The RSPO-LGR4/5-ZNRF3/RNF43 module controls liver zonation and size
NATURE CELL BIOLOGY
Authors: Planas-Paz, Lara; Orsini, Vanessa; Boulter, Luke; Calabrese, Diego; Pikiolek, Monika; Nigsch, Florian; Xie, Yang; Roma, Guglielmo; Donovan, Adriana; Marti, Patricia; Beckmann, Nicolau; Dill, Michael T.; Carbone, Walter; Bergling, Sebastian; Isken, Andrea; Mueller, Matthias; Kinzel, Bernd; Yang, Yi; Mao, Xiaohong; Nicholson, Thomas B.; Zamponi, Raffaella; Capodieci, Paola; Valdez, Reginald; Rivera, Daniel; Loew, Andreas; Ukomadu, Chinweike; Terracciano, Luigi M.; Bouwmeester, Tewis; Cong, Feng; Heim, Markus H.; Forbes, Stuart J.; Ruffner, Heinz; Tchorz, Jan S.
Abstract
LGR4/5 receptors and their cognate RSPO ligands potentiate Wnt/beta-catenin signalling and promote proliferation and tissue homeostasis in epithelial stem cell compartments. In the liver, metabolic zonation requires a Wnt/beta-catenin signalling gradient, but the instructive mechanism controlling its spatiotemporal regulation is not known. We have now identified the RSPO-LGR4/5-ZNRF3/RNF43 module as a master regulator of Wnt/beta-catenin-mediated metabolic liver zonation. Liver-specific LGR4/5 loss of function (LOF) or RSPO blockade disrupted hepatic Wnt/beta-catenin signalling and zonation. Conversely, pathway activation in ZNRF3/RNF43 LOF mice or with recombinant RSPO1 protein expanded the hepatic Wnt/beta-catenin signalling gradient in a reversible and LGR4/5-dependent manner. Recombinant RSPO1 protein increased liver size and improved liver regeneration, whereas LGR4/5 LOF caused the opposite effects, resulting in hypoplastic livers. Furthermore, we show that LGR4(+) hepatocytes throughout the lobule contribute to liver homeostasis without zonal dominance. Taken together, our results indicate that the RSPO-LGR4/5-ZNRF3/RNF43 module controls metabolic liver zonation and is a hepatic growth/size rheostat during development, homeostasis and regeneration.
RANK-RANKL signalling in cancer
BIOSCIENCE REPORTS
Authors: Renema, Nathalie; Navet, Benjamin; Heymann, Marie-Francoise; Lezot, Frederic; Heymann, Dominique
Abstract
Oncogenic events combined with a favourable environment are the two main factors in the oncological process. The tumour microenvironment is composed of a complex, interconnected network of protagonists, including soluble factors such as cytokines, extracellular matrix components, interacting with fibroblasts, endothelial cells, immune cells and various specific cell types depending on the location of the cancer cells (e.g. pulmonary epithelium, osteoblasts). This diversity defines specific "niches" (e.g. vascular, immune, bone niches) involved in tumour growth and the metastatic process. These actors communicate together by direct intercellular communications and/or in an autocrine/paracrine/endocrine manner involving cytokines and growth factors. Among these glycoproteins, RANKL (receptor activator nuclear factor-kappa B ligand) and its receptor RANK (receptor activator nuclear factor), members of the TNF and TNFR superfamilies, have stimulated the interest of the scientific community. RANK is frequently expressed by cancer cells in contrast with RANKL which is frequently detected in the tumour microenvironment and together they participate in every step in cancer development. Their activities are markedly regulated by osteoprotegerin (OPG, a soluble decoy receptor) and its ligands, and by LGR4, a membrane receptor able to bind RANKL. The aim of the present review is to provide an overview of the functional implication of the RANK/RANKL system in cancer development, and to underline the most recent clinical studies.