The formation of lung metastasis as part of the progression of colon cancer is a poorly understood process. Theoretically, liver metastases could seed lung metastases. To assess the contribution of the liver lymphatic vasculature to metastatic spread to the lungs, we generated murine liver-metastasis-derived organoids overexpressing vascular endothelial growth factor (VEGF)-C. The organoids were reimplanted into the mouse liver for tumour generation and onward metastasis. Liver metastases from patients with concomitant lung metastases showed higher expression of VEGF-C, lymphatic vessel hyperplasia, and tumour cell invasion into lymphatic vessels when compared to those without lung metastases. Reimplantation of VEGF-C overexpressing organoids into the mouse liver showed that VEGF-C caused peritumoral lymphatic vessel hyperplasia, lymphatic tumour cell invasion, and lung metastasis formation. This change in metastatic organotropism was accompanied by reduced expression of WNT-driven adult stem cell markers, and increased expression of fetal stem cell markers and NOTCH pathway genes. Further NOTCH pathway inhibition with γ-secretase inhibitor (DAPT) in vivo results in a slight reduction in lung metastases and a decrease in lymphatic hyperplasia and invasion in VEGF-C-overexpressing tumours. Collectively, these data indicate that VEGF-C can drive onward metastasis from the liver to the lung and suggest that targeting VEGF-C/NOTCH pathways may impair the progression of colorectal cancer.
Colorectal cancer metastasizes predominantly to the liver but also to the lungs and the peritoneum. The presence of extra-hepatic metastases limits curative (surgical) treatment options and is associated with very poor survival. The mechanisms governing multi-organ metastasis formation are incompletely understood. Here, we tested the hypothesis that the site of tumor growth influences extra-hepatic metastasis formation. To this end, we implanted murine colon cancer organoids into the primary tumor site (i.e., the caecum) and into the primary metastasis site (i.e., the liver) in immunocompetent mice. The organoid-initiated liver tumors were significantly more efficient in seeding distant metastases compared to tumors of the same origin growing in the caecum (intra-hepatic: 51 vs. 40%, p = 0.001; peritoneal cavity: 51% vs. 33%, p = 0.001; lungs: 30% vs. 7%, p = 0.017). The enhanced metastatic capacity of the liver tumors was associated with the formation of ‘hotspots’ of vitronectin-positive blood vessels surrounded by macrophages. RNA sequencing analysis of clinical samples showed a high expression of vitronectin in liver metastases, along with signatures reflecting hypoxia, angiogenesis, coagulation, and macrophages. We conclude that ‘onward spread’ from liver metastases is facilitated by liver-specific microenvironmental signals that cause the formation of macrophage-associated vascular hotspots. The therapeutic targeting of these signals may help to contain the disease within the liver and prevent onward spread.
The current standard-of-care treatment for refractory BRAF-V600E mutant metastatic colorectal cancer (mCRC) consists of the BRAF inhibitor encorafenib plus the EGFR inhibitor cetuximab. However, tumour responses to this regimen are mostly transient, presumably caused by a rebound in MAPK activation.
More than half of all patients with cancer receive radiation therapy, but resistance is commonly observed. Currently, it is unknown whether resistance to radiation therapy is acquired or inherently present. Here, we employed organoids derived from rectal cancer and single-cell whole-genome sequencing to investigate the long-term evolution of subclones in response to radiation. Comparing single-cell whole-genome karyotypes between in-vitro-unirradiated and -irradiated organoids revealed three patterns of subclonal evolution: (1) subclonal persistence, (2) subclonal extinction, and (3) subclonal expansion. Organoids in which subclonal shifts occurred (i.e., expansion or extinction) became more resistant to radiation. Although radioresistant subclones did not share recurrent copy-number alterations that could explain their radioresistance, resistance was associated with reduced chromosomal instability, an association that was also observed in 529 human cancer cell lines. These data suggest that resistance to radiation is inherently present and associated with reduced chromosomal instability.
