Abstract Oncogenic mutations to the Wnt pathway are present in approximately 80% of colorectal cancer (CRC) patients. In mouse CRC models, Beta-Catenin (BC) loss inhibits tumour growth reinforcing BC as a promising anticancer target. Small molecules or peptides targeting BC have been reported but these generally lack features of high-quality chemical probes. To date there are no reports of these tool compounds progressing to chemical series with more drug-like physiochemical and pharmaceutical characteristics, yet interest in developing BC inhibitors or degraders remains. To explore potential fragment-binding pockets on BC we established a BC-degron model for genetic rescue experiments using the dTAG system to degrade FKBP12F36V-tagged BC. Based on literature and in-house date we selected the APC-mutant, BC-dependent SW480 human CRC cell line as our model of choice. During the characterisation of multiple dTAG single cell clones we identified two resistant SW480 cell clones which proliferated despite BC degradation. One line (Res1) contained no detectable BC protein following treatment with the dTAGV-1 heterobifunctional degrader molecule. Whereas the other, Res2, retained expression of an internally truncated species of BC,that was sufficient to rescue WT-BC function. Genetic and proteomic profiling were used to define the response of resistant populations to BC degradation. Res2 exhibited a similar molecular profile to cells expressing full length BC. Res1 exhibited a proteomic profile distinct from sensitive cells after BC degradation. BC-driven oncogenic gene expression profile was degraded in resistant cells, similarly to sensitive cells. But metabolic pathways, including autophagy, were markedly altered in resistant cells. Additionally, we found a region of chromosome 19 lost only in Res1. Res1 exhibited distinct morphological features to sensitive cells and an increased migratory capacity. Multiple patient-like cancer stem cell subtypes have been classified within the SW480 CRC cell line population, with different invasive and Wnt signalling capacities. But their responses to BC inhibition or loss are unknown. Molecular and cellular characterisation of Res-1 is on-going to identify key SW480 subtype features and mechanism of resistance to BC loss as potential biomarkers to predict patients with resistance to BC inhibition and suggest novel pathway dependencies which can be exploited for combination therapies alongside BC inhibition or degradation. Citation Format: Reiss Clifford, Christopher I. Milton, Jasjot Singh, Marc Krenkel, Pradeep Ramagiri, Konstantinos Mitsopoulos, Frank Fischer, Marissa V. Powers, Dirk Wienke, Paul A. Clarke. Investigating resistance to beta-catenin degradation in a colorectal cancer cell line [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2026; Part 1 (Regular Abstracts); 2026 Apr 17-22; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2026;86(7 Suppl):Abstract nr 3328.
Transcription factor heat shock factor 1 (HSF1) orchestrates the cellular stress response, promoting malignant transformation, unchecked proliferation, and stress-resilient survival of tumour cells. We set out to discover potentially druggable regulators of HSF1 activation and identified DEAH-box RNA helicase 8 (DHX8). We investigated the role of DHX8 in regulating HSF1 within the broader context of DHX8 function in cancer cells. DHX8 silencing induces intron retention in HSF1 transcripts, reducing HSF1 protein. Importantly, DHX8 loss significantly alters RNA processing of an HSF1-regulated cancer-associated gene signature linked to poor clinical outcomes, as well as additional oncogenic and stress-response pathways. DHX8 binds between the pre-messenger RNA (mRNA) lariat branch point and the 3' splice site, consistent with the predominance of intron-retained transcripts following DHX8 loss. We show that both the ATPase and RNA-binding activities of DHX8 are essential for its role in splicing, including processing of HSF1 mRNA. We also find that DHX8 silencing triggers apoptosis more effectively in human cancer cells than in non-tumorigenic cells. Our findings identify DHX8 as a critical regulator of stress-adaptive gene expression, highlighting its promise as a therapeutic target not only to disrupt HSF1-dependent transcriptional programs but also having broader effects in cancer cells under oncogenic stress.
