Background:Opportunistic nutrient uptake is a hallmark of cancer metabolism. Cancer cells upregulate macropinocytosis to acquire extracellular nutrients to support growth and stress adaptation. We previously showed that extracellular ATP (eATP) is internalized by macropinocytosis and promotes multiple cancer phenotypes. Here, we tested whether eATP uptake is prevalent across cancers and whether eATP also induces senescence through purinergic receptor (PR) signaling. Methods:Intracellular ATP (iATP) levels were measured following eATP exposure across multiple cancer cell lines. eATP internalization was visualized in vitro and in vivo using a non-hydrolyzable fluorescent ATP analog together with high-molecular-weight dextran as a macropinocytosis marker. Senescence was quantified using three SA-β-galactosidase assays and flow cytometry. Pharmacologic inhibitors of macropinocytosis and purinergic receptors were used to define pathway dependence. Combination treatments with the glucose transporter inhibitor DRB18 and the senolytic navitoclax were evaluated for antiproliferative effects. Results:eATP produced dose- and time-dependent increases in iATP across diverse cancer cell types. Imaging demonstrated widespread macropinocytic internalization of ATP in vitro and in tumor xenografts. eATP induced senescence in NSCLC cells, confirmed by multiple β-gal assays and flow cytometry. PR inhibition significantly reduced senescence, whereas macropinocytosis inhibition had minimal effect on senescence induction. Conclusions:eATP acts through dual pathways in cancer cells: macropinocytic internalization that elevates iATP and PR signaling that drives senescence. Targeting metabolic uptake together with senolytic therapy may offer a novel anticancer strategy.
Background:Cancer cells depend on glucose for biomass synthesis, cell proliferation, and drug resistance. Glucose transporter (GLUT) transcripts as well as proteins are upregulated in human lungs and other cancers and are negatively correlated with patient survival, particularly GLUT1 and GLUT3. Thus, inhibiting GLUT function has been an attractive anticancer strategy. We previously characterized WZB117 and DRB18, first- and second-generation pan-class I GLUT inhibitors, respectively. DRB18 strongly inhibits glucose transport mediated by GLUT1-4 in non-small lung cancer (NSCLC) A549 cells in vitro and in vivo. Here, we report DRB18 as a more stable and potent anticancer compound, compared to WZB117. Methods:Immunohistochemistry analysis was performed in Lung adenocarcinoma (LUAD) tissue array to investigate GLUT1 and GLUT3 protein expression between normal, lower and higher stage LUAD patients. Bioinformatics analysis was performed to examine additive effect of GLUT3 to GLUT1 mediated prognosis in LUAD. Glucose uptake and resazurin dye-based proliferation assays were used to determine glucose uptake inhibitory and cell proliferation inhibitory against panel of human cancer cell lines A549, Panc1 and Hela. DRB18 potency was tested against the presence of extracellular nutrients glucose, glutamine and ATP. Synergism between DRB18 and clinically approved anticancer drugs was tested against cancer cells. DRB18 and advanced NSCLC drug Paclitaxel were tested for synergy in vitro and in vivo. Results:GLUT1/3 combination exhibited higher hazard ratio than either GLUT1 and GLUT3 alone in many cancer types including LUAD. DRB18 reduced glucose uptake in NSCLC A549, pancreatic Panc1, and cervical Hela cancer cells with varied but strong anticancer potencies in the presence or absence of extracellular nutrients such as ATP and glucose. Combined with different clinical and pre-clinical anticancer compounds such as V9302, CB839, Sutent, Brigatinib, DRB18 significantly increased death of A549 and Panc1 cells. Noteworthy, DRB18 exhibited strong anticancer synergy with paclitaxel, an approved chemo drug for NSCLC, drastically reducing cancer cell proliferation in vitro and growth of A549 tumors grafted on the flank of nude mice without significant side effects, compared to single drug treatments. Mechanistically, DRB18 treatment with paclitaxel elevated the expression of Caspases 3 and 9, suggesting GLUT-inhibiting and apoptosis-inducing anticancer mechanisms of DRB18 with paclitaxel. Conclusions:Collectively, our results demonstrate anticancer efficacy of pan class-I GLUT inhibitor DRB18 in combination with paclitaxel, providing a potentially more efficacious therapeutic strategy for treating advanced NSCLC and other cancers.