Background Bladder cancer is one of the most common cancer types worldwide. Generally, research relies on invasive sampling strategies. Methods Here, we generate bladder cancer organoids directly from urine (urinoids). In this project, we establish 12 urinoid lines from 22 patients with non-muscle and muscle-invasive bladder tumours, with an efficiency of 55%. Results The histopathological features of the urinoids accurately resemble those of the original bladder tumours. Genetically, there is a high concordance of single nucleotide polymorphisms (92.56%) and insertions & deletions (91.54%) between urinoids and original tumours from patient 4. Furthermore, these urinoids show sensitivity to bladder cancer drugs, similar to their tissue-derived organoid counterparts. Genetic analysis of longitudinally generated tumoroids and urinoids from one patient receiving systemic immunotherapy, identify alterations that may guide the choice for second-line therapy. Successful treatment adaptation was subsequently demonstrated in the urinoid setting. Conclusion Therefore, urinoids can advance precision medicine in bladder cancer as a non-invasive platform for tumour pathogenesis, longitudinal drug-response monitoring, and therapy adaptation.
AbstractBackgroundPhysical activity is associated with a lower risk of colorectal cancer (CRC) and CRC‐specific mortality. However, evidence for a causal relationship between physical activity and disease progression is lacking. Here, we have used CRC organoids to create a novel mouse model for spontaneous metastasis formation to multiple organs. We have used this model to assess the influence of voluntary exercise on disease progression.MethodsCollagen‐embedded murine colorectal tumour organoids were transplanted into the livers of immunocompetent C57Bl/6 mice using microsurgery. Voluntary exercise in tumour‐bearing mice was modelled by offering running wheels continuously (n = 12) or 3 h/day (n = 12) versus no wheel access (n = 12). Running wheel revolutions were cumulatively measured every 30 min and physical activity was continuously monitored by infrared cameras. Food intake was monitored throughout the experiment and body composition was assessed with echoMRI. Animals were sacrificed 14 weeks after tumour initiation. Tumour load was quantified by EpCAM immunohistochemistry staining. Systemic inflammation parameters were assessed in blood plasma by a multiplex immunoassay.ResultsTumour growth was initiated by implantation of CRC organoids into the livers of immunocompetent mice. The resulting tumours spontaneously formed distant metastases to non‐implanted liver lobes and to the lungs. Mice with access to the running wheels for 3 h/day ran relatively short distances (2.3 ± 0.3 km/night; 221 ± 29 km total distance) with relatively high intensity (wheel revolutions/h). Mice with continuous access to the running wheels ran significantly longer distances (6.6 ± 3.0 km/night; 600 ± 290 km total distance) with a significantly lower intensity. Both exercise groups showed increased lean body mass, and decreased fat mass and body weight compared with tumour‐bearing control mice. Food intake was unaffected by exercise or tumour growth. Primary tumour growth was not significantly affected by exercise. However, mice with continuous wheel access (long distance‐lower intensity group) displayed increased lung metastasis and decreased liver metastasis formation, when compared with the sedentary control group. Short distance‐higher intensity exercise did not affect metastasis formation. Analysis of blood cytokine levels revealed that mice with continuous wheel access displayed signs of systemic inflammation.ConclusionsThese results suggest that exercise has the potential to influence the patterns and extent of metastasis in CRC, and that the degree and intensity of exercise are likely to be important variables. Confirmation of these results in additional preclinical models with or without systemic treatment is warranted.
PURPOSE:Muscle-wasting and treatment-related toxicities negatively impact prognosis of colorectal cancer (CRC) patients. Specific nutritional composition might support skeletal muscle and enhance treatment support. In this in vitro study we assess the effect of nutrients EPA, DHA, L-leucine and vitamin D3, as single nutrients or in combination on chemotherapy-treated C2C12-myotubes, and specific CRC-tumor cells.MATERIALS AND METHODS:Using C2C12-myotubes, the effects of chemotherapy (oxaliplatin, 5-fluorouracil, oxaliplatin+5-fluorouracil and irinotecan) on protein synthesis, cell-viability, caspase-3/7-activity and LDH-activity were assessed. Addition of EPA, DHA, L-leucine and vitamin D3 and their combination (SNCi) were studied in presence of above chemotherapies. Tumor cell-viability was assessed in oxaliplatin-treated C26 and MC38 CRC cells, and in murine and patient-derived CRC-organoids.RESULTS:While chemotherapy treatment of C2C12-myotubes decreased protein synthesis, cell-viability and increased caspase-3/7 and LDH-activity, SNCi showed improved protein synthesis and cell viability and lowered LDH activity. The nutrient combination SNCi showed a better overall performance compared to the single nutrients. Treatment response of tumor models was not significantly affected by addition of nutrients.CONCLUSIONS:This in vitro study shows protective effect with specific nutrition composition of C2C12-myotubes against chemotherapy toxicity, which is superior to the single nutrients, while treatment response of tumor cells remained.