Eukaryotic translation initiation factor 4E (eIF4E) has long been recognised as a pivotal regulator of cap-dependent protein synthesis initiation. More recently, eIF4E has emerged as a multifunctional factor proposed to influence various aspects of RNA metabolism, including nuclear export of mRNA to the cytoplasm. Its versatile roles are largely attributed to its ability to bind the methyl-7-guanosine cap (m7G-cap) of mRNAs and participate in critical protein–protein interactions. Deregulated eIF4E expression or activity has been implicated in several diseases, but it is most prominently studied as an oncogene where its activity can drive cancer onset, progression and drug resistance. Consequently, eIF4E is a highly attractive target for the development of novel anti-tumour therapeutics. Recent advancements have provided new insights into the mechanism of action of eIF4E, leveraging fragment-based compound screening and genetically modified cell models to identify and characterise binding sites on this challenging-to-drug protein target. In this review, we summarise the multiple roles of eIF4E and features that underpin its activity in both the cytoplasm and nucleus, and the key findings related to the modulation of its activity and therapeutic potential.
PURPOSE:Advanced prostate cancer is invariably fatal, with the androgen receptor (AR) being a major therapeutic target. AR signaling inhibitors have improved overall survival for men with advanced prostate cancer, but treatment resistance is inevitable and includes reactivation of AR signaling. Novel therapeutic approaches targeting these mechanisms to block tumor growth is an urgent unmet clinical need. One attractive strategy is to target heat shock proteins (HSP) critical to AR functional activity. EXPERIMENTAL DESIGN:We first did transcriptome analysis on multiple castration-resistant prostate cancer (CRPC) cohorts to correlate the association between the Gene Ontology cellular response to heat gene expression signature and overall survival. Next, we analyzed the impact of targeting the heat shock factor 1 (HSF1) pathway, with an inhibitor in clinical development, namely, NXP800 (formerly CCT361814), in models of treatment-resistant prostate cancer. Finally, we confirmed our mechanistic and phenotypic findings using an NXP800-resistant model and an in vivo model of CRPC. RESULTS:We report that in multiple CRPC transcriptome cohorts, the Gene Ontology cellular response to heat gene expression signature associates with AR signaling and worse clinical outcome. We demonstrate the effects of targeting the HSF1 pathway, central to cellular stress, with an inhibitor in clinical development, namely, NXP800, in prostate cancer. Targeting the HSF1 pathway with the inhibitor NXP800 decreases HSP72 expression, activates the unfolded protein response, and inhibits AR- and E2F-mediated activity, inhibiting the growth of treatment-resistant prostate cancer models. CONCLUSIONS:Overall, NXP800 has antitumor activity against treatment-resistant prostate cancer models, including molecular subtypes with limited treatment options, supporting its consideration for prostate cancer-specific clinical development.
Abstract Alternative splicing is a molecular mechanism that allows a single gene to encode multiple proteins. It is a complex and highly controlled process used to regulate normal gene expression but is often dysregulated in cancer. Compounds that can modulate alternative splicing are currently being explored as a potential new class of therapeutic agent in cancer. This highlights the need for a deeper understanding of the splicing process, its regulation, and its impact. The discovery of novel and specific tool compounds that modulate splicing would therefore not only be beneficial in investigating the regulation and dysregulation of splicing in cancer but could also be exploited therapeutically. To identify novel regulators of splicing, we generated a cell-based split luciferase screening assay based on alternative splicing of MCL-1 (myeloid cell leukemia-1 protein) pre-mRNA. The MCL1 gene usually produces an mRNA encoding a ‘long’ variant (MCL1L) that is an anti-apoptotic protein often highly expressed in cancers. However, in some circumstances, for example following genetic knockdown of splicing factors, a pro-apoptotic ‘short’ variant (MCL1S) is expressed as a result of exon-skipping. Here we engineered the human NSCLC cell line NCI-H1299 to express a luminescent-tagged version of the MCL1S splice variant to monitor its induction upon spliceosome modulation. Using this engineered cell line, we screened an unannotated library of 12,000 compounds selected to have low molecular weights and favorable properties for cellular uptake. The screen had an average Z’ value of 0.89 over 45 microplates, indicating high assay robustness. Hits were identified as any compound with a luminescence of greater than the average + two standard deviations of the screening dataset. The compounds were validated by repetition in the screening assay, giving 34 candidate hits that were then triaged by qPCR assay to confirm splicing modulation of MCL1. One interesting hit was found to increase mRNA and cellular protein levels of MCL1S and induced altered splicing across the transcriptome that was distinct from the splicing profiles of a diverse panel of splicing modulators, including compounds targeting SF3B1, CLK, and RBM39. In addition, treatment with this hit compound resulted in accumulation of the splicing factor SC35 in cytoplasmic granules, an unusual phenotype not seen with known splicing modulators, that could explain the distinct splicing modulation we have observed. Deconvolution and further characterization of screening hits and potentially unique new mechanisms of action could improve current understanding of alternative splicing and its regulation in NSCLC. The discovery of novel compounds to expand our current toolset of splicing modulators will be key in building the foundation for future splicing targeted drug discovery. Citation Format: Rachel Cooley, Marissa V. Powers, Adam G. Bond, Patrizia Jensen, Gary Newton, Andrea Scarpino, Juliane Braun, Christina Esdar, Paul A. Clarke. Compound library screening to identify modulators of alternative splicing in non-small cell lung cancer (NSCLC) [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 2058.
