Abstract The WNT signaling transduction pathway has been linked to cancer stem cell self-renewal, differentiation, and blood brain barrier (BBB) development. Previous studies have shown that WNT pathway inhibition increased BBB permeability, specifically in WNT medulloblastoma. Glioblastoma, an aggressive malignant tumor with poor prognosis, has also been shown to have high WNT expression and variable BBB permeability. We hypothesize that activating WNT pathway inhibition in glioblastoma stem cells (GSCs) will inhibit glioma progression, increase BBB permeability within the tumor microenvironment, and enhance overall treatment responsiveness. We transduced primary pediatric derived glioma stem cells with overexpressing vectors for WNT inhibitors (DKK1 or WIF1). To characterize effects of DKK1 or WIF1 overexpression, we evaluated cell migration patterns via RTCA xCelligence, cell cycle progression via Annexin 5 assays, and cell viability via cell-titer glo. Brain endothelial cell integrity was evaluated with the treatment of CHIR99021, WNT pathway activator, or GSC condition media with immunoblotting for junctional protein expression (Claudin-5, Claudin-3, Occludin, ZO-1, VE-Cadherin). Verification of WNT inhibitory overexpressing GSCs for DKK1 and WIF1 was performed using RNAseq, proteomics, and immunoblotting. DKK1-GSCs demonstrated a statistically significant impairment in the migratory slope compared to empty vector GSCs. Cell cycle analysis also revealed that DKK1-GSCs were arrested in G0/1 phase while WIF1-GSCs were arrested in S/G2M phase. CHIR99021 endothelial treatment resulted in increased secretion of WNT inhibitors DKK1 and SFRP1 and resultantly, there was a decrease in junctional protein expression. Overall, WNT inhibitor overexpressing GSCs exhibited unique cellular patterns and indirectly disrupted endothelial cell integrity. Future studies will evaluate orthotopic WNT inhibitor overexpressing transplant rodent models to determine BBB integrity, drug permeability, model survival, and chemotherapeutic treatment response. By enhancing our understanding of the WNT pathway in GSCs, we anticipate understanding the use of future therapeutic WNT pathway targeting to increase chemotherapeutic responsiveness and improve glioblastoma prognosis.
Abstract The blood-brain barrier (BBB) hinders CNS chemotherapy entry for malignant glioma treatment. It is predominantly composed of brain endothelium linked by bicellular (BJ) and tricellular (TJ) tight junctions. Previous studies demonstrated,angubindin-1 inhibited TJ angulin-1 to increase brain and CSF targeted therapy in rodent lung cancer models. We hypothesize angubindin-1 can transiently decrease BBB junctional integrity to increase chemotherapy permeability and prolong rodent glioma model survival. Rat brain endothelial cells were treated with TJ and BJ inhibitors against angulin-1 (angubindin-1 600µg/mL), claudin-3 (C-CPE 200µg/mL) or claudin-5 (C-CPE-MT 200µg/mL). Endothelial integrity was assessed by immunoblotting and cell-cell electrical impedance. Effects of angubindin-1 on efflux transporter P-glycoprotein (PGP) and migration were studied using rat and human derived glioma cells. Rat glioma models were treated with doxil (3 mg/kg), angubindin-1 (10 mg/kg or 30 mg/kg), or combination therapy for assessments on tumor volume, BBB permeability and survival. We observed decreased angulin-1 expression 5 hours after angubindin-1 treatment, with return to baseline by 24 hours (p<0.05). Angubindin-1, CCPE, and CCPE-mt globally reduced endothelial cell-cell integrity, maximally at 4 hours with a return to baseline by 12 hours; with angubindin-1 demonstrating the largest decreased cell-adhesion (angubindin-1 vs control, p< 0.0001). Angubindin-1 also decreased PGP efflux of rhodamine in both endothelial and glioma cells, along with demonstrating a pro-migratory dose-dependent effect on rat glioma cells. Combined angubindin-1 and doxil increased survival in rat glioma models compared with doxil alone (24 days vs. 18 days, p < 0.0001). Day 14 tumor volume was significantly decreased with angubindin-1 and combination treatment respectively (77.5 % vs 81.6 %, p<0.05). Ongoing studies are exploring, angubindin-1’s effect on large CNS drug permeability, TJ localization post BBB disruption and additional combinational treatments in glioma models. Collectively, these findings pose a unique opportunity to disrupt BBB integrity and improve malignant glioma treatment options.