Aim:Bone-metastatic prostate cancer(PCa)is a debilitating disease with few therapeutic options once androgen independence and chemotherapeutic resistance develop.Advanced PCa has metabolic vulnerabilities involving glycolysis,which is mediated by class I glucose transporters(GLUTs1-4).We previously patented DRB18,a small molecule pan-class I GLUT inhibitor that successfully inhibited the growth of a human lung cancer xenograft in mice.The purpose of this study was to determine the sensitivity of advanced PCa to GLUT antagonism using DRB18. Methods:Bioinformatics was performed on human and canine PCa datasets to determine the clinical expression of class I GLUTs.Glucose uptake and cell viability in response to DRB18 were measured in vitro.Tibias of athymic mice were inoculated with Ace-1 canine PCa cells and treated with DRB18.The combination of DRB18 with cytotoxic docetaxel was assessed in vitro. Results:Expression of important class I GLUTs and glycolysis genes increased during PCa progression in men and dogs.DRB18 reduced cancer cell glucose uptake and cell viability in a dose-dependent manner.Half-maximal inhibitory concentrations(IC50)ranged from 20-30 µM.DRB18 did not prevent intratibial PCa growth in vivo and had toxic effects at higher concentrations.DRB18 and docetaxel combination therapy and gene expression data from publicly available human PCa samples indicated docetaxel treatment does not stimulate glucose-related metabolic pathways. Conclusion:GLUT1 inhibition alone or with combination therapy may not be appropriate for bone-metastasis inhibition.The results contribute to evidence that suggests bone metastatic PCa is not glucose dependent.
Abstract In tumors, extracellular ATP (eATP) concentrations are 1,000 to 10,000 times higher than is found in normal tissues and eATP is up taken through macropinocytosis leading to a large increase in intracellular ATP levels. eATP is also linked to the TGF-β signaling pathway as exocytosis of ATP is induced that is then used in an autocrine fashion activating the P2 × 7 purinergic receptor1. Through these mechanisms, eATP has also been recently shown to induce EMT, CSC formation, and drug resistance1. One of the mechanisms through which these processes may be induced is a senescent cell precursor2. Senescence is a generally irreversible epigenetically controlled process characterized by a complete exit from the cell cycle in response to either DNA damage, stressful conditions, or aging. Recent mounting evidence has shown that senescence can be a cancer promoting mechanism by entering this state in response to stress such as during chemotherapy, but they can utilize it to enhance their malignant capabilities, including the ability to escape their senescent state with heightened stem cell characteristics, which can lead to a higher chance of relapse after treatment2. Senescent cells have recently been named a hallmark of cancer3. This study shows the time dependent induction of a senescent like state in human lung cancer A549 cells after only 2 hours of treatment with 0.5mM eATP, the concentration found in the tumor microenvironment, through analysis of transcriptional markers using total polyA RNAseq as well as chromogenic and flow cytometric assays for senescence associated beta-galactosidase activity. Additionally, inhibitors of macropinocytosis and purinergic receptors have been used to gain insight into the mechanisms of action that this pathway takes. This demonstrates a novel use of ATP within the tumor microenvironment for aiding in cancer progression and drug resistance. After EMT, CSC formation, and drug resistance, senescence is added to the long list of eATP mediated cancer promoting processes. 1. Song J, Qian Y, Evers M, Nielsen CM, Chen X. Cancer Stem Cell Formation Induced and Regulated by Extracellular ATP and Stanniocalcin-1 in Human Lung Cancer Cells and Tumors. IJMS. 2022;23(23):14770. doi:10.3390/ijms232314770 2. Zhang D, Monteiro MJ, Liu J, Gu W. Mechanisms of cancer stem cell senescence: Current understanding and future perspectives. Clin Exp Pharma Physio. 2021;48(9):1185-1202. doi:10.1111/1440-1681.13528 3. Hanahan D. Hallmarks of Cancer: New Dimensions. Cancer Discovery. 2022;12(1):31-46. doi:10.1158/2159-8290.CD-21-1059 Citation Format: Ryan A. Ward, Arabella Hunt, Nora Anderson, Xiaozhuo Chen. Extracellular ATP induced senescence in human lung cancer cells [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 2978.