Abstract Background: NXP800 is a clinical stage, antineoplastic, oral, small molecule GCN2 kinase activator that was discovered in a phenotypic screen for inhibitors of the heat shock factor 1-regulated stress response. In a panel of human carcinoma cell lines NXP800 induced the expression of genes associated with activation of the integrated stress response and demonstrated robust antiproliferative activity, particularly in ARID1a-mutated ovarian carcinoma cells lines. In ARID1a-mutated ovarian carcinoma xenografts, treatment with NXP800 resulted in substantial tumor growth inhibition and tumor regression. NXP800 is currently being investigated in a Phase 1b clinical trial in patients with ARID1a-mutated ovarian carcinoma. Here we describe an in vivo study of NXP800 in ARID1a/ARID1b-deficient endometrial cancer xenografts, supporting the clinical development of NXP800 in this indication. Methods: Animal strain: CD1 Nude mice (nu/nu, Charles River). Human endometrial cancer cell lines: RL95-2 (ARID1a mutated, ATCC) and KLE (ARID1a wildtype, ARID1b mutated, ATCC), SNG-M (ARID1a mutated, Creative Bioarray). Xenograft tumors were generated by subcutaneous implantation on the right lower flank of the thigh at a cell density of 2 × 106 cells/mouse, at 0.1 ml Matrigel dilution volume/injection. Experiment groups: Vehicle, NXP800 (35 mg/kg); treatment: QD on days 0-4, 7-11, 14-18, 21-25, 28-30. Loss of ARID1A protein expression was confirmed by western blots. Results: In the SNG-M model, baseline tumor volume for the vehicle and NXP800 groups were 130.2, and 139.7 mm3, respectively, and on Day 32, average tumor volumes were 420.4, and 85.4 mm3, respectively, representing TGI of 81%. In the RL-95 model, baseline tumor volume for the vehicle and NXP800 groups were 124.5, and 129.9 mm3, respectively, and on Day 32, average tumor volumes were 773.8, and 190.3 mm3, respectively, representing TGI of 76%. In the KLE model, baseline tumor volume for both the vehicle and NXP800 groups were 88.1 mm3, respectively, and on Day 32, average tumor volumes were 216.4, and 18.9 mm3, for the vehicle and NXP800 groups, respectively, representing TGI of 91.3%. Conclusions: ARID1A and ARID1B genes encode the alternate, but obligatory, DNA-targeting subunit of the switch/sucrose non-fermentable (SWI/SNF) complex. ARID1A is the most frequently mutated SWI/SNF subunit across cancer types and is mutated in approximately 35% of endometrial carcinomas. NXP800 demonstrated robust antitumor activity in xenografts of endometrial carcinoma, a serious condition for which new treatment options are needed, including sustained tumor growth inhibition both in ARID1A and ARID1B mutated models, supporting the clinical development of NXP800 in endometrial cancer. Citation Format: Ramez N. Eskander, Bradley J. Monk, Brian M. Slomovitz, Enrique Poradosu, Allison Woods, Shay Shemesh, Paul Clarke, Robert Te Poele, Marissa Powers, Paul Workman, Shannon N. Westin. NXP800, a novel, small molecule GCN2 kinase activator, demonstrates potent single-agent activity in ARID1A and ARID1B-deficient endometrial cancer xenograft models [abstract]. In: Proceedings of the AACR Special Conference on Endometrial Cancer: Transforming Care through Science; 2023 Nov 16-18; Boston, Massachusetts. Philadelphia (PA): AACR; Clin Cancer Res 2024;30(5_Suppl):Abstract nr A016.