Abstract The blood–brain barrier (BBB) is a specialized neurovascular unit evolved to maintain brain homeostasis and prevent effective agents from reaching malignant brain tumors such as glioblastoma. The Wnt/β-catenin signaling pathway helps to ensure BBB integrity and previous studies demonstrate Wnt pathway inhibition increases BBB permeability. High grade gliomas express increased Wnt expression compared with normal tissue. We hypothesize that Wnt pathway inhibition in glioma stem cells (GSCs) will hinder progression, increase BBB permeability, and enhance overall treatment response. In this study, we transduced primary pediatric-derived glioma stem cells with lentiviral vectors overexpressing Wnt inhibitors (DKK1 or WIF1) and then characterized migration, proliferation, and cell cycle progression. WNT inhibition on brain endothelial cell integrity was evaluated with GSC conditioned media (GSC-CM) +/- CHIR99021 (Wnt pathway activator) for function via electrical cell-cell impedance and junctional expression. Wnt inhibitor overexpression was verified using RNAseq, proteomic analysis, and immunoblotting. We found that GSC-DKK1 demonstrated significantly decreased cell migration (p< 0.005) and proliferation (p< 0.0001). We also found that CHIR99021 treated GSC-CM endothelial cells displayed decreased tight junctional proteins and increased fenestration protein expression (p< 0.0005), correlating with a more porous endothelium. Overall, our studies showed Wnt inhibitor overexpressing GSCs impaired glioma progression in vitro and indirectly disrupted endothelial cell integrity. Future studies will evaluate orthotopic Wnt inhibitor overexpressing transplant rodent models to assess changes in BBB integrity, drug permeability, model survival, and treatment response. Further understanding of the Wnt pathway in both GSCs and the BBB has the potential for improved central nervous system treatment penetration and prolonged disease response.
Objective: Perfusion models are valuable tools to mimic complex features of the tumor microenvironment and to study cell behavior. In ovarian cancer, mimicking disease pathology of ascites has been achieved by seeding tumor nodules on a basement membrane and subjecting them to long-term continuous flow. In this scenario it is particularly important to study the role of mechanical stress on cancer progression. Mechanical cues are already known to be important in key cancer processes such as survival, proliferation, and migration. However, probing cell mechanical properties within microfluidic platforms has not been achievable with current technologies since samples are not easily accessible within most microfluidic channels. Methods: Here, to analyze the mechanical properties of cells within a perfusion chamber, we use Brillouin confocal microscopy, an all-optical technique that requires no contact or perturbation to the sample. Results: Our results indicate that ovarian cancer nodules under long-term continuous flow have a significantly lower longitudinal modulus compared to nodules maintained in a static condition. Conclusion: We further dissect the role of distinct mechanical perturbations (e.g., shear flow, osmolality) on tumor nodule properties. Significance: In summary, the unique combination of a long-term microfluidic culture and noninvasive mechanical analysis technique provides insights on the effects of physical forces in ovarian cancer pathology.