IntroductionResistance to drug therapies is associated with a large majority of cancer-related deaths. ATP-binding cassette (ABC) transporter-mediated drug efflux, epithelial-mesenchymal transition (EMT), cancer stem cells (CSCs), glutathione (GSH), senescence, and vacuole-type ATPase (V-ATPase) all contribute to the resistance. We recently showed that extracellular ATP (eATP) induces and regulates EMT, CSC formation, and ABC transporters in human cancer cells and tumors. eATP also consistently upregulates Stanniocalcin-1 (STC1), a gene that significantly contributes to EMT, CSC formation, and tumor growth. We also found that eATP enhances drug resistance in cancer cells through eATP internalization mediated by macropinocytosis, leading to an elevation of intracellular ATP (iATP) levels, induction of EMT, and CSC formation. However, these factors have never been systematically investigated in the context of eATP-induced drug resistance. MethodsIn this study, we hypothesized that eATP increases drug resistance via inducing ABC efflux, EMT, CSCs, STC1, and their accompanied processes such as GSH reducing activity, senescence, and V-ATPase. RNA sequencing, metabolomics, gene knockdown and knockout, and functional assays were performed to investigate these pathways and processes. Results and discussionOur study results showed that, in multiple human cancer lines, eATP induced genes involved in drug resistance, elevated ABC transporters’ efflux activity of anticancer drugs; generated transcriptomic and metabolic profiles representing a drug resistant state; upregulated activities of GSH, senescence, and V-ATPase to promote drug resistance. Collectively, these newly found players shed light on the mechanisms of eATP-induced as well as STC1- and V-ATPase-mediated drug resistance and offer potential novel targets for combating drug resistance in cancers.
PDF file, 70KB, WZB117 inhibited cell proliferation of cancer cells more than non-cancerous cells and exhibited synergy with anticancer drugs.
Despite the rapid development of therapeutic strategies in cancer treatment, metastasis remains the major cause of cancer-related death and scientific challenge. Epithelial-Mesenchymal Transition (EMT) plays a crucial role in cancer invasion and progression, a process by which tumor cells lose cell-cell adhesion and acquire increased invasiveness and metastatic activity. Recent work has uncovered some crucial roles of extracellular adenosine 5’- triphosphate (eATP), a major component of the tumor microenvironment (TME), in promoting tumor growth and metastasis. Intratumoral extracellular ATP (eATP), at levels of 100–700 µM, is 103–104 times higher than in normal tissues. In the current literature, eATP’s function in promoting metastasis has been relatively poorly understood as compared with intracellular ATP (iATP). Recent evidence has shown that cancer cells internalize eATP via macropinocytosis in vitro and in vivo, promoting cell growth and survival, drug resistance, and metastasis. Furthermore, ATP acts as a messenger molecule that activates P2 purinergic receptors expressed on both tumor and host cells, stimulating downstream signaling pathways to enhance the invasive and metastatic properties of tumor cells. Here, we review recent progress in understanding eATP’s role in each step of the metastatic cascade, including initiating invasion, inducing EMT, overcoming anoikis, facilitating intravasation, circulation, and extravasation, and eventually establishing metastatic colonization. Collectively, these studies reveal eATP’s important functions in many steps of metastasis and identify new opportunities for developing more effective therapeutic strategies to target ATP-associated processes in cancer.
The genetic disorder glucose transporter type 1 deficiency syndrome (GLUT1-DS) heavily affects the main intake of energy in tissues and determines the most relevant outcomes at the central nervous system (CNS) district, which is highly dependent on glucose. Herein, we report the design and development of a set of compounds bearing the glucosyl and galactosyl moieties. We assessed their ability to enhance the GLUT1 mediated glucose intake in non-small-cell lung cancer (NSCLC) cells and to inhibit the carbonic anhydrase (CA; EC 4.2.1.1) isoforms implicated in the physiopathology of uncontrolled seizures associated to epilepsy (i.e., I, II, IV, VA, VB, and XII). The binding mode of 8 in adduct with hCA II was determined by X-ray crystallography. Among the selected derivatives, compound 4b proved effective in suppressing the occurrence of uncontrolled seizures on the in vivo induced maximal electroshock (MES) model and thus gives sustainment of an unprecedently reported pharmacological approach for the management of GLUT1-DS associated diseases.
