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TLR4-dependent fibroblast activation drives persistent organ fibrosis in skin and lung
Swati Bhattacharyya, Wenxia Wang, Wenyi Qin, Kui Cheng, Sara Coulup, Sherry Chavez, Shuangshang Jiang, Kirtee Raparia, Lucia Maria V. De Almeida, Christian Stehlik, Zenshiro Tamaki, Hang Yin, John Varga
Swati Bhattacharyya, Wenxia Wang, Wenyi Qin, Kui Cheng, Sara Coulup, Sherry Chavez, Shuangshang Jiang, Kirtee Raparia, Lucia Maria V. De Almeida, Christian Stehlik, Zenshiro Tamaki, Hang Yin, John Varga
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Research Article Pulmonology

TLR4-dependent fibroblast activation drives persistent organ fibrosis in skin and lung

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Abstract

Persistent fibrosis in multiple organs is the hallmark of systemic sclerosis (SSc). Recent genetic and genomic studies implicate TLRs and their damage-associated molecular pattern (DAMP) endogenous ligands in fibrosis. To test the hypothesis that TLR4 and its coreceptor myeloid differentiation 2 (MD2) drive fibrosis persistence, we measured MD2/TLR4 signaling in tissues from patients with fibrotic SSc, and we examined the impact of MD2 targeting using a potentially novel small molecule. Levels of MD2 and TLR4, and a TLR4-responsive gene signature, were enhanced in SSc skin biopsies. We developed a small molecule that selectively blocks MD2, which is uniquely required for TLR4 signaling. Targeting MD2/TLR4 abrogated inducible and constitutive myofibroblast transformation and matrix remodeling in fibroblast monolayers, as well as in 3-D scleroderma skin equivalents and human skin explants. Moreover, the selective TLR4 inhibitor prevented organ fibrosis in several preclinical disease models and mouse strains, and it reversed preexisting fibrosis. Fibroblast-specific deletion of TLR4 in mice afforded substantial protection from skin and lung fibrosis. By comparing experimentally generated fibroblast TLR4 gene signatures with SSc skin biopsy gene expression datasets, we identified a subset of SSc patients displaying an activated TLR4 signature. Together, results from these human and mouse studies implicate MD2/TLR4-dependent fibroblast activation as a key driver of persistent organ fibrosis. The results suggest that SSc patients with high TLR4 activity might show optimal therapeutic response to selective inhibitors of MD2/TLR4 complex formation.

Authors

Swati Bhattacharyya, Wenxia Wang, Wenyi Qin, Kui Cheng, Sara Coulup, Sherry Chavez, Shuangshang Jiang, Kirtee Raparia, Lucia Maria V. De Almeida, Christian Stehlik, Zenshiro Tamaki, Hang Yin, John Varga

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Figure 3

MD2/TLR4 inhibitor treatment ameliorates skin fibrosis.

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MD2/TLR4 inhibitor treatment ameliorates skin fibrosis.
(A–D) C57BL/6J m...
(A–D) C57BL/6J mice received daily s.c. injections of PBS or bleomycin alone, bleomycin together with T5342126 (0.5 or 1 mg/kg/d), or vehicle started on day 0 or day 15. Mice were sacrificed at day 22, and skin was harvested for analysis. (A) Masson’s Trichrome stain. Representative images. Scale bar: 25 μm. (B) Dermal thickness (mean ± SD of 5 determinations/hpf from 5 mice/group). One-way ANOVA followed by Sidak’s multiple comparison test. (C) Immunofluorescence using antibodies to α-smooth muscle actin (αSMA, green) and DAPI (blue). Representative images. Scale bar: 50 μm. Red arrows, α-SMA+ cells in dermis. Scale bar: 200 μm. Relative fluorescence intensities (means from 4 randomly selected from 3 mice/group). (D) qPCR. Results, normalized with GAPDH, are mean ± SD of triplicate determinations from 3 mice/group. One-way ANOVA followed by Sidak’s multiple comparison test. *P < 0.05. (E) Six-week-old Tsk1/+ mice injected with i.p. T5342126 daily were sacrificed at 12 weeks of age, and dorsal skin was harvested. Left panels, H&E stain (dotted lines indicate hypodermis); right panel, hypodermal thickness (mean ± SD of 5 determinations/hpf from 5 mice/group). Scale bar: 200 μm. Student’s t test. (F) Schemes of the experiments in A and E.

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