Abstract BACKGROUND The blood-brain-barrier (BBB) is predominantly regulated by brain endothelial cells held together by junctional proteins. The BBB poses a significant hinderance to CNS drug entry of effective chemotherapy agents. Previous BBB studies have shown that disruption of tricellular and/or bicellular tight junctional proteins transiently increased CNS drug permeability. OBJECTIVE To evaluate the effect of drug proteins angubindin-1, C-CPE, and C-CPEmt on tight junction proteins angulin-1, claudin-3, and claudin 5, respectively, aimed at transiently enhancing BBB permeability and decreasing glioma growth. METHODS We evaluated junctional disruption with drug proteins, angubindin-1 (600µg/mL), C-CPE (200µg/mL), and C-CPEmt (200µg/mL) on rat brain endothelium. Endothelial junctional integrity studies were assessed by immunoblotting and cell-cell electrical impedance assays. Treatment effects on rat malignant glioma (S635) was measured via migration and rat glioma models. RESULTS Overall, we observed a time-dependent effect of drug proteins on junctional expression and function. Immunoblotting demonstrated a significant decrease (p< 0.05) in angulin-1 expression 5-hours after angubindin-1 treatment, while claudin-3 and claudin-5 expression barely decreased between 2 and 24-hours after C-CPE and C-CPEmt treatment, respectively. Cell-cell integrity was disrupted by 73%, 52%, and 69% compared with control, 3-hours after angubindin-1, C-CPE, and C-CPEmt treatment, respectively. Studies assessing qualitative junctional expression changes after drug proteins are ongoing. Gliomas cells expressed high angulin-1, and interestingly, migration was 50% decreased with angubindin-1 treatment, yet no migration changes were evident with C-CPE or C-CPEmt treatment. Rat glioma model studies evaluating liposomal doxorubicin combined with angubindin-1 are currently being explored to display effects on CNS drug concentrations, cytotoxicity, junctional expression, and survival. DISCUSSION Transient disruption of BBB tricellular junctions was seen with angubindin-1 treatment. Additionally, cell migration was hindered in angulin-1 overexpressing gliomas. These findings are promising and demonstrate the need for more combinational therapies aimed at increasing BBB permeability while also impairing glioma progression.
Cell volume is maintained by the balance of water and solutes across the cell membrane and plays an important role in mechanics and biochemical signaling in cells. Here, we assess the relationship between cell volume, mechanical properties, and E-cadherin expression in three-dimensional cultures for ovarian cancer. To determine the effect of water transport in multi-cellular tumors, ovarian cancer spheroids were subjected to hypotonic and hypertonic shock using water and sucrose mixtures, respectively. Increased osmolality resulted in decreased nucleus volume, increased Young’s modulus, and increased tumor cell density in ovarian cancer spheroids. Next, we looked at the reversibility of mechanics and morphology after 5 min of osmotic shock and found that spheroids had a robust ability to return to their original state. Finally, we quantified the size of E-cadherin clusters at cell-cell junctions and observed a significant increase in aggregate size following 30 min of hypertonic and hypotonic osmotic shocks. Yet, these effects were not apparent after 5 min of osmotic shock, illustrating a temporal difference between E-cadherin regulation and the immediate mechanical and morphology changes. Still, the osmotically induced E-cadherin aggregates which formed at the 30-minute timepoint was reversible when spheroids were replenished with isotonic medium. Altogether, this work demonstrated an important role of osmolality in transforming mechanical, morphology, and molecular states.
Ascites refers to the abnormal accumulation of fluid in the peritoneum resulting from an underlying pathology, such as metastatic cancer. Among all cancers, advanced-stage epithelial ovarian cancer is most frequently associated with the production of malignant ascites and is the leading cause of death from gynecologic malignancies. Despite decades of evidence showing that the accumulation of peritoneal fluid portends the poorest outcomes for cancer patients, the role of malignant ascites in promoting metastasis and therapy resistance remains poorly understood. This review summarizes the current understanding of malignant ascites, with a focus on ovarian cancer. The first section provides an overview of heterogeneity in ovarian cancer and the pathophysiology of malignant ascites. Next, analytical methods used to characterize the cellular and acellular components of malignant ascites, as well the role of these components in modulating cell biology, are discussed. The review then provides a perspective on the pressures and forces that tumors are subjected to in the presence of malignant ascites and the impact of physical stress on therapy resistance. Treatment options for malignant ascites, including surgical, pharmacological and photochemical interventions are then discussed to highlight challenges and opportunities at the interface of drug discovery, device development and physical sciences in oncology.
