Supplementary Table 1 from An In vivo Platform for Translational Drug Development in Pancreatic Cancer
PURPOSEThe factors preventing the translation of preclinical findings supporting the clinical development mTOR-targeted therapy in pancreatic cancer therapy remain undetermined. Stromal cell.derived factor 1α (SDF-1α)-CXCR4 signaling was examined as a representative microenvironmental factor able to promote mTOR-targeted therapy resistance in pancreatic cancer.EXPERIMENTAL DESIGNPrimary pancreas explant xenografts and in vitro experiments were used to perform pharmacodynamic analyses of SDF-1α-CXCR4 regulation of the mTOR pathway. Combinatorial effects of CXCR4, EGFR, and mTOR pharmacologic inhibition were evaluated in temsirolimus-resistant and -sensitive xenografts. Intratumoral gene and protein expressions of mTOR pathway effectors cyclin D1, c-Myc, and VEGF were evaluated.RESULTSBaseline intratumoral SDF-1α gene expression correlated with temsirolimus resistance in explant models. SDF-1α stimulation of pancreatic cells resulted in CXCR4-mediated PI3-kinase-dependent S6-RP phosphorylation (pS6-RP) on exposure to temsirolimus. Combinatorial therapy with AMD3465 (CXCR4 small-molecule inhibitor) and temsirolimus resulted in effective tumor growth inhibition to overcome temsirolimus resistance. In contrast, SDF-1α exposure induced a temsirolimus-resistant phenotype in temsirolimus-sensitive explants. AMD3465 inhibited CXCR4-mediated intratumoral S6-RP phosphorylation and cyclin D and c-myc gene expression. Next, CXCR4 promoted intratumoral EGFR expression in association with temsirolimus resistance. Treatment with AMD3465, temsirolimus- and erlotinib-mediated tumor growth inhibition to overcome temsirolimus resistance in the explant model. Lastly, SDF-1α-CXCR4 signaling increased intratumoral VEGF gene and protein expression.CONCLUSIONSSDF-1α-CXCR4 signaling represents a microenvironmental factor that can maintain mTOR pathway fidelity to promote resistance to mTOR-targeted therapy in pancreatic cancer by a variety of mechanisms such as recruitment of EGFR signaling and angiogenesis.
The ATP-binding cassette transporter ABCG2 (BCRP, MXR and ABCP) is highly expressed in the gastrointestinal tract and liver, and governs absorption, distribution and excretion of a wide variety of clinically important drugs. Common germline polymorphisms in the ABCG2 gene have been described that can affect expression, cellular localization and/or substrate recognition of the encoded protein. Alteration of transporter function by either of these mechanisms contributes significantly to interindividual variability in drug disposition and treatment outcome with certain, but not all, substrates for ABCG2.
2213 Background: Pancreatic cancer (PaCa) is an almost universally fatal disease, and new therapeutic alternatives are needed. Mycophenolic acid (MPA), the active form of mycophenolate mofetil (MMF) is a known inosine mono phosphate dehydrogenase inhibitor (IMPDH) and is clinically used as an immune-suppressive agent following organ transplantation. Preliminary studies from our group testing a panel of 2,000 non-antitumor approved agents evidenced that MPA had activity in vitro against PaCa cell lines. In this study we performed a preclinical study to determine pharmacodynamic (PD) markers and to explore the activity of MPA in in vivo models of PaCa. Methods : MPA was tested in vitro against a panel of pancreatic cancer cell lines in the range of 0-10uM by MTT assay. In a novel patient derived PaCa xenograft model, we studied MPA in vivo in 6 xenografts derived directly from patient tumors. Combination therapy with gemcitabine plus MPA was done on selected, gemcitabine-resistant cases to evaluate the modulation in activity of the drugs. Mice were treated daily with 125mg/Kg MPA ip. The efficacy of treatment was measured by determining the tumor growth inhibition at 28 days. PD markers of MPA were assessed using western blotting and immunohistochemistry of target proteins. GTP pools in in vitro samples and pharmacokinetics of the MPA levels in mouse was done using HPLC-tandem mass spectrometry. Fine needle aspirate (FNA)-based ex vivo testing was conducted exposing acquired cells to MPA mimicking in vitro conditions. Results : MPA confirmed in vitro antitumor activity in a broader panel of PaCa cell lines. Two cell lines showing differential response were selected for PD studies. In order to investigate the mechanism and the involvement of IMPDH inhibition in the effect mediated by MPA on those cell lines in vitro , guanosine replenishment was done and the response was read using MTT. Nucleotidal GTP pools in the cells were taken as a marker of IMPDH inhibition and showed a decrease with increasing MPA dosage in vitro . The cell lines also showed a decrease in VEGF suggesting a potential anti-angiogenic effect by MPA. Single-agent MPA treatment in vivo in 6 patient-derived xenografts showed differential efficacy, with two cases being sensitive and four being resistant. Ex vivo and pharmacodynamic testing was conducted to characterize the basis of those differences. A decrement in VEGF protein was observed in vivo and encouraging combination data was documented. Conclusions: MPA showed activity in a subset of PaCa direct xenografts, making it a candidate drug for further development in PaCa . Pharmacodynamic studies suggest that this efficacy may at least be mediated by an antiangiogenic effect. Updated pharmacodynamic, pharmacokinetic and tumor permeability data using magnetic resonance imaging will be presented in the meeting.