BACKGROUND:Peritoneal metastases (PM) in colorectal cancer (CRC) are associated with therapy resistance and poor survival. Oxaliplatin monotherapy is widely applied in the intraperitoneal treatment of PM, but fails to yield clinical benefit. We aimed to identify the mechanism(s) underlying PM resistance to oxaliplatin and to develop strategies overcoming such resistance.EXPERIMENTAL DESIGN:We generated a biobank consisting of 35 primary tumour regions and 59 paired PM from 12 patients. All samples were analysed by RNA sequencing. We also generated a series of PM-derived organoid (PMDO) cultures and used these to design and test strategies to overcome resistance to oxaliplatin.RESULTS:PM displayed various hallmarks of aggressive CRC biology. The vast majority of PM and paired primary tumours belonged to the Consensus Molecular Subtype 4 (CMS4). PMDO cultures were resistant to oxaliplatin and expressed high levels of glutamate-cysteine ligase (GCLC) causing detoxification of oxaliplatin through glutathione synthesis. Genetic or pharmacological targeting of GCLC sensitised PMDOs to a 1-h exposure to oxaliplatin, through increased platinum-DNA adduct formation.CONCLUSIONS:These results link oxaliplatin resistance of colorectal PM to their CMS4 status and high reducing capacity. Inhibiting the reducing capacity of PM may be an effective strategy to overcome PM resistance to oxaliplatin.
Abstract Background Skeletal muscle wasting and fatigue are commonly observed in cancer patients receiving chemotherapy and associated with reduced treatment outcome and quality of life. Nutritional support may mitigate these side effects, but potential interference with chemotherapy efficacy could be of concern. Here, we investigated the effects of an ω‐3 polyunsaturated fatty acid (eicosapentaenoic acid and docosahexaenoic acid), leucine‐enriched, high‐protein (100% whey), additional vitamin D, and prebiotic fibres ‘specific nutritional composition’ (SNC) and chemotherapy on state‐of‐the‐art tumour organoids and muscle cells and studied muscle function, physical activity, systemic inflammation, and chemotherapy efficacy in a mouse model of aggressive colorectal cancer (CRC). Methods Tumour‐bearing mice received a diet with or without SNC. Chemotherapy treatment consisted of oxaliplatin and 5‐fluorouracil. Tumour formation was monitored by calliper measurements. Physical activity was continuously monitored by infrared imaging. Ex vivo muscle performance was determined by myography, muscle fatty acid composition by gas chromatography, and plasma cytokine levels by Luminex xMAP technology. Patient‐derived CRC organoids and C2C12 myotubes were used to determine whether SNC affects chemotherapy sensitivity in vitro. Results Specific nutritional composition increased muscle contraction capacity of chemotherapy‐treated tumour‐bearing mice (P < 0.05) and enriched ω‐3 fatty acid composition in muscle without affecting treatment efficacy (P < 0.0001). Mice receiving SNC maintained physical activity after chemotherapy and showed decreased systemic inflammation. Therapeutic response of CRC organoids was unaffected by SNC nutrients, while cell viability and protein synthesis of muscle cells significantly improved. Conclusions The results show that specialized nutritional support can be used to maintain muscle function and physical activity levels during chemotherapy without increasing tumour viability. Therefore, nutritional strategies have potential value in promoting cancer and chemotherapy tolerance.