Biology uses diffusible oxidants to perform functions that range from signaling to matrix assembly, and these oxidation chemistries offer surprising selectivities. Here, it is reported that mediated electrochemistry can access the richness of such oxidation chemistries. Specifically, electrode‐imposed voltage inputs are used to locally generate oxidized mediators that can diffuse into polymer solutions and induce the formation of covalent bonds for the deposition and functionalization of hydrogels at the electrode surface. Depending on the mediator's redox potential ( E 0 ), it is possible to “gate” the voltage inputs to target specific residues (e.g., thiols or amines) and oxidation chemistries. Further, mediators of varying E 0 offer different reactivities and thus allow control of reaction‐diffusion rates to modulate the hydrogel's crosslink density and mechanical properties. Importantly, this mediated oxidation can be performed under physiologically relevant conditions to preserve labile biological functionalities (e.g., cell viability and protein function). Finally, it is demonstrated that protein fusion tags can be engineered to have “targetable” amino acid residues that enable protein function to be oxidatively conjugated to electrodeposited hydrogels. In summary, mediated electrochemistry can engage orthogonal oxidation chemistries to create functionalized matrices and thus mediated electrochemistry should add important capabilities to the electrofabrication toolbox.
A key reason for the persistently grim statistics associated with metastatic ovarian cancer is resistance to conventional agents, including platinum-based chemotherapies. A major source of treatment failure is the high degree of genetic and molecular heterogeneity, which results from significant underlying genomic instability, as well as stromal and physical cues in the microenvironment. Ovarian cancer commonly disseminates via transcoelomic routes to distant sites, which is associated with the frequent production of malignant ascites, as well as the poorest prognosis. In addition to providing a cell and protein-rich environment for cancer growth and progression, ascitic fluid also confers physical stress on tumors. An understudied area in ovarian cancer research is the impact of fluid shear stress on treatment failure. Here, we investigate the effect of fluid shear stress on response to platinum-based chemotherapy and the modulation of molecular pathways associated with aggressive disease in a perfusion model for adherent 3D ovarian cancer nodules. Resistance to carboplatin is observed under flow with a concomitant increase in the expression and activation of the epidermal growth factor receptor (EGFR) as well as downstream signaling members mitogen-activated protein kinase/extracellular signal-regulated kinase (MEK) and extracellular signal-regulated kinase (ERK). The uptake of platinum by the 3D ovarian cancer nodules was significantly higher in flow cultures compared to static cultures. A downregulation of phospho-focal adhesion kinase (p-FAK), vinculin, and phospho-paxillin was observed following carboplatin treatment in both flow and static cultures. Interestingly, low-dose anti-EGFR photoimmunotherapy (PIT), a targeted photochemical modality, was found to be equally effective in ovarian tumors grown under flow and static conditions. These findings highlight the need to further develop PIT-based combinations that target the EGFR, and sensitize ovarian cancers to chemotherapy in the context of flow-induced shear stress.
The mechanical interaction between cells and their microenvironment is emerging as an important determinant of cancer progression and sensitivity to treatment, including in ovarian cancer (OvCa). However, current technologies limit mechanical analysis in 3D culture systems. Brillouin Confocal Microscopy is an optical non-contact method to assess the mechanical properties of biological materials. Here, we validate the ability of this technology to assess the mechanical properties of 3D tumor nodules. OvCa cells were cultured in 3D using two established methods: (1) overlay cultures on Matrigel; (2) spheroids in ultra-low attachment plates. To alter the mechanical state of these tumors, nodules were immersed in PBS with varying levels of sucrose to induce osmotic stress. Next, nodule mechanical properties were measured by Brillouin microscopy and validated with standard stress–strain tests: Atomic Force Microscopy (AFM) and a parallel plate compression device (Microsquisher). Finally, the nodules were treated with a chemotherapeutic commonly used to manage OvCa, carboplatin, to determine treatment-induced effects on tumor mechanical properties. Brillouin microscopy allows mechanical analysis with limited penetration depth (~ 92 µm for Matrigel method; ~ 54 µm for low attachment method). Brillouin microscopy metrics displayed the same trends as the corresponding “gold-standard” Young’s moduli measured with stress–strain methods when the osmolality of the medium was increased. Nodules treated with carboplatin showed a decrease in Brillouin frequency shift. This validation study paves the way to evaluate the mechanics of 3D nodules, with micron-scale three-dimensional resolution and without contact, thus extending the experimental possibilities.
