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Rajappan, K.

Publications and source records attributed to Rajappan, K..

2 recordsLinked to original sources

Targeted Epigenetic Modulation Outperforms Nuclease- and Deaminase-Based Editing for Durable Pcsk9 Silencing in a Clinically Relevant Delivery System

Inhibition of proprotein convertase subtilisin/kexin type 9 (PCSK9) lowers low-density lipoprotein cholesterol, a major risk factor for cardiovascular disease. Although several gene therapy strategies targeting Pcsk9 have been developed, direct comparisons across modalities are limited. To address this, we systematically evaluated cytosine base editing, nuclease-based CRISPR-Cas9, and epigenetic gene editing for Pcsk9 suppression. We first engineered a cytosine base editor to introduce a premature stop codon, then optimized and characterized an epigenetic editor, and finally delivered all modalities as mRNA formulated in Arcturus lipid nanoparticles (LUNAR(R)) into wild-type mice, benchmarking them against conventional CRISPR-Cas9 and GalNAc-siRNA. Remarkably, epigenetic editing achieved the most efficient and sustained repression of PCSK9, maintaining low protein levels throughout the entire 30-day study period. By comparison, cytosine base editing reduced PCSK9 with minimal double-stranded DNA breaks and off-target effects, but editing precision requires further improvement, while GalNAc-siRNA produced only transient suppression, limiting its suitability for a one-time therapeutic approach. Collectively, these findings highlight the superior durability and efficacy of epigenetic gene editing and provide proof-of-concept for its combination with LUNAR(R) delivery as a promising strategy for long-lasting hepatic-targeted therapy.

molecular biology↗

Longitudinal Plasma Proteome Changes Before and After Catheter Ablation in Atrial Fibrillation

BackgroundProteins in human plasma serve as critical markers for predicting disease risk and guiding therapeutic development. Current prediction models for atrial fibrillation (AF) largely rely on electronic health records; however, the plasma proteome of patients with AF reflects key biological processes, including inflammation, that are not captured by clinical variables alone. Circulating inflammatory mediators contribute to electrical and structural remodelling in the atria, thereby sustaining the AF phenotype. Identification of plasma proteins associated with AF may therefore improve understanding of the inflammatory and other biological processes underlying AF pathophysiology. ObjectiveIn this study, we profiled the plasma proteome of patients with paroxysmal AF (pxAF), persistent AF (persAF), and non-AF controls using Olink assay technology. MethodsPlasma samples from 30 individuals were analysed with the Olink Reveal panel. Differential expression analysis of normalised protein expression (NPX) values was performed between groups, with differentially expressed proteins (DEPs) defined by P < 0.05. ResultsWe identified 87 DEPs in pxAF and 107 DEPs in persAF compared with controls. From these, we shortlisted 11 candidate proteins that were upregulated in persAF at baseline and showed reduced expression 12 months after catheter ablation. This subset of proteins is implicated in the regulation of inflammation (CCL23, CXCL10, IL33), metabolism (ALDH3A1, NDUFS6), cell-matrix adhesion (AFAP1L1, LGALS7, SPOCK1), and physiological signalling (NOS1, PROK1, PTH). ConclusionCollectively, these plasma proteins highlight systemic molecular mechanisms contributing to AF pathogenesis and represent potential AF-specific biomarkers warranting further investigation in larger clinical cohorts and mechanistic studies.

molecular biology↗