Abstract Using innovative phenotypic screening, targeting the Heat Shock Factor 1 (HSF1) pathway, followed by multiparameter medicinal chemistry optimization, we discovered NXP800, an orally active, potent inhibitor of cell proliferation. Evaluation in a mini-panel of human cancer cell lines and tumor xenografts revealed high sensitivity in ARIDIA-deficient human ovarian cancer models, confirmed in the large Sanger panel and isogenic systems. By RNAseq we identified overlapping gene expression changes in human cancer cell lines exposed to NXP800, including expected changes in HSF1-regulated genes plus alterations in ATF4-regulated gene expression associated with activation of the integrated stress response (ISR). This did not indicate a global stress response to NXP800 as we saw no activation of the unfolded protein response. Consistent with activation of the ISR, NXP800 induced phosphorylation of EIF2A and increased expression of downstream ISR markers/effectors ATF4, CHAC1 and CHOP both in human ovarian cells in vitro and corresponding tumor xenograft models in vivo. Using an siRNA approach, we found that blocking the induction of ATF4 reduced the response of sensitive, ARID1A mutant SK-OV-3 human ovarian carcinoma cells to NXP800 treatment. Phosphorylation of EIF2A is tightly regulated by four stress-controlled kinases, GCN2, HRI, PKR and PERK. Using either systematic siRNA knockdown or inhibition by two small-molecule tool compounds from different chemotypes, we discovered that GCN2 alone was required for ISR activation by NXP800. Also, inactivation of GCN2 markedly reduced the antiproliferative activity of NXP800. Global phospho-proteome analysis demonstrated defined changes in response to NXP800 which were reversed on co-treatment with a GCN2 inhibitor. Furthermore, ISR induction inhibited HSF1 activation, confirming the mechanistic link between ISR activation and inhibition of HSF1-mediated transcription. In summary, we discovered the mechanistically novel drug NXP800 which acts on cancer cells to stimulate GCN2 and thereby activate the ISR pathway, leading to inhibition of cap-dependent protein translation. NXP800 shows highly promising activity in human ovarian cancer, including tumor regression of ARID1A-deficient ovarian cancer xenografts. Studies are currently underway to determine precisely how NXP800 stimulates GCN2 activity and the role of ARID1A deficiency. With Nuvectis Pharma, the Phase 1a dose escalation study is completing and the multicentre Phase 1b expansion cohort study in platinum-resistant ARID1A-mutated ovarian cancer is now initiated (NCT05226507) in collaboration with the GOG Foundation and the European Network of Gynecological Oncological Trial Group (ENGOT). FDA has issued a Fast Track designation to NXP800 in this setting. Citation Format: Marissa V. Powers, Swee Y. Swap, Robert te Poele, Eirini-Maria Lampraki, Toby Roe, Loredana Pellegrino, Maria Taskinen, Suzenne Eccles, Florence Raynaud, Matthew Cheeseman, Keith Jones, Paul A. Clarke, Paul Workman. Activation of the integrated stress response by NXP800, an orally available, clinical-stage, investigational agent in ARID1A-mutated, platinum resistant ovarian cancer [abstract]. In: Proceedings of the AACR Special Conference on Ovarian Cancer; 2023 Oct 5-7; Boston, Massachusetts. Philadelphia (PA): AACR; Cancer Res 2024;84(5 Suppl_2):Abstract nr PR-002.
