The Hippo signaling pathway restricts the oncogenic potential of an intestinal regeneration program
Although a developmental role for Hippo signaling in organ size control is well appreciated, how this pathway functions in tissue regeneration is largely unknown. Here we address this issue using a dextran sodium sulfate (DSS)-induced colonic regeneration model. We find that regenerating crypts express elevated Yes-associated protein (YAP) levels. Inactivation of YAP causes no obvious intestinal defects under normal homeostasis, but severely impairs DSS-induced intestinal regeneration. Conversely, hyperactivation of YAP results in widespread early-onset polyp formation following DSS treatment. Thus, the YAP oncoprotein must be exquisitely controlled in tissue regeneration to allow compensatory proliferation and prevent the intrinsic oncogenic potential of a tissue regeneration program.
- Research Article
146
- 10.1074/jbc.m117.804005
- Sep 1, 2017
- Journal of Biological Chemistry
Impaired angiogenesis and wound healing carry significant morbidity and mortality in diabetic patients. Metabolic stress from hyperglycemia and elevated free fatty acids have been shown to inhibit endothelial angiogenesis. However, the underlying mechanisms remain poorly understood. In this study, we show that dysregulation of the Hippo-Yes-associated protein (YAP) pathway, an important signaling mechanism in regulating tissue repair and regeneration, underlies palmitic acid (PA)-induced inhibition of endothelial angiogenesis. PA inhibited endothelial cell proliferation, migration, and tube formation, which were associated with increased expression of mammalian Ste20-like kinases 1 (MST1), YAP phosphorylation/inactivation, and nuclear exclusion. Overexpression of YAP or knockdown of MST1 prevented PA-induced inhibition of angiogenesis. When searching upstream signaling mechanisms, we found that PA dysregulated the Hippo-YAP pathway by inducing mitochondrial damage. PA treatment induced mitochondrial DNA (mtDNA) release to cytosol, and activated cytosolic DNA sensor cGAS-STING-IRF3 signaling. Activated IRF3 bound to the MST1 gene promoter and induced MST1 expression, leading to MST1 up-regulation, YAP inactivation, and angiogenesis inhibition. Thus, mitochondrial damage and cytosolic DNA sensor cGAS-STING-IRF3 signaling are critically involved in PA-induced Hippo-YAP dysregulation and angiogenesis suppression. This mechanism may have implication in impairment of angiogenesis and wound healing in diabetes.
- Research Article
76
- 10.1016/j.ajpath.2013.12.017
- Jan 29, 2014
- The American Journal of Pathology
Elevated YAP and Its Downstream Targets CCN1 and CCN2 in Basal Cell Carcinoma: Impact on Keratinocyte Proliferation and Stromal Cell Activation
- Research Article
9
- 10.4110/in.2020.20.e36
- Jan 1, 2020
- Immune Network
Hippo signaling pathways are evolutionarily conserved signal transduction mechanisms mainly involved in organ size control, tissue regeneration, and tumor suppression. However, in mammals, the primary role of Hippo signaling seems to be regulation of immunity. As such, humans with null mutations in STK4 (mammalian homologue of Drosophila Hippo; also known as MST1) suffer from recurrent infections and autoimmune symptoms. Although dysregulated T cell homeostasis and functions have been identified in MST1-deficient human patients and mouse models, detailed cellular and molecular bases of the immune dysfunction remain to be elucidated. Although the canonical Hippo signaling pathway involves transcriptional co-activator Yes-associated protein (YAP) or transcriptional coactivator with PDZ motif (TAZ), the major Hippo downstream signaling pathways in T cells are YAP/TAZ-independent and they widely differ between T cell subsets. Here we will review Hippo signaling mechanisms in T cell immunity and describe their implications for immune defects found in MST1-deficient patients and animals. Further, we propose that mutual inhibition of Mst and Akt kinases and their opposing roles on the stability and function of forkhead box O and β-catenin may explain various immune defects discovered in mutant mice lacking Hippo signaling components. Understanding these diverse Hippo signaling pathways and their interplay with other evolutionarily-conserved signaling components in T cells may uncover molecular targets relevant to vaccination, autoimmune diseases, and cancer immunotherapies.