Skeletal muscle wasting and fatigue are commonly observed in cancer patients receiving chemotherapy and are associated with reduced treatment outcome and quality of life. Nutritional support may mitigate these side effects, but potential interference with chemotherapy efficacy could be of concern. Here, we investigated the effects of a ω-3-PUFA (EPA and DHA), leucine-enriched, high protein (100% whey), additional vitamin D and prebiotic fibers “Specific Nutritional Composition” (SNC) and chemotherapy on state-of-the-art tumor organoid models and muscle cells and studied muscle function, physical activity, systemic inflammation, and chemotherapy efficacy in a mouse model of aggressive colorectal cancer (CRC). Chemotherapy treatment consisted of oxaliplatin and 5-fluorouracil. Tumor formation (caliper) and physical activity (infrared camera's) were assessed over time, while tumor-bearing mice received a diet with or without SNC. Ex vivo muscle performance was determined by myography, muscle fatty acid composition by gas-chromatography, and plasma cytokine levels by Luminex xMAP technology. Patient-derived CRC-organoids and C2C12-myotubes were used to determine whether SNC affects chemotherapy-sensitivity in vitro. SNC increased the muscle contraction capacity of chemotherapy-treated tumor-bearing mice (P < 0.05), and enriched ω-3 fatty acid composition in muscle without affecting treatment efficacy (P < 0.0001) compared to control tumor-bearing mice. Mice receiving SNC maintained physical activity after chemotherapy and showed decreased systemic inflammation and splenomegaly. Therapeutic response of CRC-organoids was unaffected by SNC nutrients, while C2C12 cell viability and protein synthesis significantly improved. The results show that specialized nutritional support can be used to maintain muscle function and levels of physical activity during chemotherapy without increasing tumor viability. Therefore, nutritional strategies have potential value in promoting cancer and chemotherapy tolerance. This research is part of the SCOPE project (Specialized nutrition to improve outcomes of COlorectal cancer PatiEnts) and is supported by the Province of Utrecht, The Netherlands.
DNA mismatch repair deficiency (dMMR) in metastatic colorectal cancer (mCRC) is associated with poor survival and a poor response to systemic treatment. However, it is unclear whether dMMR results in a tumor cell-intrinsic state of treatment resistance, or whether alternative mechanisms play a role. To address this, we generated a cohort of MMR-proficient and -deficient Patient-Derived Organoids (PDOs) and tested their response to commonly used drugs in the treatment of mCRC, including 5-fluorouracil (5-FU), oxaliplatin, SN-38, binimetinib, encorafenib, and cetuximab. MMR status did not correlate with the response of PDOs to any of the drugs tested. In contrast, the presence of activating mutations in the KRAS and BRAF oncogenes was significantly associated with resistance to chemotherapy and sensitivity to drugs targeting oncogene-activated pathways. We conclude that mutant KRAS and BRAF impact the intrinsic sensitivity of tumor cells to chemotherapy and targeted therapy. By contrast, tumor cell-extrinsic mechanisms-for instance signals derived from the microenvironment-must underlie the association of MMR status with therapy response. Future drug screens on rationally chosen cohorts of PDOs have great potential in developing tailored therapies for specific CRC subtypes including, but not restricted to, those defined by BRAF/KRAS and MMR status.
A sophisticated network of BCL-2 family proteins regulates the mitochondria-associated (intrinsic) apoptosis pathway. Antiapoptotic members such as BCL-XL or MCL-1 safeguard the outer mitochondrial membrane and prevent accidental cell death in a functionally redundant and/or compensatory manner. However, BCL-XL/MCL-1-mediated "dual apoptosis protection" also impairs response of cancer cells to chemotherapy. Here, we show that hyperosmotic stress in the tumor environment abrogates dual BCL-XL/MCL-1 protection. Hypertonicity triggers upregulation of NOXA and loss of MCL-1 and thereby enforces exclusive BCL-XL addiction. Concomitant targeting of BCL-XL is sufficient to unlock the intrinsic apoptosis pathway in colorectal cancer cells. Functionally, "osmotic reprogramming" of the tumor environment grants contextual synthetic lethality to BCL-XL inhibitors in dually BCL-XL/MCL-1-protected cells. Generation of contextual synthetic lethality through modulation of the tumor environment could perspectively boost efficacy of anticancer drugs.
