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bioRxiv · 10.1101/2023.12.12.571289

Extracellular Matrix Protein 1 Attenuates Hepatic Fibrosis by Inhibiting TSP-, ADAMTS-, and MMP-Mediated Latent TGF-β1 Activation

Abstract

ObjectiveExtracellular Matrix Protein 1 (ECM1) serves as a gatekeeper of hepatic fibrosis by maintaining transforming growth factor-{beta}1 (TGF-{beta}1) in its latent form. ECM1 knockout (KO) causes latent (L) TGF-{beta}1 activation, resulting in hepatic fibrosis with rapid mortality. In chronic liver disease (CLD), ECM1 decreases with increasing CLD severity. We investigate the regulatory role of ECM1 in TGF-{beta}1 bioavailability and its impact on CLD progression. DesignRNAseq was performed to analyze hepatic gene expression. Functional assays were performed using hepatic stellate cells (HSCs), Ecm1-KO and Fxr-KO mice, patient liver tissue, and computer simulations. ResultsExpression of LTGF-{beta}1 activators, including thrombospondins (TSPs), ADAMTS proteases, and matrix metalloproteinases (MMPs) increased along with pro-fibrotic gene expression in liver tissue of Ecm1-KO mice. In HSCs, overexpression of ECM1 prevented TSP-1-, ADAMTS1-, and MMP-2/9-mediated LTGF-{beta}1 activation. In vitro interaction assays demonstrated that ECM1 inhibited LTGF-{beta}1 activation by interacting with TSP-1 and ADAMTS1 via their respective, intrinsic KRFK or KTFR amino acid sequences, and by suppressing MMP-2/9 proteolytic activity. In mice, ECM1 overexpression attenuated KRFK-induced LTGF-{beta}1 activation, while KTFR treatment reversed Ecm1-KO- and Fxr-KO-mediated liver injury. In patients with CLD, ECM1 expression was inversely correlated with TSP-1, ADAMTS1, MMP-2/9 expression and LTGF-{beta}1 activation. And these results were complemented by a computational compartment model representing the key network of cellular phenotypes and predicted interactions in liver fibrogenesis. ConclusionOur findings underscore the hepatoprotective effect of ECM1, which interferes with mediators of LTGF-{beta}1 activation, suggesting ECM1 or its representative peptide as potential anti-fibrotic therapies in CLD. What is already known on this topic?[tpltrtarr] ECM1 expression is negatively correlated with CLD progression. [tpltrtarr]ECM1 maintains liver homeostasis by keeping TGF-{beta}1 latency. What this study adds?[tpltrtarr] ECM1 inhibits LTGF-{beta}1 activation through interfering with key activators, including TSP-1, ADAMTS1, MMP-2, and MMP-9. [tpltrtarr]ECM1 interacts with TSP-1 and ADAMTS1 via their respective, intrinsic KRFK or KTFR amino acid motifs, and suppresses MMP-2/9 proteolytic activity. [tpltrtarr]In vivo, ECM1 overexpression mitigates KRFK peptide-induced LTGF-{beta}1 activation, while KTFR peptide rescues Ecm1-KO- and Fxr-KO-induced liver injury. [tpltrtarr]ECM1 expression inversely correlates with TSP-1, ADAMTS1, MMP-2/9 expression and LTGF-{beta}1 activation in CLD patients. How might this study affect research, practice or policy?[tpltrtarr] Considering severe adverse effects associated with anti-fibrotic treatments utilizing TGF-{beta}1 receptor inhibitors, our findings indicate that restoration of ECM1 expression or phenocopying peptides might represent a novel and safe route to urgently needed anti-fibrotic therapies in CLD.

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BibTeXRIS

Link, F., Li, Y., Zhao, J., Munker, S., Fan, W., Nwosu, Z., Yao, Y., Hammad, S., Liebe, R., Liu, H., Shao, C., Sun, B., Torok, N. J., Ding, H., Ebert, M., Weng, H., Dijke, P. t., Drasdo, D., Dooley, S., Wang, S.. 2023-12-12. Extracellular Matrix Protein 1 Attenuates Hepatic Fibrosis by Inhibiting TSP-, ADAMTS-, and MMP-Mediated Latent TGF-β1 Activation. https://doi.org/10.1101/2023.12.12.571289

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