Abstract Eukaryotic initiation factor 4E (eIF4E) serves as a regulatory hub for oncogene-driven protein synthesis and is considered a promising anticancer target. Here we screen a fragment library against eIF4E and identify a ligand-binding site with previously unknown function. Follow-up structure-based design yields a low nM tool compound (4, Kd = 0.09 µM; LE 0.38), which disrupts the eIF4E:eIF4G interaction, inhibits translation in cell lysates, and demonstrates target engagement with eIF4E in intact cells (EC50 = 2 µM). By coupling targeted protein degradation with genetic rescue using eIF4E mutants, we show that disruption of both the canonical eIF4G and non-canonical binding sites is likely required to drive a strong cellular effect. This work highlights the power of fragment-based drug discovery to identify pockets in difficult-to-drug proteins and how this approach can be combined with genetic characterization and degrader technology to probe protein function in complex biological systems.
Abstract Background: NXP800 is a potent, oral activator of the Integrated Stress response (ISR), inhibitor of heat shock factor 1 (HSF1) activation and tumor cell proliferation, which is in early clinical studies in ARID1A-mutated, platinum resistant, clear cell ovarian cancer (NCT05226507). We discovered NXP800 using multiparameter medicinal chemistry optimization of a hit identified from a cell-based phenotypic screen. Owing to the unbiased nature of phenotypic screening, target identification is crucial to understand the biological and therapeutic activity of hit compounds. Methods and Results:: By RNAseq profiling human cancer cells treated with NXP800 we identified changes in expression of genes regulated by HSF1 or ATF4 - effects accompanied by eIF2alpha (eIF2a) phosphorylation and resulting activation of the ISR. To further understand this response, we explored whether NXP800 resistance models could inform on its mechanism of action (MoA). We used ARID1A mutant SK-OV-3 human ovarian carcinoma cells that are 1) highly sensitive to NXP800, 2) model the target patient population and 3) MSI-high so likely to have an elevated mutation rate contributing to acquisition of resistance. We generated two independent NXP800-resistant SK-OV-3 cell lines in which NXP800-mediated ATF4 induction and concomitant inhibition of global translation were abolished. By whole exome sequencing, we identified a heterozygous L99P mutation in the alpha subunit of eIF2B (eIF2Ba), the nucleotide exchange factor for eIF2a. Expression of eIF2BaL99P, but not wild-type, in parental SK-OV-3 cells reduced sensitivity to NXP800 to the same level as cells with NXP800-induced resistance. Using fluorescence recovery after photobleaching to monitor the dynamic association of the eIF2B:eIF2a complex, we elucidated that the eIF2BaL99P mutation reduces NXP800-mediated inhibition of eIF2a-GFP recycling through eIF2B bodies. Phosphorylation of eIF2a is regulated by four stress-controlled kinases GCN2, HRI, PKR and PERK. Using systematic siRNA knockdown or small-molecule inhibitors, we showed that GCN2 alone is required for ISR activation by NXP800 and that ISR induction inhibited HSF1 activation. Furthermore, inactivation of GCN2 reduced the antiproliferative activity of NXP800 to the same extent observed in NXP800-resistant SK-OV-3 cells. In contrast, exposure of resistant or parental SK-OV-3 cells expressing eIF2BaL99P to GCN2 inhibitors did not cause further reduction in NXP800 sensitivity - confirming the importance of the eIF2BaL99P mutation in the resistance mechanism. Conclusions: We have used acquired resistance to understand the MoA of NXP800 as a potent activator of GCN2 and the ISR pathway. Further studies are underway to determine the exact proximal molecular target of NXP800 and the mechanism of GCN2/ISR activation. Citation Format: Marissa V. Powers, Rachel Hodgson, Swee Y. Sharp, Toby Roe, K. Elizabeth Allen, Susan Campbell, Robert te Poele, Matthew Cheeseman, Keith Jones, Paul A. Clarke, Paul Workman. Using acquired resistance to explore the mechanism of action of the integrated stress response/GCN2 activator NXP800 - A new developmental agent for platinum-resistant ARID1A mutant ovarian cancer [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 524.
