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Wnt signaling in liver regeneration, disease, and cancer

Clinical and Molecular Hepatology 2023;29(1):33-50.
Published online: July 4, 2022

1Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center, Houston, TX, USA

2Genetics and Epigenetics Program, The University of Texas MD Anderson Cancer Center Graduate School of Biomedical Sciences, Houston, TX, USA

Corresponding author : Gengyi Zou Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center, 6565 MD Anderson Blvd Unit 1054, Houston, TX 77030, USA Tel: +1-713-792-3659, Fax: +1-713-794-5369, E-mail: gzou@mdanderson.org
Jae-Il Park Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center, 6565 MD Anderson Blvd. Unit 1052, Houston, TX 77030, USA Tel: +1-713-792-3659, Fax: +1-713-794-5369, E-mail: jaeil@mdanderson.org

Editor: Norifumi Kawada, Osaka City University Medical School, Japan

• Received: March 1, 2022   • Revised: April 28, 2022   • Accepted: June 30, 2022

Copyright © 2023 by The Korean Association for the Study of the Liver

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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Wnt signaling in liver regeneration, disease, and cancer
Clin Mol Hepatol. 2023;29(1):33-50.   Published online July 4, 2022
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Wnt signaling in liver regeneration, disease, and cancer
Image Image Image Image
Figure 1. Wnt signaling. Illustration of canonical and non-canonical Wnt signaling. The hallmark of the canonical Wnt/β-catenin pathway is the stabilization and nuclear translocation of β-catenin. In the absence of Wnt ligands, cytoplasmic β-catenin is degraded by the destruction complex (Axin, APC, GSK3β, and CK1α). Upon Wnt ligand binding to Frizzled receptors (FZDs) and LRP, the destruction complex is inhibited, β-catenin protein is stabilized in the cytosol and translocated into the nucleus. Nuclear β-catenin then recruits transcriptional coactivator CREBBP to transactivate target genes in conjunction with TCF/LEF transcription factors. Additionally, FZDs are ubiquitinated by ZNRF3 and RNF43 E3 ligases, which are inhibited by R-spondin binding to LGR5, increasing the cells’ sensitivity to Wnt ligands. In Wnt/PCP signaling, Wnt ligands bind to FZDs or their co-receptors (ROR and RYK) to trigger a cascade reaction, involving the small GTPases RhoA and Ras-related C3 botulinum toxin substrate (Rac), then activating Rho-associated protein kinases (ROCKs) and JUN N-terminal kinases (JNK), respectively. These lead to cytoskeletal rearrangements and/or transcriptional responses such as ATF2. In Wnt/Ca2+ signaling, the activation of phospholipase C (PLC) triggers the release of Ca2+ from the endoplasmic reticulum (ER), which promotes the transcription of nuclear factor of activated T cells (NFAT) through several intermediate steps. Created with BioRender.com. LRP, lipoprotein receptor-related protein; LGR5, leucine-containing repeat G-protein-coupled receptor 5; RNF43, ring finger protein 43; ZNRF3, zinc and ring finger 3; GSK-3β, glycogen synthase kinase 3β; CK1α, casein kinase 1α; APC, adenomatous polyposis coli; CBP, CREB binding protein; TCF/LEF, T-cell factor/lymphoid enhancer-binding factor; ROR, receptor tyrosine kinase-like orphan receptor; RYK, receptor tyrosine kinase; ARF2, activating transcription factor 2; PIP2, phosphatidylinositol 4,5-biphosphate; DAG, diacylglycerol; PKC, protein kinase C.