- Research Article
252
- 10.1074/jbc.ra118.002715
- Jul 1, 2018
- Journal of Biological Chemistry
The Hippo pathway plays an important role in regulating tissue homeostasis, and its effectors, the transcriptional co-activators Yes-associated protein (YAP) and WW domain-containing transcription regulator 1 (WWTR1 or TAZ), are responsible for mediating the vast majority of its physiological functions. Although YAP and TAZ are thought to be largely redundant and similarly regulated by Hippo signaling, they have developmental, structural, and physiological differences that suggest they may differ in their regulation and downstream functions. To better understand the functions of YAP and TAZ in the Hippo pathway, using CRISPR/Cas9, we generated YAP KO, TAZ KO, and YAP/TAZ KO cell lines in HEK293A cells. We evaluated them in response to many environmental conditions and stimuli and used RNA-Seq to compare their transcriptional profiles. We found that YAP inactivation has a greater effect on cellular physiology (namely, cell spreading, volume, granularity, glucose uptake, proliferation, and migration) than TAZ inactivation. However, functional redundancy between YAP and TAZ was also observed. In summary, our findings confirm that the Hippo pathway effectors YAP and TAZ are master regulators for multiple cellular processes but also reveal that YAP has a stronger influence than TAZ.
- Research Article
114
- 10.1002/path.2856
- Mar 7, 2011
- The Journal of Pathology
Autosomal dominant polycystic kidney disease (ADPKD) is characterized by progressive deterioration of renal function and formation of cysts, and is an important cause of end-stage renal disease. Previously we showed that tubular epithelial injury accelerates cyst formation in inducible Pkd1-deletion mice. In these mice, expression of the planar cell polarity (PCP) component Four-jointed (Fjx1) is decreased during epithelial repair, while in control mice Fjx1 expression is increased and may be required during tissue regeneration. In cystic kidneys, however, Fjx1 expression is also increased. Besides a PCP component, Four-jointed is also implicated in the Hippo-signalling pathway. This pathway is involved in organ size control by regulating proliferation and apoptosis. The role of Hippo signalling, together with the opposing expression pattern of Fjx1 during epithelial repair and at cystic stages, triggered us to investigate the activity of the Hippo pathway during these processes. Therefore, we examined its final effector molecule, the transcriptional co-activator Yes-associated protein (YAP) and observed that during tissue repair, YAP expression was not different between Pkd1-deletion mice and controls, ie during tissue regeneration YAP expression was increased and predominantly localized in the cytoplasm but normalized after tissue repair. At a later stage, however, in cystic epithelia and epithelia of dilated tubules, strong nuclear YAP accumulation was observed, accompanied by up-regulation of the YAP transcriptional targets Birc-3, Ctgf, InhbA, and Fjx1. Altered activity of the Hippo pathway was confirmed in renal tissues from human ADPKD and ARPKD patients, as well as in cystic renal tumours. Our data strengthen the concept that during epithelial repair Four-jointed is involved in PCP signalling, while in cystic kidneys it is related to Hippo signalling and cyst growth.
- Research Article
132
- 10.1053/j.gastro.2016.11.005
- Nov 15, 2016
- Gastroenterology
Prostaglandin E2 Activates YAP and a Positive-Signaling Loop to Promote Colon Regeneration After Colitis but Also Carcinogenesis in Mice
- Research Article
- 10.1158/1538-7445.am2019-4394
- Jul 1, 2019
- Cancer Research
Non-small cell lung cancer (NSCLC) is the leading cause of cancer-related mortality in the United States. Lung adenocarcinomas are highly correlated with smoking and are characterized by mutations in KRAS, EGFR, BRAF and other oncogenes. KRAS mutations are widespread in adenocarcinomas among smokers and known to be a key player in various downstream signaling pathways contributing to the tumorigenesis. Recently, a non-canonical IκB kinase, Tank Binding Kinase 1 (TBK1), has been found to contribute in KRAS mutant cancers. TBK1 has well documented functions in immune response, cell survival and in mitosis. While it has been suggested that TBK1-mediated regulation of Akt signaling might facilitate oncogenesis, the molecular mechanisms underlying TBK1 function downstream of KRAS is not fully elucidated. Yes associated protein 1 (YAP1) is an oncogenic component of the Hippo signaling cascade which could promote KRAS mediated oncogenesis and could substitute for the loss of Kras in mouse models of pancreatic cancer. In our present study, we demonstrate a unique and novel interplay between TBK1 and the oncogenic Hippo effector molecule, YAP1. YAP1 and its paralog, TAZ are known transcriptional co-activators that function to maintain organ size during development and is often activated in cancers. We find that TBK1 could physically interact with YAP1 and phosphorylate it at T110, T114, S128 and S131 residues in vitro. Knocking down (KD) or knock out (KO) of TBK1 resulted in a significant elevation of YAP1 expression at the protein level; surprisingly, without any effect at the mRNA level. Interestingly, the upregulation of YAP1 upon depletion of TBK1 was restricted to KRAS mutant NSCLC cell-lines and not in EGFR mutant cell lines. This elevation of YAP1 upon TBK1 KD was mainly observed in the nucleus; notably, there were only minimal changes in the levels of MST and LATS, raising the possibility that these changes occur independent of the classic hippo signaling pathway. Treatment with cycloheximide, an inhibitor of protein-translation, could not diminish the elevated level of YAP1 protein in the TBK1 depleted cells, indicating that the increased YAP1 level is due to enhanced protein stability, probably as a result of post-translational modification(s). Depletion of TBK1 also resulted in the induction of EMT-like features, promoting cell-migration in scratch assays and elevated the proportion of stem-like side-population cells, probably in a YAP1-dependent manner. An unbiased RNA-Seq analysis in A549 and H460 cells indicated that MAP kinase (MAPK) pathway is activated upon TBK1 KD, which might also be involved in the YAP1 protein regulation. Our recent experiments further support this argument. The in-depth molecular mechanism(s) by which TBK1 regulates YAP1 in KRAS mutant cells are under investigation, and we hypothesize that this regulatory event contributes to KRAS mediated oncogenesis in NSCLC. Citation Format: Biswarup Saha, Neha Jaiswal, Namrata Bora-Singhal, Srikumar Chellappan. Molecular interplay between Tank-binding kinase (TBK1) and Yes-associated protein (YAP1) in KRAS mutant NSCLC [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2019; 2019 Mar 29-Apr 3; Atlanta, GA. Philadelphia (PA): AACR; Cancer Res 2019;79(13 Suppl):Abstract nr 4394.