Abstract Background. HSF1 helps cancer cells cope with multiple stresses caused by oncogene activation. Methods. See details below. Results. We discovered the bisamide NXP800 as an inhibitor of HSF1-mediated transcription through phenotypic screening and med chem optimization. Gene expression microarray analysis of human cancer cell lines and tumor xenografts treated with bisamide inhibitors indicated activation of the ATF4 axis of the ISR as a key mechanism of action. In SK-OV-3 ovarian cancer xenografts, NXP800 showed clear PK/PD relationships with increased expression of ATF4 transcriptional target genes alongside decreased expression of HSF1 transcriptional targets. NXP800 also caused tumor regressions in this model. Expanding in additional human ovarian cancer xenograft models, we observed efficacy in five and a complete lack of response in three others. The sensitive models all had homozygous deleterious mutations in the ARID1A gene, whereas the non-responding xenografts were all wild type (WT). ARID1A is a component of the SWI/SNF chromatin remodelling complex involved in repression and activation of target genes. Subsequent screening of the large Sanger human cancer cell line panel confirmed ARID1A as the most significant common disease-related alteration predicting sensitivity to NXP800 in ovarian cancer cell lines. This predictive relationship was confirmed in an ARID1A isogenic HCT-116 cell line pair; sensitivity was greater in the homozygous ARID1A mutant cells compared to WT, resulting in PARP cleavage in the mutant cells only. In vivo there was no effect in WT HCT-116 xenografts whereas growth inhibition was observed in the homozygous mutant cells, resulting in significantly smaller tumors. In addition, the induction of ATF4 target genes was stronger and more prolonged in the mutant cells. It is known that whereas short term ATF4 activation is adaptive, persistent activation can promote the induction of apoptosis. CHIP-seq analysis confirmed clear relationships between ARID1A status, ATF4 and HSF1 promoter occupancy, and the distribution of BRG1 and RNA pol II at target sites, although these were often gene-specific and complex. A relatively simple example is the regulation of the INHBE gene (expression of which is a PD biomarker). In untreated samples there is no binding of ATF4, BRG1 and RNA pol II at the INHBE promoter. NXP800 treatment results in the recruitment of BRG1, ATF4 and RNA pol II in ARID1A mutant TOV-21G cells but not in the RMGI WT cells, leading to increased expression in the mutant cells only. Conclusions. We propose that ARID1A loss alters the binding and recruitment of ATF4 and HSF1 leading to the altered and prolonged expression of ATF4 target genes and increased sensitivity to NXP800. NXP800 is currently in phase Ib for the treatment of ARID1A mutant platinum resistant ovarian cancer (NCT05226507). Citation Format: Robert H. te Poele, Marissa Powers, Swee Sharp, Emmanuel de Billy, Maria Taskinen, Loredana Pellegrino, Sharon Gowan, Asadh Miah, Angela Hayes, Matthew Cheeseman, Keith Jones, Suzanne Eccles, Florence Raynaud, Paul Clarke, Paul Workman. Discovery of ARID1A loss as a patient biomarker for NXP800 - A developmental activator of the integrated stress response (ISR) and inhibitor of the HSF1 pathway in ovarian cancer [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 6441.