Abstract Background: Physical activity (PA) is associated with a lower risk of colorectal cancer (CRC) initiation and death from CRC. However, evidence for a causal link between PA and disease progression is lacking. This study assesses the effect of voluntary exercise on metastases formation in a novel pre-clinical mouse model for late-stage metastatic CRC. Methods: Murine colorectal tumor organoids were transplanted into the livers of immunocompetent C57Bl/6 mice using microsurgery. Animals were fed ad libitum. Voluntary exercise in tumor-bearing (TB) mice was modeled by offering running wheels for 0h/day (n=12), 3h/day (n=12) or 24h/day (n=12). Running wheel revolutions were cumulatively measured every 30min. PA was monitored by infrared cameras. Tumor progression was monitored using in vivo Bioluminescent Imaging. Food intake was measured by weighing. Body composition was monitored by echoMRI. All animals were sacrificed 12 weeks after tumor initiation. Results: We have developed a novel model for exploring the effects of exercise on metastatic tumor progression in CRC. The model combines micro-surgical transplantation of tumor organoids, yielding spontaneously metastasizing CRC, with voluntary exercise. Voluntary exercise in both exercise groups led to an on average running distances of 2,3±0,3 km/night (total 221±29 km) in TB-3h animals and 6,6±3,0km/night (total 600±290km) in TB-24h animals. TB-3h and TB-24h animals developed more lean mass and lower fat mass compared to sedentary animals. Intermittent exercise had no effect on primary tumor growth and reduced metastasis. Vigorous exercise increased primary tumor growth (229606±186012) compared to TB-3h (152821±125902) and sedentary animals (165171±250993). Moreover, vigorous exercise non-significantly increased lung metastasis formation (2382±3539) compared to intermittent exercise (753±852) and to sedentary (1333±2902), while reducing metastatic spread to the liver and the peritoneal cavity was found. Conclusions: These results suggest that exercise has the potential to influence the patterns and extent of metastasis in CRC, and that the degree of exercise is likely to be an important variable. Confirmation of these results in additional models, for instance using patient-derived organoids, is now warranted. Citation Format: Liza A. Wijler, Daniëlle A. Raats, Miriam van Dijk, Anne M. May, Onno Kranenburg. Potential impact of voluntary exercise on patterns of metastasis in a colorectal cancer model [abstract]. In: Proceedings of the Annual Meeting of the American Association for Cancer Research 2020; 2020 Apr 27-28 and Jun 22-24. Philadelphia (PA): AACR; Cancer Res 2020;80(16 Suppl):Abstract nr 3480.
Reactive oxygen species (ROS) function as second messengers in signal transduction, but high ROS levels can also cause cell death. MTH1 dephosphorylates oxidized nucleotides, thereby preventing their incorporation into DNA and protecting tumour cells from oxidative DNA damage. Inhibitors of MTH1 (TH588 and (S) -crizotinib) were shown to reduce cancer cell viability. However, the MTH1-dependency of the anti-cancer effects of these drugs has recently been questioned. Here, we have assessed anti-tumour effects of TH588 and (S) -crizotinib in patient-derived 3D colorectal cancer cultures. Hypoxia and reoxygenation – conditions that increase intracellular ROS levels – increased sensitivity to (S) -crizotinib, but not to TH588. (S) -crizotinib reduced tyrosine phosphorylation of c-MET and ErbB3 whereas TH588 induced a mitotic cell cycle arrest, which was not affected by adding ROS-modulating compounds. Furthermore, we show that both compounds induced DNA damage that could not be prevented by adding the ROS inhibitor N-acetyl-L-cysteine. Moreover, adding ROS-modulating compounds did not alter the reduction in viability in response to TH588 and ( S )-crizotinib. We conclude that TH588 and ( S )-crizotinib have very clear and distinct anti-tumour effects in 3D colorectal cancer cultures, but that these effects most likely occur through distinct and ROS-independent mechanisms.
