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Biology subjects

Kwon, G.

Publications and source records attributed to Kwon, G..

2 recordsLinked to original sources

TACE reprograms RANKL-mediated differentiation of macrophages by activating the non-canonical pathway of IRF3

Inflammation is associated with an influx of inflammatory macrophages and increased activation and differentiation of osteoclasts. Receptor activator of NF-kB ligand (RANKL) is a key driver for osteoclast differentiation. However, the pathogenic mechanisms augmenting RANKL-induced osteoclast differentiation in inflammatory conditions are not fully elucidated. Here, we show that TNF- converting enzyme (TACE) plays a critical role in pathological bone erosion and enhances osteoclast differentiation in inflammatory conditions. Myeloid cell-specific TACE deletion in a murine arthritis model attenuates joint inflammation and bone destruction. TACE deficiency suppresses distal RANKL signaling in macrophages by increasing IRF3 activation, while enhancing proximal RANKL signaling, leading to the suppression of osteoclast differentiation. Mechanistically, IRF3 activation limits macrophage reprogramming by suppressing NFATc1 and HB-EGF in response to RANKL through a non-canonical pathway. HB-EGF, a TACE substrate, activates EGFR signaling and promotes osteoclastogenesis by inhibiting IRF3 activation. TACE regulates the reciprocal inhibition of the IRF3-HBEGF axis. Our study highlights a role for TACE as a rheostat, balancing both pro- and anti-osteoclastogenic signals.

cell biology↗

Selective epigenetic regulation of IFN-γ signature genes by JAK inhibitor in inflammatory diseases

This study addresses the molecular mechanisms behind JAK inhibitors (JAKi) epigenetic regulation of IFN-{gamma}-induced genes in macrophages, key players in controlling inflammation in chronic diseases such as rheumatoid arthritis (RA) and COVID-19. Utilizing transcriptomic and epigenomic approaches, we reveal that JAKi selectively regulate gene programs in IFN-{gamma}-activated human macrophages. Our single-cell analysis identified high expression of IFN-{gamma} signature genes in macrophages from RA and severe COVID-19 patients. JAKi suppressed some inflammatory genes, while a subset remained unresponsive to JAK-STAT inhibition. We discovered that JAKi selectively target IRF-STAT-dependent open chromatin regions, leaving AP-1-C/EBP-regulated genes with open chromatin unaffected. Some JAKi-insensitive genes could be inhibited by JNK inhibitors in IFN-{gamma}-primed macrophages. Our analysis also identified JAKi-sensitive and - insensitive IFN-{gamma} signature genes in RA patients resistant to MTX treatments and COVID-19 vaccinated donors, highlighting JAKis therapeutic potential and risks. These findings uncover new JAKi responsiveness mechanisms through epigenomic changes in IFN-{gamma}-primed macrophages, advancing our understanding of inflammation regulation in chronic diseases. TeaserDiscover how JAK inhibitors selectively regulate gene programs, shedding light on inflammation control in chronic diseases.

immunology↗