HSF1 is a stress-inducible transcription factor that regulates the eukaryotic heat shock response (HSR). HSF1 activation induces the expression of multiple proteins needed for cellular recovery from stress. HSF1 also plays a key role in tumorigenesis and regulates the expression of a cancer-specific gene signature which is unique to malignant cells and distinct from that activated during the HSR. We discovered NXP800, the first-in-class orally active HSF1 pathway inhibitor which is now undergoing Phase 1 clinical trial, based on a phenotypic pathway screen. Here we employed various techniques to investigate the mechanism of action of NXP800. Using RNAseq in a panel of human carcinoma cell lines, we identified overlapping gene expression changes in response to NXP800. These included genes regulated by HSF1 and interestingly also genes associated with activation of the integrated stress response (ISR). In contrast, we found no evidence for activation of the unfolded protein response. Consistent with the observed NXP800-induced phosphorylation of eIF2α which is a critical regulator of the ISR, NXP800 increased the protein expression of downstream ISR markers ATF4, CHOP and CHAC1, both in human tumor cells in vitro and in human tumor xenograft models in vivo. Induction of the ISR is controlled by four stress-activated protein kinases (PKs) that phosphorylate eIF2α. To further explore these kinases in the mechanism of action of NXP800 we used genetic knockdown by siRNA and inhibition by small-molecule tool compounds. Silencing each of the ISR-regulatory PKs revealed that GCN2 was required for ISR activation by NXP800. This was confirmed using two GCN2 inhibitors from different chemical series. Global phospho-proteome analysis showed that altered protein phosphorylation following NXP800 exposure was reversed upon co-treatment with a GCN2 inhibitor. We also demonstrated that activation of the ISR caused inhibition of HSF1 activation when stimulated with an HSF1 activator, thus confirming the link between ISR induction and inhibition of HSF1 activation. Activation of GCN2 and the ISR can occur in response to a variety of stimuli including amino acid deprivation. However, we did not detect a difference in the uptake of amino acids following exposure to NXP800, indicating that NXP800 does not directly impair amino acid uptake. Using an siRNA approach to determine if activation of the ISR components was contributing to growth inhibition following NXP800 exposure, we found that blocking the induction of ATF4 reduced the response of NXP800-sensitive SK-OV-3 human ovarian carcinoma cells to NXP800 treatment. In summary, NXP800 acts on cancer cells to induce activation of the ISR pathway via GCN2, which then leads to inhibition of HSF1 activation. Further studies are underway to determine the precise molecular target of NXP800 and the mechanism of HSF1 pathway inhibition. Citation Format: Marissa V. Powers, Swee Y. Sharp, Eirini-Maria Lampraki, Toby Roe, Loredana Pellegrino, Maria Taskinen, Robert te Poele, Florence Raynaud, Suzanne Eccles, Matthew Cheeseman, Keith Jones, Paul A. Clarke, Paul Workman. Activation of the integrated stress response by the developmental HSF1 pathway inhibitor NXP800 [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2023; Part 2 (Clinical Trials and Late-Breaking Research); 2023 Apr 14-19; Orlando, FL. Philadelphia (PA): AACR; Cancer Res 2023;83(8_Suppl):Abstract nr LB234.
Adobe PDF - MCT-07-0149--Suppl_Data.pdf from Inhibition of the heat shock protein 90 molecular chaperone in vitro and in vivo by novel, synthetic, potent resorcinylic pyrazole/isoxazole amide analogues
CCT251236 1, a potent chemical probe, was previously developed from a cell-based phenotypic high-throughput screen (HTS) to discover inhibitors of transcription mediated by HSF1, a transcription factor that supports malignancy. Owing to its activity against models of refractory human ovarian cancer, 1 was progressed into lead optimization. The reduction of P-glycoprotein efflux became a focus of early compound optimization; central ring halogen substitution was demonstrated by matched molecular pair analysis to be an effective strategy to mitigate this liability. Further multiparameter optimization led to the design of the clinical candidate, CCT361814/NXP800 22, a potent and orally bioavailable fluorobisamide, which caused tumor regression in a human ovarian adenocarcinoma xenograft model with on-pathway biomarker modulation and a clean in vitro safety profile. Following its favorable dose prediction to human, 22 has now progressed to phase 1 clinical trial as a potential future treatment for refractory ovarian cancer and other malignancies.
Supplementary Materials, Table 1 and Figures 1-3 from In vitro Biological Characterization of a Novel, Synthetic Diaryl Pyrazole Resorcinol Class of Heat Shock Protein 90 Inhibitors
Supplementary Figure 1 from Gene and Protein Expression Profiling of Human Ovarian Cancer Cells Treated with the Heat Shock Protein 90 Inhibitor 17-Allylamino-17-Demethoxygeldanamycin
Adobe PDF - MCT-07-0149--Suppl_Data.pdf from Inhibition of the heat shock protein 90 molecular chaperone <i>in vitro</i> and <i>in vivo</i> by novel, synthetic, potent resorcinylic pyrazole/isoxazole amide analogues