Search bioRxiv⌕ Search

Biology subjects

BK, T.

Publications and source records attributed to BK, T..

2 recordsLinked to original sources

Dissecting ARL15 Function in Rheumatoid Arthritis: Insights from Ex Vivo and In Vitro Synovial Fibroblast Models

ARL15, coding for a small GTPase was identified as a non-HLA susceptibility gene in rheumatoid arthritis (RA) through a GWAS in a North Indian cohort. Serum adiponectin and ARL15 levels were higher in RA patients with the associated genotype. The present study aimed to delineate the functional role of ARL15 in RA pathobiology using gene knockdown (KD) combined with transcriptomic profiling in both ex-vivo RA synovial fibroblasts (RASF) and in vitro MH7A cell lines. In RASF, ARL15 KD led to the downregulation of COMP-an extracellular matrix stabilizer linked to severe RA-alongside upregulation of adiponectin and IFN response genes such as IFI6 and USP18. Furthermore, upregulation of NPTX1 and MX1, previously associated with disease modulation and treatment response was observed. Downregulation of CTGF, CD248, and PTX3 suggested involvement of ARL15 in inflammation and RA-associated cardiovascular risk. In contrast, ARL15 KD in MH7A cells displayed distinct gene signatures with upregulated cytokines (IL1A, IL8, CXCLs) and downregulated inflammatory regulators (DOCK2, TLR4, TGFB2), reflecting an inflammatory bias distinct from the patient-derived RASF. This divergence highlights the limitations of immortalized cell models in capturing patient heterogeneity and disease complexity. However, the dual-system approach underscores the multifaceted role of ARL15 in regulating connective tissue architecture, inflammation, and immune response. These key findings position ARL15 as a promising therapeutic target, warranting further investigation in RA animal models and genomic medicine. Taken together, this work provides a compelling rationale to pursue ARL15 targeted interventions in RA management.

immunology↗

Deletion induced splicing in RIC3 drives nicotinic acetylcholine receptor regulation with implications for endoplasmic reticulum stress in human astrocytes

Nicotinic acetylcholine receptor (nAChR) dysregulation in astrocytes is reported in neurodegenerative disorders. Modulation of nAChRs through agonists confers protection to astrocytes from stress but regulation of chaperones is unclear. Resistance to inhibitors of cholinesterase 3 (RIC3) is a potential chaperone of nAChRs but poorly studied in humans. We characterized RIC3 in astrocytes derived from an isogenic wild-type and a Cas9 edited del human iPSC line harboring a 25bp homozygous deletion in exon2. Altered RIC3 transcript ratio due to deletion induced splicing and an unexpected gain of 7nAChR expression were observed in del astrocytes. Transcriptome analysis showed higher expression of neurotransmitter/G-protein coupled receptors mediated by cAMP and calcium/calmodulin-dependent kinase signaling. Functional implications of these observations were examined using tunicamycin induced ER stress. Wild-type astrocyte stress model showed cell cycle arrest, RIC3 upregulation, reduction in 7nAChR surface levels but increased 4nAChR surface expression. Conversely, tunicamycin treated del astrocytes showed a comparatively higher 4nAChR surface expression and upsurged cAMP signaling. In addition, reduced expression of stress markers CHOP, phospho-PERK and lowered XBP1 splicing in western blot and qPCR, validated by proteome-based pathway analysis indicated lowered disease severity. These findings indicate i) a complex RNA regulatory mechanism via exonic deletion induced splicing; ii) RIC-3 as a disordered protein having contrasting effects on co-expressed nAChR subtypes under basal/stress conditions; and iii) RIC3 as a potential drug target against ER stress in astrocytes for nicotine related brain disorders. Furthermore, cellular rescue mechanism through deletion induced exon skipping possibly opens up ASO based therapies for tauopathies.

neuroscience↗