BACKGROUND:Patients with peritoneal metastases from colorectal cancer have a poor prognosis. If the intraperitoneal tumour load is limited, patients may be eligible for cytoreductive surgery followed by hyperthermic intraperitoneal chemotherapy (HIPEC). This treatment has improved overall survival, but recurrence rates are high. The aim of this study was to create a preclinical platform for the development of more effective intraperitoneal chemotherapy strategies.METHODS:Using organoid technology, five tumour cultures were generated from malignant ascites and resected peritoneal metastases. These were used in an in vitro HIPEC model to assess sensitivity to mitomycin C (MMC) and oxaliplatin, the drugs used most commonly in HIPEC. The model was also used to test a rational combination treatment involving MMC and inhibitors of the checkpoint kinase ATR.RESULTS:MMC was more effective in eliminating peritoneal metastasis-derived organoids than oxaliplatin at clinically relevant concentrations. However, the drug concentrations required to eliminate 50 per cent of the tumour cells (IC50) were higher than the median clinical dose in two of five organoid lines for MMC, and all five lines for oxaliplatin, indicating a general resistance to monotherapy. ATR inhibition increased the sensitivity of all peritoneal metastasis-derived organoids to MMC, as the IC50 decreased 2·6-12·4-fold to well below concentrations commonly attained in clinical practice. Live-cell imaging and flow cytometric analysis showed that ATR inhibition did not release cells from MMC-induced cell cycle arrest, but caused increased replication stress and accelerated cell death.CONCLUSION:Peritoneal metastasis-derived organoids can be used to evaluate existing HIPEC regimens on an individual-patient level and for development of more effective treatment strategies. Surgical relevance Cytoreductive surgery followed by hyperthermic intraperitoneal chemotherapy (HIPEC) has improved prognosis of patients with peritoneal metastases from colorectal cancer, but disease recurrence is common. More effective and personalized HIPEC is urgently needed. Organoid technology is frequently used for drug screens, as patient-derived organoids can accurately predict clinical therapeutic response in vitro. A panel of organoids was established from peritoneal metastases from colorectal cancer and used to develop a model for testing HIPEC regimens in vitro. Patient-derived organoids differed in sensitivity to commonly used chemotherapeutics, in line with variable clinical outcomes following cytoreductive surgery-HIPEC. Combining MMC with an ATR inhibitor improved the efficacy of MMC. Peritoneal metastasis-derived organoids can be used as a platform to test novel (combination) strategies that increase HIPEC efficacy. In the future, organoids could be used to select patent-tailored HIPEC regimens.
Primary human colorectal tumors with a high stromal content have an increased capacity to metastasize. Cancer-associated fibroblasts (CAFs) promote metastasis, but the contribution of other stromal cell types is unclear. Here we searched for additional stromal cell types that contribute to aggressive tumor cell behavior. By making use of the 'immunome compendium'-a collection of gene signatures reflecting the presence of specific immune cell-types-we show that macrophage signatures are most strongly associated with a high CAF content and with poor prognosis in multiple large cohorts of primary tumors and liver metastases. Co-culturing macrophages with patient-derived colonospheres promoted 'budding' of small clusters of tumor cells from the bulk. Immunohistochemistry showed that budding tumor clusters in stroma-rich areas of T1 colorectal carcinomas were surrounded by macrophages. In vitro budding was accompanied by reduced levels of the tight junction protein occludin, but OCLN mRNA levels did not change, nor did markers of epithelial mesenchymal transition. Budding was accompanied by nuclear accumulation of β-catenin, which was also observed in budding tumor cell clusters in situ. The NFκB inhibitor Sanguinarine resulted in a decrease in MMP7 protein expression and both NFκB inhibitor Sanguinarine and MMP inhibitor Batimastat prevented occludin degradation and budding. We conclude that macrophages contribute to the aggressive nature of stroma-rich colon tumors by promoting an MMP-dependent pathway that operates in parallel to classical EMT and leads to tight junction disruption.