Simple plant cell morphologies, such as cylindrical shoot cells, are determined by the extensibility pattern of the primary cell wall, which is thought to be largely dominated by cellulose microfibrils, but the mechanism leading to more complex shapes, such as the interdigitated patterns in the epidermis of many eudicotyledon leaves, is much less well understood. Details about the manner in which cell wall polymers at the periclinal wall regulate the morphogenetic process in epidermal pavement cells and mechanistic information about the initial steps leading to the characteristic undulations in the cell borders are elusive. Here, we used genetics and recently developed cell mechanical and imaging methods to study the impact of the spatio-temporal dynamics of cellulose and homogalacturonan pectin distribution during lobe formation in the epidermal pavement cells of Arabidopsis (Arabidopsis thaliana) cotyledons. We show that nonuniform distribution of cellulose microfibrils and demethylated pectin coincides with spatial differences in cell wall stiffness but may intervene at different developmental stages. We also show that lobe period can be reduced when demethyl-esterification of pectins increases under conditions of reduced cellulose crystallinity. Our data suggest that lobe initiation involves a modulation of cell wall stiffness through local enrichment in demethylated pectin, whereas subsequent increase in lobe amplitude is mediated by the stress-induced deposition of aligned cellulose microfibrils. Our results reveal a key role of noncellulosic polymers in the biomechanical regulation of cell morphogenesis.
A range of cellular, architectural, and physical cues in the tumor microenvironment influence the intrinsic and acquired resistance mechanisms that lead to treatment failure. Strategies that leverage photodynamic therapy (PDT), a photochemistry-based biophysical treatment modality, to regionally target and prime stubborn tumor populations may be essential to realizing durable improvements in cancer management while minimizing toxicity from traditional agents. Capturing these attributes in rationally-designed combinations has shown promise by synergistically reducing tumor area in 3D models, and durably controlling tumor burden in vivo. Among the areas that remain understudied is the influence of mechanical forces, such as hydrodynamic shear stress, on resistance, and the development of 3D tumor models and in vivo models that account for physical stress. To evaluate and optimize PDT regimens, and PDT-based combinations, designed to overcome resistance to conventional therapies due to physical stress, a multi-faceted approach is needed. Here the impact of hydrodynamic stress is evaluated in bioengineered 3D tumor models in the context of ovarian cancer. The potential value of using biologically inspired in vitro models to guide customized, rationally-designed PDT-based combination regimens will be presented.
In the past decades, there has been increased awareness that mechanical properties of tissues and cells are closely associated with disease physiology and pathology. Recognizing this importance, Brillouin spectroscopy instrumentation, already utilized in physics and material science, has been adopted for cell and tissue biomechanics. For biomedical applications, progress of Brillouin spectrometer technology has been crucial, mainly improvement in the acquisition speed and combination with confocal microscopy, to enable measurement of material longitudinal modulus in three dimensions with high spatial resolution. Micron spatial resolution and high sensitivity allow mapping intracellular modulus and distinguishing between nuclear and cytoplasmic mechanical properties as well as detecting changes due to perturbations of individual cellular components. In cancer, environmental mechanical factors and intracellular mechanics are expected to play an integral role in cancer progression and treatment success. Brillouin confocal microscopy is appealing for many studies in cancer mechanobiology involving both primary tumors and metastatic dissemination. Specifically, Brillouin technology is suitable for experimental scenarios where noncontact mechanical measurements are required such as 3D tumor models, interactions with the extracellular matrix (ECM), investigation of nuclear mechanical properties, or analysis of cells within microfluidic chips.