencies in cancer cell lines, stem cells, and primary T cells. With CRISPR interference screening, we determined that end resection and the subsequent TMEJ [DNA polymerase theta-mediated end joining] repair process produce most large deletions. Furthermore, base editors and prime editors also generated large deletions despite employing mutated Cas9 "nickases" that produce single-strand breaks. Our findings reveal an important limitation of current genome-editing tools and identify strategies for mitigating unwanted large deletion events.

genetics↗

Comprehensive analysis of prime editing outcomes in human embryonic stem cells

Prime editing is a versatile and precise genome editing technique that can directly copy desired genetic modifications into target DNA sites without the need for donor DNA. This technique holds great promise for the analysis of gene function, disease modeling, and the correction of pathogenic mutations in clinically relevant cells such as human pluripotent stem cells (hPSCs). Here we comprehensively tested prime editing in hPSCs by generating a doxycycline-inducible prime editing platform. Prime editing successfully induced all types of nucleotide substitutions and small insertions and deletions, similar to observations in other human cell types. Moreover, we compared prime editing and base editing for correcting a disease-related mutation in induced pluripotent stem cells derived form a patient with 1-antitrypsin (A1AT) deficiency. Finally, whole-genome sequencing showed that, unlike the cytidine deaminase domain of cytosine base editors, the reverse transcriptase domain of a prime editor does not lead to guide RNA-independent off-target mutations in the genome. Our results demonstrate that prime editing in hPSCs has great potential for complementing previously developed CRISPR genome editing tools.

genomics↗