Non-Small Cell Lung Cancer (NSCLC) is the most common type of lung cancer, accounting for 84% of all lung cancer diagnoses. While there are current standard treatments for NSCLC, these treatments may cause severe side effects, drug resistance, or lead to ineffective treatment, recurrence of the cancer, and death. It has been shown that most cancer types are “addicted” to glucose, and are sensitive and vulnerable to glucose deprivation, making the inhibition of glucose transport into these cells an attractive anticancer strategy. DRB18 is a small molecule proprietary compound that has been shown to target and inhibit class I glucose transporters (GLUTs, GLUT1-4), which are responsible for the uptake of glucose into cells, particularly these types of cancer cells. DRB18 has been shown to be effective in inhibiting cancer cell growth in vitro and in vivo without noticeable side effects.1 While this may be a promising anticancer therapy by itself, combining DRB18 with another anticancer drug that has a totally different anticancer mechanism should substantially increase the efficacy of the treatment while potentially minimizing the rate of resistance and recurrence of the cancer without increasing unwanted side effects. This research focuses on combining DRB18 with FDA-approved target drugs Trametinib and Brigatinib, the FDA-approved chemotherapy drug Paclitaxel, and a glutamine transporter inhibitor (V-9302). Thus, the treatment groups are vehicle, each of the previously mentioned drugs alone, as well as DRB18+Trametinib, DRB18+Brigatinib, DRB18+Paclitaxel, and DRB18+V-9302. This study tests the hypothesis that, due to their different anticancer mechanisms, the combination of DRB18 with these anticancer drugs will have a synergistic anticancer effect. Preliminary in vitro data and an in vivo pilot tumor study in nude mice, using human NSCLC A549 cells, have shown the improved anticancer efficacy of the combinatorial approach by further reducing tumor growth when compared with single drug treatment. The results of a larger nude mouse study, as well as basic mechanistic studies in vitro, that are currently underway will be presented later at the AACR meeting. This combination therapy has great therapeutic implications and the potential to benefit cancer patients for decades to come. 1. Shriwas P, Roberts D, Li Y, Wang L, Qian Y, Bergmeier S, Hines J, Adhicary S, Nielsen C, & Chen X. (2021). A small molecule pan-class I glucose transporter inhibitor reduces cancer cell proliferation in vitro and tumor growth in vivo by targeting glucose-based metabolism. Cancer and Metabolism, 9 (14). Citation Format: Lindsey M. Bachmann, Pratik Shriwas, Ryan A. Ward, Liyi Wang, Stephen C. Bergmeier, Yunsheng Li, Xiaozhuo Chen. Combinatorial anticancer therapy strategy using a pan-class I glucose transporter inhibitor with chemotherapy and target drugs in vitro and in vivo [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2022; 2022 Apr 8-13. Philadelphia (PA): AACR; Cancer Res 2022;82(12_Suppl):Abstract nr 1047.
We and others previously showed that extracellular ATP (eATP) is implicated in epithelial mesenchymal transition (EMT). However, the mechanisms by which eATP induces EMT and ATP’s relationship to TGF-β, a well-known EMT inducer, are largely unclear. Also, eATP-induced EMT has never been studied at transcriptomic and metabolomics levels. Based on our previous studies, we hypothesized that eATP acts as a specific inducer and regulator of EMT at all levels in cancer cells. RNAseq and metabolomics analyses were performed on human non-small cell lung cancer (NSCLC) A549 cells treated with either eATP or TGF-β. Bio-functional assays, such as invasion, intracellular ATP, cell proliferation, cytoskeleton remodeling, and others were conducted in NSCLC A549 and H1299 cells to validate changes observed from RNAseq and metabolomics studies. In the RNAseq study, eATP significantly enriched expressions of genes involved in EMT similarly to TGF-β after 2 and 6 hours of treatment. Samples treated with eATP for 2 hours share 131 upregulated EMT genes with those of TGF-β treated samples, and 42 genes at 6 hours treatment. Eleven genes, with known or unknown functions in EMT, are significantly upregulated by both inducers at both time points, have been identified. BLOC1S6, one of the 11 genes, was selected for further study. eATP induced numerous EMT-related changes in metabolic pathways, including cytoskeleton rearrangement, glycolysis, glutaminolysis, ROS, and individual metabolic changes similar to those induced by TGF-β. Functional bioassays verified the findings from RNAseq and metabolomics that eATP EMT-like changes in A549 and H1299 cells similarly to TGF-β. BLOC1S6 was found to be implicated in EMT. In these studies, eATP-induced EMT, at all levels examined, is similar but non-identical to that induced by TGF-β, and functions in such a way that exogenous addition of TGF-β is unnecessary for the induction. The study of BLOC1S6 further verified its potential roles in EMT and the RNAseq analysis results. All these strongly indicate that eATP is a multi-functional and multi-locational inducer and regulator of EMT, changing our thinking on how EMT is induced and regulated and pointing to new directions for inhibiting EMT in cancer.