The purpose of the study was to determine if the epidermal growth factor receptor (EGFR) tyrosine kinase inhibitors (TKIs), gefitinib and erlotinib, are substrates for the efflux transporter ABCG2, and to investigate the relevance of the ABCG2 421C>A (Q141K) polymorphism to the pharmacokinetics of gefitinib. Gefitinib and erlotinib transport in vitro was studied using HEK293 cells transfected with wild-type ABCG2 or a Q141K clone. Gefitinib pharmacokinetics was determined in 27 cancer patients. was. ABCG2 421C>A and ABCB1 3435C>T genotypes were determined using direct sequencing. Cells expressing wild-type ABCG2 exhibited lower intracellular accumulation of gefitinib and erlotinib at concentrations of 0.1 and 1 microM, and higher efflux at 1 microM than cells lacking ABCG2 (p < 0.05); no significant difference in cellular efflux and accumulation was observed in the variant cell line at lower concentrations nor in the three cell lines at 10 microM. In the presence of the ABCG2 inhibitor fumitremorgin C, cellular accumulation of gefitinib and erlotinib 1 microM was increased in wild-type (p < 0.05), but not in variant or null cells. Gefitinib accumulation during 28 days of treatment (C(ss,min)/C(1,min)) was higher in patients heterozygous at the ABCG2 421C>A locus than those with a wild-type genotype (median, 5.07 vs. 3.60, p = 0.004). No significant associations were observed between the ABCB1 3435C>T genotype and gefitinib pharmacokinetics. In conclusion, gefitinib and erlotinib are ABCG2 substrates, while they inhibit ABCG2 at higher concentrations. A functional variant of ABCG2 is associated with greater gefitinib accumulation at steady-state and may be relevant to toxicity and antitumor activity of EGFR TKIs.
In this work, we evaluated two lead compounds, referred to as SG410 and SG430, obtained from a screen of sulfur benzoylphenylurea analogues, against in vitro and in vivo models of pancreas cancer. Both drugs showed a similar mechanism of action profile, with SG410 being more potent as an inhibitor of tubulin assembly. We determined the best in vivo administration schedule and tested SG410 and SG430 in nine cases of a novel platform of direct pancreas cancer xenografts. Both compounds had antiproliferative activity in vitro in the low nanomolar range, but only SG410 showed significant activity in vivo. Administration of SG410 resulted in significant tumor growth delay in five of nine groups tested. In a direct comparison in three of the cases, SG410 was at least as efficacious as docetaxel. We also sought markers that would be predictive of the efficacy of these agents, and we found such a marker in microtubule-associated protein tau (MAPT). This protein enhances the assembly and stability of microtubules. In both the cell lines and the direct human xenografts, MAPT mRNA and protein levels correlated well. There was also a statistically significant inverse correlation between MAPT expression and sensitivity to the tested agents. In summary, the novel sulfur benzoylphenylurea SG410 showed activity inversely related to MAPT expression in a preclinical model of pancreatic cancer comparable with that observed with docetaxel, another microtubule-targeting agent.
This trial evaluated the effect of gefitinib on the plasma circulating levels of epidermal growth factor receptor (EGFR), vascular endothelial growth factor (VEGF), matrix metalloproteinases (MMP)‐2 and ‐9 of patients treated on a pediatric Phase I trial. Complete plasma correlative studies were obtained from 16 of the 25 enrolled patients. There was a trend for lower MMP‐2 baseline levels in patients with partial response or stable disease. The Ewing sarcoma from the only patient with partial response lacked egfr mutations. Gefitinib did not induce any significant variation in the levels of the assessed parameters, and none of these determinations showed significant predictive or prognostic value. Pediatr Blood Cancer 2007;49:352–357. © 2006 Wiley‐Liss, Inc.
