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Biology subjects

Mulipa, P.

Publications and source records attributed to Mulipa, P..

2 recordsLinked to original sources

The lncRNA HOTAIR/EZH2 interaction inhibitor AC1Q3QWB (AQB) attenuates fibrotic SSc skin tissue re-modelling

ObjectivesThe long non-coding RNA HOTAIR has previously been shown to drive pro-fibrotic gene expression in SSc dermal fibroblasts through its ability to interact with EZH2. Targeting EZH2 enzymatic activity can reverse HOTAIR mediated pro-fibrotic gene expression but its many functions make it an undesirable therapeutic target for SSc. Recently inhibitors selectively targeting the HOTAIR/EZH2 interaction have been developed. The aim of this study was to characterise the ability of one of these inhibitors to modulate SSc tissue remodelling. MethodsExplanted healthy and SSc dermal fibroblasts were treated with the HOTAIR/EZH2 inhibitor AC1Q3QWB (AQB) (20{micro}M) for 48 hours. In addition, healthy dermal fibroblasts were transduced with a lentivirus encoding HOTAIR or a scrambled control. Conditioned media from healthy, SSc and HOTAIR-expressing dermal fibroblasts was used to stimulate human keratinocytes (HaCaTs). Scramble control and HOTAIR expressing fibroblasts were grown in 3D skin equivalents containing primary keratinocytes and keratin 9 (K9) immunohistochemistry performed. ResultsAQB inhibits pro-fibrotic gene expression in HOTAIR expressing dermal fibroblasts, validating the specificity of the inhibitor. In SSc patient dermal fibroblasts, AQB blocked pro-fibrotic gene expression but did not affect gene expression in healthy dermal fibroblasts. SSc patient skin was shown to express high levels of the palmoplantar specific K9 and Epithelial to Mesenchymal transition (EMT) markers. Through co-culture experiments we showed these effects were mediated by SSc dermal fibroblasts. This tissue remodelling was disrupted when HOTAIR/EZH2 interaction was inhibited in the fibroblasts with AQB. ConclusionsWe have shown for the first time that directly inhibiting HOTAIR/EZH2 interaction blocks pro-fibrotic gene expression in SSc fibroblasts and tissue re-modelling found in SSc patient skin. This may represent a novel therapeutic intervention.

Cell Biology↗

Aurora A kinase activation contributes to the fibrotic phenotype in Systemic Sclerosis through primary cilia shortening

BackgroundSystemic sclerosis (SSc) is a severe autoimmune disease characterised by progressive fibrosis driven by fibroblast activation. Primary cilia, key hubs for profibrotic signalling, are markedly shortened in SSc fibroblasts, but the mechanisms underlying this phenotype remain unclear. This study aimed to define the signalling pathways responsible for primary cilia shortening and fibroblast activation in SSc. MethodsPrimary dermal fibroblasts from SSc patients and healthy controls were analysed for cilia incidence and length by immunofluorescence, profibrotic marker expression by qPCR, and contractility using gel contraction assays. Cells were treated with TGF{beta}1 and pharmacological inhibitors targeting AURKA, HDAC6, ROCK2, and Smad3 signalling. CAV1-silenced fibroblasts were used as an in vitro model of SSc. ResultsMaintenance of the constitutively short primary cilia phenotype in SSc fibroblasts did not require active TGF{beta} signalling. However, TGF{beta}1 induced reversible cilia shortening in healthy fibroblasts and further shortened cilia in SSc fibroblasts to a similar final length, mediated by Rho/ROCK2 rather than canonical Smad3-dependent signalling. Constitutive cilia shortening in SSc was driven by aberrant AURKA activity upstream of HDAC6, promoting ciliary disassembly. Pharmacological inhibition of AURKA or HDAC6 selectively elongated cilia in SSc fibroblasts, reduced profibrotic marker expression, and abrogated fibroblast contractility. CAV1-silenced fibroblasts similarly exhibited constitutive cilia shortening that was reversed by AURKA inhibition without affecting healthy cells. ConclusionsAberrant activation of the AURKA/HDAC6 axis maintains short primary cilia and promotes fibroblast activation in SSc. These findings reveal a mechanistic link between cilia morphology and fibrosis and identify AURKA as a potential therapeutic target for SSc-associated tissue remodelling.

cell biology↗