Cancer stem cells (CSCs) are closely associated with metastasis and epithelial mesenchymal transition (EMT). We previously reported that extracellular ATP (eATP) induces and regulates EMT in cancer cells. We recently found that the gene stanniocalcin 1 (STC1) is significantly upregulated by eATP in human non-small lung cancer (NSCLC) A549 cells; however, the relationships among eATP, CSCs, and STC1 were largely unknown. In this study, we performed gene knockdown and knockout, and a wide variety of functional assays to determine if and how eATP and STC1 induce CSCs in NSCLC A549 and H1299 cells. Our data show that, in both cultured cells and tumors, eATP increased the number of CSCs in the cancer cell population and upregulated CSC-related genes and protein markers. STC1 deletion led to drastically slower cell and tumor growth, reduced intracellular ATP levels and CSC markers, and metabolically shifted STC1-deficient cells from an energetic state to a quiescent state. These findings indicate that eATP induces and regulates CSCs at transcriptional, translational, and metabolic levels, and these activities are mediated through STC1 via mitochondria-associated ATP synthesis. These novel findings offer insights into eATP-induced CSCs and identify new targets for inhibiting CSCs.
The tumor microenvironment (TME) has concentrations of extracellular ATP (eATP) 103-104 times higher than normal healthy tissues, implying that eATP may have important roles in tumor development and progression. Our previous study, cited by a Nature Reviews Cancer paper, showed that the extracellular ATP (eATP) is internalized by tumors via macropinocytosis, a type of endocytosis, to increase intracellular ATP (iATP) levels and support tumor cells growth, drug resistance, and cancer cell movement by initiating epithelial to mesenchymal transition (EMT). Recently, our lab found that eATP functions in promoting cancer cell growth, metastasis are similar to those of TGF-β, a well-known EMT and cancer stem cells (CSCs) inducer. Increasing reports state that the EMT and CSCs share some molecular links, but the detailed mechanisms and inductor of them are still far from clear. In this report, eATP’s function in CSCs induction was investigated first. Result shows that eATP treatment significantly induces the protein expression level of CSC related makers, increases cell colony numbers, and cell populations with CSC markers expressed in human lung cancer A549 cells. In addition, RNA-sequencing analysis reveals the gene Stanniocalcin 1 (STC1) is significantly upregulated in both eATP and TGF-β treatments. STC1 gene has been reported to be a competitive biomarker in the tracking of cancers’ progressing. Besides, STC1 exhibits concentration-dependent stimulation effects on electron transportation chain (ETC) and respiration. However, the detail function of STC1 gene in eATP induced cell growth is unknown. To find out the mechanism, CRISPR-Cas9 technique was used to generate STC1 gene targeted knockout (STC1 KO) A549 cells. STC1 KO cells show slower cell growth rate, lower intracellular ATP level and lower oxygen consumption rate (OCR) when compared with normal A549 cells in vitro. These results strongly indicate STC1 gene involved in eATP induced cell growth by alteration iATP level and metabolic profile. Overall, this study not only unravels new role of eATP in CSC induction, but also provides new mechanism of eATP induced cell growth by altering the protein expression level of STC1. Citation Format: Jingwen Song, Xiaozhuo Chen. Elucidating the mechanisms of eATP-induced changes in cell growth, energy metabolism, and cancer stem cells in human non-small lung cancer A549 cells [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2022; 2022 Apr 8-13. Philadelphia (PA): AACR; Cancer Res 2022;82(12_Suppl):Abstract nr 888.