- Supplementary Content
79
- 10.3390/genes7090055
- Aug 30, 2016
- Genes
The Hippo signaling pathway is a highly-conserved developmental pathway that plays an essential role in organ size control, tumor suppression, tissue regeneration and stem cell self-renewal. The YES-associated protein (YAP) and the transcriptional co-activator with PDZ-binding motif (TAZ) are two important transcriptional co-activators that are negatively regulated by the Hippo signaling pathway. By binding to transcription factors, especially the TEA domain transcription factors (TEADs), YAP and TAZ induce the expression of growth-promoting genes, which can promote organ regeneration after injury. Therefore, controlled activation of YAP and TAZ can be useful for regenerative medicine. However, aberrant activation of YAP and TAZ due to deregulation of the Hippo pathway or overexpression of YAP/TAZ and TEADs can promote cancer development. Hence, pharmacological inhibition of YAP and TAZ may be a useful approach to treat tumors with high YAP and/or TAZ activity. In this review, we present the mechanisms regulating the Hippo pathway, the role of the Hippo pathway in tissue repair and cancer, as well as a detailed analysis of the different strategies to target the Hippo signaling pathway and the genes regulated by YAP and TAZ for regenerative medicine and cancer therapy.
- Research Article
- 10.1007/s10620-025-09505-x
- Nov 7, 2025
- Digestive diseases and sciences
Various signaling modules that affect epithelial wound healing are dysregulated in ulcerative colitis. Hippo signaling, acting downstream of cytoskeletal remodeling, is necessary for intestinal epithelial regeneration. Death-associated protein kinase 3 (DAPK3) is a regulator of actin cytoskeleton organization that also controls cellular proliferation and apoptosis responses. Recent genetic linkages between DAPK3 and the Hippo pathway suggest signaling coordination that has not been empirically evaluated. The impact of HS38, a DAPK3 inhibitor, on epithelial wound healing was examined using the dextran-sodium-sulphate (DSS) murine model of experimental colitis and Caco-2 human intestinal epithelial cell (IEC) monolayers. DAPK3 was significantly elevated in IECs isolated from DSS-treated mice, with cytoplasmic staining observed in epithelial crypts. The administration of HS38 to mice receiving DSS impeded the resolution of intestinal injury with attenuated IEC proliferation. HS38 treatment in DSS-colitis was also accompanied with decreased pS127, but not pS397, phosphorylation of Yes-associated protein (YAP). The data suggest that HS38 treatment, and hence DAPK3 inhibition, attenuates Hippo pathway signaling with subsequent nuclear enrichment of YAP. Additional analysis of single-cell RNAseq transcriptomic data from mucosal biopsies of UC patients reveals strong positive correlations between DAPK3 and YAP1 in the epithelial compartment. This study establishes DAPK3 as a novel factor in intestinal epithelial regeneration and ulcerative colitis progression by way of Hippo/YAP signaling. Nevertheless, the role that DAPK3 plays in different cell types will need further investigation to decipher the full consequence of DAPK3 involvement in epithelial homeostasis.
- Discussion
- 10.1161/circresaha.122.320880
- Mar 18, 2022
- Circulation Research
Sugar, Fat, and YAP: A Recipe for Vascular Stiffness.