14063 Background: EGFR inhibitors have a definite but limited activity in pancreatic cancer (PaCa). We have reported enhanced activity of dual EGFR therapy with a small molecule inhibitor (erlotinib) plus a monoclonal antibody (cetuximab) in head and neck cancer models. Human xenografted tumors recapitulate better the pathobiology of cancer than existing cell lines. Here we explored a dual EGFR targeting approach using a direct PaCa xenograft model, and sought after markers predicting efficacy. Methods: PaCa specimens obtained at the time surgery were implanted in nude mice and expanded to develop cohorts of tumor bearing mice suitable for drug evaluation. Ten cases were expanded, and within each case 4 groups of 6–8 mice each were treated with vehicle, erlotinib, cetuximab, and the combination of both for 28 days. Gene mutation analysis, gene amplification by fluorescence-in-situ hybridization, and immunohistochemistry (IHC) were done with untreated samples. Results: Two cases were sensitive to both single agents, but the combination did not induce higher efficacy in those. Two additional cases that were resistant to both single agents became sensitive with the combination. No egfr mutations were detected. Three and four cases carried low and high egfr polysomy (defined as [[Unsupported Character - ]] 4 copies in 10–40% and [[Unsupported Character - ]] 40% of the cells, respectively). No correlation was found between egfr copy number and efficacy. By IHC sensitive cases had a lower Ki67 proliferation index, and higher EGFR and nuclear pMAPK staining than resistant cases. The degree of Ki67 decrease after therapy correlated with efficacy. In cases resistant to the single agents but sensitive to the combination nuclear pMAPK only decreased with the dual targeting. Cases with high egfr polysomy were more labile to pharmacodynamic effects after treatment (such as EGFR or pMAPK decreases). Conclusions: EGFR inhibitors showed modest single agent antitumor effect that was enhanced with dual EGFR therapy in PaCa. No genomic markers predicted efficacy, although high egfr polysomy was associated with deeper pharmacodynamic inhibition, conceivably suggesting a phenomenon of pathway addiction. Higher pathway activation by IHC was linked with higher activity. No significant financial relationships to disclose.
Abstract Effective development of targeted anticancer agents includes the definition of the optimal biological dose and biomarkers of drug activity. Currently available preclinical models are not optimal to this end. We aimed at generating a model for translational drug development using pancreatic cancer as a prototype. Resected pancreatic cancers from 14 patients were xenografted and expanded in successive groups of nude mice to develop cohorts of tumor-bearing mice suitable for drug therapy in simulated early clinical trials. The xenografted tumors maintain their fundamental genotypic features despite serial passages and recapitulate the genetic heterogeneity of pancreatic cancer. The in vivo platform is useful for integrating drug screening with biomarker discovery. Passages of tumors in successive cohorts of mice do not change their susceptibility to anticancer agents and represent a perpetual live bank, facilitating the application of new technologies that will result in the creation of an integrated stable database of tumor-drug response data and biomarkers.
Gefitinib is an inhibitor of the epidermal growth factor receptor (EGFR) tyrosine kinase with activity in non-small-cell lung cancer. Diarrhea and skin toxicity are prominent gefitinib-related adverse events that potentially limit its use. Gefitinib is a substrate for ABCG2 (ABCP, BCRP, MXR), a polymorphic efflux transporter protein that is highly expressed in the intestines and liver. Here we investigated associations between allelic variants of EGFR, ABCG2, and the transporter protein ABCB1 with diarrhea and skin toxicity in gefitinib-treated patients. One variant, a common functional single-nucleotide polymorphism (SNP) in the ABCG2 gene, was associated with diarrhea in 124 patients treated with oral gefitinib 250 mg once daily; seven (44%) of 16 patients heterozygous for ABCG2 421C>A (Q141K) developed diarrhea, versus only 13 (12%) of 108 patients homozygous for the wild-type sequence (P = .0046). However, this SNP was not associated with skin toxicity (P = .99). The finding suggests that patients with reduced ABCG2 activity due to a common genetic variant are at increased risk for substrate drug-induced diarrhea, with implications for optimizing treatment with such agents.