Drug resistance are responsible for most relapses and up to 90% of cancer related death. The opportunistic uptake of extracellular molecules has been named as a key emerging hallmark of cancer metabolism. In tumor microenvironment, intratumoral extracellular ATP (eATP) levels are 1,000 times or more higher than those in corresponding normal tissues. Our previous studies have shown that eATP can be taken up by cancer cell via macropinocytosis, leading to substantial increase in intracellular ATP levels. We found that this high intracellular ATP levels contribute to drug resistance in several ways: first, it directly fueled and enhanced drug-pumping activity of major ATP-binding cassette (ABC) multidrug transporters, which are located in plasma membrane and can pump out a wide range of substrates including anticancer drugs, leading to reduced intracellular drug retention. Secondly, ATP treatment upregulated gene expression of the major ABC transporters, and this gene regulatory effect of ATP was comparable to TGF-beta, which is a well-established epithelial-mesenchymal transition (EMT) inducer, and EMT is known to induce ABC transporter expression and drug resistance. Moreover, eATP treatment led to an increase in intracellular glutathione (GSH) levels, probably by enhancing GSH synthesis. Increased GSH levels have been described to significantly contribute to drug resistance. We also found eATP altered cellular redox state, which potentially stimulates EMT. Furthermore, we performed RNA-sequencing and identified several genes that may serve as downstream factors of eATP in promoting EMT and drug resistance. We are currently investigating the roles of these genes by knocking down gene expression or knocking out these genes. Citation Format: Haiyun Zhang, Xiaozhuo Chen. A new mechanism of drug resistance in cancer: extracellular ATP-induced resistance by macropinocytosis-mediated internalization and redox changes [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2022; 2022 Apr 8-13. Philadelphia (PA): AACR; Cancer Res 2022;82(12_Suppl):Abstract nr 405.
Macropinocytosis is one of the major mechanisms by which cancer cells uptake extracellular nutrients from tumor microenvironment (TME) and plays very important roles in various steps of tumorigenesis. We previously reported the unexpected finding that intratumoral and extracellular ATP (eATP), as one of the major drastically upregulated extracellular nutrients and messengers in tumors, is taken up by cancer cells through macropinocytosis in large quantities and significantly contributing to cancer cell growth, survival, and increased resistance to chemo and target drugs. Inhibition of macropinocytosis substantially reduced eATP uptake by cancer cells and slowed down tumor growth in vivo. More recently, we have found the eATP also plays a very important role in inducing epithelial-to-mesenchymal transition (EMT), and that macropinocytosis is an essential facilitator in the induction. Thus, macropinocytosis and eATP, working in coordination, appear to play some previously unrecognized but very important roles in EMT and metastasis. As a result, they are likely to be interactive and communicative with each other, regulating each other's activity for various needs of host tumor cells. They are also likely to be an integral part of the future new anticancer therapeutic strategies. Moreover, it is undoubted that we have not identified all the important activities coordinated by ATP and macropinocytosis. This review describes our findings in how eATP and macropinocytosis work together to promote cancer cell growth, resistance, and EMT. We also list scientific challenges facing eATP research and propose to target macropinocytosis and eATP to reduce drug resistance and slow down metastasis.