Figure 2. Wnt signaling in liver regeneration. In normal liver, most hepatocytes are polyploid with random chromosomal deletions. Upon liver injury, the increased narrow portal vein pressure stimulates the initiating signals for liver regeneration. The activation of Wnt signaling is crucial in liver regeneration. Moreover, in chronic liver injury, the ROS and lipid peroxide are the risk factors damaging the reproducing hepatocytes, leading to precancerous lesion development. Created with BioRender.com. ROS, reactive oxygen species.
Figure 3. Wnt signaling in liver cancer. Dynamic activation of β-catenin and Wnt signaling-related gene mutations from risk factor exposure to final liver cancer. With the precancerous lesions induced by hepatitis virus, NAFLD, alcohol assumption, or aflatoxin-B1, genetic and epigenetic alteration (e.g., mutations in the CTNNB1 or AXIN1 genes) lead to the accumulation and nuclear translocation of β-catenin, resulting in initiating liver cancer development. Created with BioRender.com. NAFLD, non-alcoholic fatty liver disease.
Figure 4. Manipulating Wnt signaling. Illustration of components and processes of Wnt signal transduction as druggable targets for liver cancer treatment. See the text for detail. Created with BioRender.com. GPC3, glypican-3; LRP, lipoprotein receptor-related protein; FZD, frizzed; DKK1, Dickkopf 1; ROR, receptor tyrosine kinase-like orphan receptor; RYK, receptor tyrosine kinase; PORCN, porcupine; ER, endoplasmic reticulum; GSK-3β, glycogen synthase kinase 3β; CK1α, casein kinase 1α; APC, adenomatous polyposis coli; TCF, T-cell factor; CBP, CREB binding protein; LEF, lymphoid enhancer-binding factor; peg-IFN, pegylated-Interferon-α2a; RanBP3, Ran-binding protein 3.
Wnt signaling in liver regeneration, disease, and cancer
Agent Target Phase Trial identifier Type
DKN-01 DKK1 Phase I/II NCT03645980 Protein
OMP-18R5 FZD1, 2, 5, 7, and 8 Phase I NCT01345201 Protein
sFZD7 FZD7 Preclinical NA Protein
RHPDs FZD7 Preclinical NA Protein
OMP-54F28 FZD8 Phase I NCT02069145 Protein
Salinomycin LRP5/6 Preclinical NA Natural compounds
CGX1321 PORCN Phase I NCT03507998 Small molecule inhibitors
IWP12 PORCN Preclinical NA Small molecule inhibitors
ETC-159 PORCN Phase I NCT02521844 Small molecule inhibitors
RXC004 PORCN Phase I NCT03447470 Small molecule inhibitors
NVP-TNKS656 Tankyrase Preclinical NA Small molecule inhibitors
XAV939/WXL-8 Tankyrase Preclinical NA Small molecule inhibitors
CGP049090 TCF/β-catenin Preclinical NA Natural compounds
PKF118-310 TCF/β-catenin Preclinical NA Natural compounds
PKF115-584 TCF/β-catenin Preclinical NA Natural compounds
FH535 TCF/β-catenin Preclinical NA Small molecule inhibitors
Peg-IFN TCF/β-catenin Phase II NCT00610389 Protein
WIF1-Fc and sFRP-Fc Wnt ligands Preclinical NA Protein
Anti-Wnt1 Wnt1 Preclinical NA Protein
CGK062 β-catenin phosphorylation Preclinical NA Small molecule inhibitors
PMED-1 β-catenin/CBP Preclinical NA Small molecule inhibitors
PRI-724 β-catenin/CBP Phase I/II NCT01302405 Small molecule inhibitors
Hydroxychloroquine v-ATPase Phase II NCT03037437 Small molecule inhibitors
Chloroquine v-ATPase Preclinical NA Small molecule inhibitors
Bafilomycin v-ATPase Preclinical NA Small molecule inhibitors
Concanamycin v-ATPase Preclinical NA Small molecule inhibitors
CAR-GPC3 T cell GPC3 Phase I NCT02932956 Cells
Anti-GPC3 antibody GPC3 Phase II NCT01507168 Protein
CIK with anti-GPC3 GPC3 Phase II NCT03146637 Cells
Table 1. Targeting Wnt signaling in liver cancers

DKK1, Dickkopf 1; FZD, frizzed; NA, not available; PORCN, porcupine; TCF, T-cell factor; peg-IFN, pegylated-Interferon-α2a; CBP, CREB binding protein; v-ATPase, vacuolar-type ATPase.