- Research Article
- 10.1038/nrm3281
- Jan 23, 2012
- Nature Reviews Molecular Cell Biology
The Hippo tumour suppressor pathway regulates organ size, but less is known about how the pathway is activated. Zhao et al. show that, in cell cultures, detachment from the extracellular matrix induces cytoplasmic localization and phosphorylation, and thus inactivation, of the transcription co-activator YAP (Yes-associated protein), which is a known oncoprotein and regulator of organ size. YAP inactivation by cell detachment depended on the actin and microtubule cytoskeletons and was mediated by the Hippo pathway. Indeed, on cell detachment, the Hippo pathway kinases Large tumour suppressor homologue 1 (LATS1) and LATS2 were shown to phosphorylate YAP. Furthermore, Zhao et al. found that YAP inactivation after cell detachment induced anoikis, a type of apoptosis that is repressed in cancer cells to promote cell survival and metastasis. Thus, YAP inhibition by the Hippo pathway may inhibit metastasis and may be a potential therapeutic target.
- Research Article
15
- 10.15252/embr.202050103
- Aug 7, 2020
- EMBO reports
Controlled cell growth and proliferation are essential for tissue homeostasis and development. Wnt and Hippo signaling are well known as positive and negative regulators of cell proliferation, respectively. The regulation of Hippo signaling by the Wnt pathway has been shown, but how and which components of Wnt signaling are involved in the activation of Hippo signaling during nutrient starvation are unknown. Here, we report that a reduction in the level of low-density lipoprotein receptor-related protein 6 (LRP6) during nutrient starvation induces phosphorylation and cytoplasmic localization of YAP, inhibiting YAP-dependent transcription. Phosphorylation of YAP via loss of LRP6 is mediated by large tumor suppressor kinases 1/2 (LATS1/2) and Merlin. We found that O-GlcNAcylation of LRP6 was reduced, and the overall amount of LRP6 was decreased via endocytosis-mediated lysosomal degradation during nutrient starvation. Merlin binds to LRP6; when LRP6 is less O-GlcNAcylated, Merlin dissociates from it and becomes capable of interacting with LATS1 to induce phosphorylation of YAP. Our data suggest that LRP6 has unexpected roles as a nutrient sensor and Hippo signaling regulator.
- Research Article
24
- 10.1016/j.lfs.2019.117159
- Dec 11, 2019
- Life Sciences
Inhibition of Siah2 ubiquitin ligase ameliorates monocrotaline-induced pulmonary arterial remodeling through inactivation of YAP
- Research Article
304
- 10.1038/nrgastro.2016.59
- May 5, 2016
- Nature Reviews Gastroenterology & Hepatology
The Hippo pathway is a signalling cascade conserved from Drosophila melanogaster to mammals. The mammalian core kinase components comprise MST1 and MST2, SAV1, LATS1 and LATS2 and MOB1A and MOB1B. The transcriptional co-activators YAP1 and TAZ are the downstream effectors of the Hippo pathway and regulate target gene expression. Hippo signalling has crucial roles in the control of organ size, tissue homeostasis and regeneration, and dysregulation of the Hippo pathway can lead to uncontrolled cell growth and malignant transformation. Mammalian intestine consists of a stem cell compartment as well as differentiated cells, and its ability to regenerate rapidly after injury makes it an excellent model system to study tissue homeostasis, regeneration and tumorigenesis. Several studies have established the important role of the Hippo pathway in these processes. In addition, crosstalk between Hippo and other signalling pathways provides tight, yet versatile, regulation of tissue homeostasis. In this Review, we summarize studies on the role of the Hippo pathway in the intestine on these physiological processes and the underlying mechanisms responsible, and discuss future research directions and potential therapeutic strategies targeting Hippo signalling in intestinal disease.
- Research Article
45
- 10.1074/jbc.m116.732529
- Sep 1, 2016
- Journal of Biological Chemistry
During development, the Hippo signaling pathway regulates key physiological processes, such as control of organ size, regeneration, and stem cell biology. Yes-associated protein (YAP) is a major transcriptional co-activator of the Hippo pathway. The scaffold protein IQGAP1 interacts with more than 100 binding partners to integrate diverse signaling pathways. In this study, we report that IQGAP1 binds to YAP and modulates its activity. IQGAP1 and YAP co-immunoprecipitated from cells. In vitro analysis with pure proteins demonstrated a direct interaction between IQGAP1 and YAP. Analysis with multiple fragments of each protein showed that the interaction occurs via the IQ domain of IQGAP1 and the TEAD-binding domain of YAP. The interaction between IQGAP1 and YAP has functional effects. Knock-out of endogenous IQGAP1 significantly increased the formation of nuclear YAP-TEAD complexes. Transcription assays were performed with IQGAP1-null mouse embryonic fibroblasts and HEK293 cells with IQGAP1 knockdown by CRISPR/Cas9. Quantification demonstrated that YAP-TEAD-mediated transcription in cells lacking IQGAP1 was significantly greater than in control cells. These data reveal that IQGAP1 binds to YAP and modulates its co-transcriptional function, suggesting that IQGAP1 participates in Hippo signaling.