The Diabetes Institute at Ohio University, Athens, OH, 45701, USA; The Edison Biotechnology Institute, Athens, OH, 45701, USA; Department of Biological Sciences, Athens, OH, 45701, USA; Department of Biomedical Sciences, Athens, OH, 45701, USA; Heritage College of Osteopathic Medicine, Athens, OH, 45701, USA; Interdisciplinary Graduate Program in Molecular and Cellular Biology, Athens, OH, 45701, USA; Department of Chemistry and Biochemistry, Athens, OH, 45701, USA; Department of Specialty Medicine, Athens, OH, 45701, USA; Translational Biomedical Sciences Program, Ohio University, Athens, OH, 45701, USA; Department of Internal Medicine, Division of Endocrinology, Diabetes and Metabolism, University of California at Davis (UC Davis) School of Medicine, UC Davis Health Science, Sacramento, CA, 95817, USA Purpose: Previously we showed that natural compound α-penta-galloyl-glucose (α-PGG) and its synthetic derivative 6-chloro-6-deoxy-1,2,3,4-tetra-O-galloyl-α-D-glucopyranose (6Cl-TGQ) act to improve insulin signaling in adipocytes by increasing glucose transport. In this study, we investigated the mechanism of actions of α-PGG and 6Cl-TGQ on insulin secretion. Methods: Mouse islets and/or INS-1832/13 beta-cells were used to test the effects of our compounds on glucose-stimulated insulin secretion (GSIS), intracellular calcium [Ca]i using fura-2AM, glucose transport activity via a radioactive glucose uptake assay, intracellular ATP/ADP, and extracellular acidification (ECAR) and mitochondrial oxygen consumption rates (OCAR) using Seahorse metabolic analysis. Results: Both compounds reduced GSIS in beta-cells without negatively affecting cell viability. The compounds primarily diminished glucose uptake into islets and beta-cells. Despite insulin-like effects in the peripheral tissues, these compounds do not act through the insulin receptor in islets. Further interrogation of the stimulus-secretion pathway showed that all the key metabolic factors involved in GSIS including ECAR, OCAR, ATP/ADP ratios, and [Ca]i of INS-1832/13 cells were diminished after the compound treatment. Conclusion: The compounds suppress glucose uptake of the beta-cells, which consequently slows down the rates of glycolysis and ATP synthesis, leading to decrease in [Ca]i and GSIS. The difference between adipocytes and beta-cells in effects on glucose uptake is of great interest. Further structural and functional modifications could produce new compounds with optimized therapeutic potentials for different target cells. The higher potency of synthetic 6Cl-TGQ in enhancing insulin signaling in adipocytes but lower potency in reducing glucose uptake in beta-cells compared to α-PGG suggests the feasibility of such an approach.
Background Cancer cells drastically increase the uptake of glucose and glucose metabolism by overexpressing class I glucose transporters (GLUT1-4) to meet their energy and biomass synthesis needs and are very sensitive and vulnerable to glucose deprivation. Although targeting glucose uptake via GLUTs has been an attractive anticancer strategy, the relative anticancer efficacy of multi-GLUT targeting or single GLUT targeting is unclear. Here, we report DRB18, a synthetic small molecule, is a potent anticancer compound whose pan-class I GLUT inhibition is superior to single GLUT targeting. Methods Glucose uptake and MTT/resazurin assays were used to measure DRB18’s inhibitory activities of glucose transport and cell viability/proliferation in human lung cancer and other cancer cell lines. Four HEK293 cell lines expressing GLUT1-4 individually were used to determine the IC 50 values of DRB18’s inhibitory activity of glucose transport. Docking studies were performed to investigate the potential direct interaction of DRB18 with GLUT1-4. Metabolomics analysis was performed to identify metabolite changes in A549 lung cancer cells treated with DRB18. DRB18 was used to treat A549 tumor-bearing nude mice. The GLUT1 gene was knocked out to determine how the KO of the gene affected tumor growth. Results DRB18 reduced glucose uptake mediated via each of GLUT1-4 with different IC 50 s, which match with the docking glidescores with a correlation coefficient of 0.858. Metabolomics analysis revealed that DRB18 altered energy-related metabolism in A549 cells by changing the abundance of metabolites in glucose-related pathways in vitro and in vivo. DRB18 eventually led to G1/S phase arrest and increased oxidative stress and necrotic cell death. IP injection of DRB18 in A549 tumor-bearing nude mice at 10 mg/kg body weight thrice a week led to a significant reduction in the tumor volume compared with mock-treated tumors. In contrast, the knockout of the GLUT1 gene did not reduce tumor volume. Conclusions DRB18 is a potent pan-class I GLUT inhibitor in vitro and in vivo in cancer cells. Mechanistically, it is likely to bind the outward open conformation of GLUT1-4, reducing tumor growth through inhibiting GLUT1-4-mediated glucose transport and metabolisms. Pan-class I GLUT inhibition is a better strategy than single GLUT targeting for inhibiting tumor growth.