CD95 is best known for its ability to induce apoptosis via a well-characterized pathway involving caspase-mediated proteolytic events. However, in apoptosis-resistant cell lines of diverse cancer types stimulation of CD95 primarily has pro-tumorigenic effects that affect many of the hallmarks of cancer. For instance, in colon cancer cells with a mutant KRAS gene CD95 primarily promotes invasion and metastasis. In the current study, we further investigated the context dependency of the consequences of CD95 activation in colon cancer. We used a series of patient-derived three-dimensional colon cancer cultures and studied their response to stimulation with CD95 ligand (CD95L). CD95L had a strong inhibitory effect on the clone-forming capacity of five out of nine cultures. In line with previous work, these cultures all had a wild-type KRAS gene and expressed high levels of CD95. Furthermore, the most sensitive cultures were characterized by microsatellite instability (MSI) and deficient mismatch repair. The reduced clonogenic growth of MSI-type colonospheres resulting from chronic CD95 stimulation was only partly due to apoptosis as many tumor cells survived treatment, yet were unable to regenerate clones. CD95 stimulation caused an irreversible cell cycle arrest, which was associated with cytokine secretion, similar to the senescence-associated secretory phenotype (SASP), and expression of senescence-associated β-galactosidase. In human colon cancer cohorts, CD95 expression was strongly correlated with the recently identified consensus molecular subtype 1 (CMS1), which mainly consists of MSI-high tumors, and with two independent SASP signatures. Mechanistically, CD95-induced senescence was caused by chronic DNA damage via caspase-activated DNAse resulting in p53 activation and p21 expression, with a minor contribution of the SASP. We conclude that induction of senescence is a hitherto unrecognized consequence of high CD95 expression, which appears to be most relevant for CMS1.
Abstract Background: Tumors are addicted to pathways neutralizing oxidative stress as a result of their high levels of reactive oxygen species (ROS). These ROS can oxidize nucleotides (NTs) within the precursor pool, which can cause cell death when incorporated into DNA. This tumor specific vulnerability might be exploited therapeutically. The mutT-homologue (MTH1) enzyme is recently identified as a non-oncogene target, which prevents incorporation of oxidized NTs into DNA (Gad et al, 2014; Huber et al, 2014). MTH1 inhibition by TH588 and (S)-Crizotinib caused tumor-specific oxidative DNA damage and cell death (Gad et al, 2014; Huber et al, 2014). Interestingly, hypoxia might enhance sensitivity to MTH1 inhibition (Qiu et al, 2015; Bräutigam et al, 2016). Thus, exploiting tumor oxidative stress via inhibition of MTH1 might be an exciting new approach to fight colorectal cancer (CRC) even in the presence of hypoxia. Aims and Hypotheses: In the present study we aim to compare the ability of TH588 HCl and (S)-Crizotinib to inhibit CRC growth in vitro and in vivo and to assess their mechanism(s) of action, including MTH1-dependent and -independent effects. We hypothesize that both compounds have the potency to inhibit CRC growth, conceivably via different mechanisms of action, which might not dependent on MTH1 inhibition (Kettle et al, 2016). Methods: All data were obtained using a human CRC liver metastasis-derived 3D spheroid line untreated or treated for 3 days with TH588 HCl or (S)-Crizotinib. Spheroids were pre-cultured and treated under normoxia (21% O2), hypoxia (0.1% O2) or only pre-cultured under hypoxia to mimic hypoxia and reoxygenation respectively. Results: Using a CellTiter-Glo cell viability assay we showed that increasing concentrations of (S)-Crizotinib under normoxia reduced cell viability with 23%, 64%, and 98% for 5, 10 and 20 μM respectively. By contrast, the maximal reduction of cell viability after treatment with TH588 HCl was only 32%. Interestingly, the dose response curve of (S)-Crizotinib was steeper when spheroids were reoxygenated just before treatment compared to normoxia and hypoxia, which implies that (S)-Crizotinib is more efficient. Importantly, hypoxia completely abolished the TH588-induced reduction in cell viability seen during normoxia. While the immediate effects on cell viability were different, both drugs (10 μM) severely reduced clone-forming efficiency both under normoxia and after hypoxia-reoxygenation prior to treatment. These results suggest different mechanisms of action of both drugs. As expected, both drugs caused an increase in DNA double-strand breaks, as measured by γH2AX staining. While chemotherapy treatment usually enriches the content of cancer stem cells, so far we did not observe this with either MTH1 inhibitor. Discussion and Conclusions: Until now, most research involving MTH1 inhibitors has been performed using cancer cell lines. In the present study we use patient-derived CRC spheroids and organoids. We previously found that organoids derived from patients with a poor-prognosis type of CRC are generally characterized by high expression of a H2O2 stress signature (Emmink et al, 2014). Exploiting this oxidative stress phenotype via inhibition of MTH1 might be an attractive new therapeutic avenue. Our results suggest that TH588 HCl and (S)-Crizotinib induce DNA damage and effectively reduce clone-forming potential of a CRC spheroid line, which was not limited by hypoxia pre-culturing. Interestingly, both compounds appear to act via different mechanisms. Further research should unravel these mechanisms of action. Citation Format: Lizet M. van der Waals, Danielle A.E. Raats, Jennifer M.J. Jongen, Tobias B. Dansen, Inne H.M. Borel Rinkes, Onno W. Kranenburg. Exploiting oxidative stress using MTH1 inhibitors in colorectal cancer. [abstract]. In: Proceedings of the AACR Precision Medicine Series: Targeting the Vulnerabilities of Cancer; May 16-19, 2016; Miami, FL. Philadelphia (PA): AACR; Clin Cancer Res 2017;23(1_Suppl):Abstract nr A29.
