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Biology subjects

Naqvi, A. R.

Publications and source records attributed to Naqvi, A. R..

2 recordsLinked to original sources

Salivary microRNA Profiling of Long COVID Subjects Reveals Host-Encoded Regulators of Inflammation and Viral Persistence

Periodontal disease and COVID-19 are linked by convergent immunoinflammatory pathways, yet the molecular basis of their interaction remains poorly defined. Here, we present a comprehensive salivary microRNA profile from individuals with prior SARS-CoV-2 infection, sampled approximately 3-6 months after diagnosis and meeting criteria for long COVID, providing new insight into the post-viral oral microenvironment. Salivary miRNA sequencing revealed widespread repression in patients with PD, consistent with persistent immune dysregulation. Relative to COVID-19-negative/PD-negative controls, thirty-two miRNAs were differentially expressed in COVID-19-positive/PD-positive individuals, all significantly downregulated. A similar signature was observed in a post-vaccination cohort for the selected dysregulated miRNAs. Integrative pathway analyses identified these miRNAs as regulators of core inflammatory circuits, including Ras, MAPK, and NF{kappa}B signaling, converging on IL-1{beta}- and TNF-centered networks relevant to both PD and COVID-19. Mechanistically, restoration of three downregulated miRNAs, miR- miR-30e-3p 106-3p-3p, and miR-652-3p attenuated NF{kappa}B activation and cytokine release in TLR-stimulated human oral keratinocytes, while their functional suppression using inhibitors potentiates inflammation. These miRNAs were also predicted to target SARS-CoV-2 spike and nucleocapsid transcripts, an interaction validated by dual-luciferase reporter assays. Their overexpression further reduced spike and nucleocapsid expression in Beta- and Omicron-infected epithelial cells, as measured by flow cytometry and RT-qPCR confirming host miRNAs as potent endogenous SARS-CoV-2 restriction factor. Together, these findings identify salivary host miRNAs as mechanistic regulators of oral inflammatory tone and viral persistence, establishing a molecular link between periodontal inflammation and post-COVID oral pathology.

immunology↗

A SRC-Annexin A2 axis that couples membrane repair to microRNA export during radiation stress in glioblastoma

Repair of ionizing-radiation (IR)-induced membrane damage is essential for cell survival, and Annexin A2 (ANXA2) mediates this repair by promoting shedding of microvesicles containing both damaged lipid and ANXA2. Here, we show that coupling this process to microRNA export contributes to radiation resistance of glioblastoma, the most common adult brain cancer. Structural modeling and mutational analysis identify that ANXA2 tyrosine 23 (Y23) phosphorylation, required for its IR-induced localization to damaged membranes, is also essential for binding miR-603, a critical regulator of glioblastoma cell state. This binding is required for IR-induced miR-603 export, indicating that the repair program recruiting ANXA2 also positions it to load miR-603 into microvesicles. Mutations that abolish ROS-induced sulfenylation and activation of SRC (SRC-C185A/C245A) suppressed ANXA2-Y23 phosphorylation, microvesicle shedding, and miR-603 export. The epistatic interaction between ANXA2-Y23A, SRC-C185A/C245A, and miR-603 delineates a therapeutically targetable radiation-response network that couples membrane repair with miRNA export.

cancer biology↗