Background: Epithelial mesenchymal transition (EMT) is an early process in metastasis. Extracellular ATP (eATP) was shown to play important roles in EMT. However, the mechanisms by which eATP induces EMT and ATP’s relationship to TGF-b, a well-known EMT inducer, are unclear. Key questions include: if and how much EMT-specific gene expression eATP induces and how similar is ATP-induced EMT to TGF-b-induced EMT? We hypothesized that eATP acts as a specific inducer and regulator of EMT at all levels alternative to TGF-b in cancer cells. Methods: As EMT involves changes from gene expression to metabolites, RNAseq and metabolomics analyses were performed on human NSCLC A549 cells treated with either eATP or TGF-b to determine how they induce EMT at transcription and metabolic levels. Bio-functional assays, such as Transwell invasion, intracellular ATP, resazurin cell viability, fluorescence microscopy of filopodia formation, and antibody neutralization / cell rescue, were conducted in more NSCLC cell lines to validate changes identified from RNAseq and metabolomics analyses by confirming the corresponding EMT phenotypic changes.Results: RNAseq analysis shows that eATP significantly enriched expressions of genes involved in EMT temporarily, and similarly but non-identically to TGF-b after 2 and 6 hours of treatment. Eleven genes, with known or unknown functions in EMT, are significantly upregulated by both inducers at both time points, have been identified. Metabolomics analysis revealed eATP induced numerous EMT-related changes in metabolic pathways, including cytoskeleton rearrangement, glycolysis, glutaminolysis, ROS, and individual metabolic changes similar or identical to those induced by TGF-b. eATP-induced transcriptomic changes appeared smaller but earlier than TGF-b. Functional bioassays verified the RNAseq and metabolomics findings that eATP induced earlier and more invasion and formation of filopodia in A549 and H1299 cells, and restored viability of cancer cells treated with TGF-b-neutralizing antibodies. Conclusions: eATP-induced EMT, from gene expression changes and metabolic reprogramming, is similar but non-identical to that induced by TGF-b, and is independent of TGF-b. The smaller but earlier EMT-related changes induced by eATP, compared with TGF-b, could be largely explained by extracellular action of eATP and intracellular activities of macropinocytosis-internalized eATP. These strongly indicate that eATP is an emerging master inducer and regulator of EMT.
Purpose Previously we showed that natural compound α-penta-galloyl-glucose (α-PGG) and its synthetic derivative 6-chloro-6-deoxy-1,2,3,4-tetra-O-galloyl-α-D-glucopyranose (6Cl-TGQ) act to improve insulin signaling in adipocytes by increasing glucose transport. In this study, we investigated the mechanism of actions of α-PGG and 6Cl-TGQ on insulin secretion. Methods Mouse islets and/or INS-1832/13 beta-cells were used to test the effects of our compounds on glucose-stimulated insulin secretion (GSIS), intracellular calcium [Ca2+]i using fura-2AM, glucose transport activity via a radioactive glucose uptake assay, intracellular ATP/ADP, and extracellular acidification (ECAR) and mitochondrial oxygen consumption rates (OCAR) using Seahorse metabolic analysis. Results Both compounds reduced GSIS in beta-cells without negatively affecting cell viability. The compounds primarily diminished glucose uptake into islets and beta-cells. Despite insulin-like effects in the peripheral tissues, these compounds do not act through the insulin receptor in islets. Further interrogation of the stimulus-secretion pathway showed that all the key metabolic factors involved in GSIS including ECAR, OCAR, ATP/ADP ratios, and [Ca2+]i of INS-1832/13 cells were diminished after the compound treatment. Conclusion The compounds suppress glucose uptake of the beta-cells, which consequently slows down the rates of glycolysis and ATP synthesis, leading to decrease in [Ca2+]i and GSIS. The difference between adipocytes and beta-cells in effects on glucose uptake is of great interest. Further structural and functional modifications could produce new compounds with optimized therapeutic potentials for different target cells. The higher potency of synthetic 6Cl-TGQ in enhancing insulin signaling in adipocytes but lower potency in reducing glucose uptake in beta-cells compared to α-PGG suggests the feasibility of such an approach.
The cancer stem cell (CSC) state and epithelial-mesenchymal transition (EMT) activation are tightly interconnected. Cancer cells that acquire the EMT/CSC phenotype are equipped with adaptive metabolic changes to maintain low reactive oxygen species levels and stemness, enhanced drug transporters, anti-apoptotic machinery and DNA repair system. Factors present in the tumor microenvironment such as hypoxia and the communication with non-cancer stromal cells also promote cancer cells to enter the EMT/CSC state and display related resistance. ATP, particularly the high levels of intratumoral extracellular ATP functioning through both signaling pathways and ATP internalization, induces and regulates EMT and CSC. The three of them work together to enhance drug resistance. New findings in each of these factors will help us explore deeper into mechanisms of drug resistance and suggest new resistance-associated markers and therapeutic targets.