Homeostasis of the continuously self-renewing intestinal tract involves cell proliferation, migration, differentiation along the crypt-villus-axis and shedding of cells into the gut lumen. CD95-ligand (FAS-ligand, CD95L) is a cytokine that is known for its capacity to induce apoptosis by binding its cognate receptor, CD95 (Fas). More recently, it was discovered that CD95L can also induce other cellular responses, such as proliferation, differentiation and cell migration. CD95L is highly expressed in Paneth cells of the small intestine which are in close contact with intestinal stem cells. This suggests a potential role for CD95L in controlling stem cell function and, possibly, intestinal homeostasis. We analyzed the intestines of mice deficient for functional CD95L (gld) for potential alterations in the diversity of stem-cell-lineages and parameters of intestinal homeostasis. Stem cell diversity was assessed by analyzing methylation patterns of the non-transcribed mMYOD gene. Proliferation was analyzed by BrdU labeling and differentiation was assessed by immunohistochemistry. Of all parameters analyzed, only epithelial cell proliferation was significantly reduced in the small intestines of gld-mice, but not in their colons which lack CD95L expression. We conclude that CD95L has a proliferation-stimulating role during normal turnover of the small intestine, but has a marginal effect on overall intestinal homeostasis.
BACKGROUND & AIMS Colon tumors contain a fraction of undifferentiated stem cell-like cancer cells with high tumorigenic potential. Little is known about the signals that maintain these stem-like cells. We investigated whether differentiated tumor cells provide support. METHODS We established undifferentiated colonosphere cultures from human colon tumors and used them to generate stably differentiated cell lines. Antibody arrays were used to identify secreted factors. Expression of genes involved in stemness, differentiation, and the epithelial to mesenchymal transition was measured using reverse transcription quantitative polymerase chain reaction. Expression of KIT in human tumors was analyzed with gene expression arrays and by immunohistochemistry. Colonospheres were injected into the livers of CBy.Cg-Foxn1nu/J mice. After liver tumors had formed, hypoxia was induced by vascular clamping. RESULTS Differentiated cells from various tumors, or medium conditioned by them, increased the clonogenic capacity of colonospheres. Stem cell factor (SCF) was secreted by differentiated tumor cells and supported the clonogenic capacity of KIT(+) colonosphere cells. Differentiated tumor cells induced the epithelial to mesenchymal transition in colonosperes; this was prevented by inhibition of KIT or SCF. SCF prevented loss of clonogenic potential under differentiation-inducing conditions. Suppression of SCF or KIT signaling greatly reduced the expression of genes that regulate stemness and the epithelial to mesenchymal transition and inhibited clonogenicity and tumor initiation. Bioinformatic and immunohistochemical analyses revealed a correlation between expression of KIT- and hypoxia-related genes in colon tumors, which was highest in relapse-prone mesenchymal-type tumors. Hypoxia induced expression of KIT in cultured cells and in human colon tumor xenografts and this contributed to the clonogenic capacity of the tumor cells. CONCLUSIONS Paracrine signaling from SCF to KIT, between differentiated tumor cells and undifferentiated stem-like tumor cells, helps maintain the stem-like features of tumor cells, predominantly under conditions of hypoxia.