New targets for cancer treatment frequently emerge in literature, but the thorough target validation required to consider these targets for a drug discovery program is often lacking. In pharmacological or genetic perturbation studies using complex biological assays, undesired off-target effects cannot be easily distinguished from the intended mode of action at the desired target. This is especially evident in cancer drug development where it is important to discriminate on-target effects on cell viability from off-target effects resulting in non-specific loss of cellular fitness. Neglecting the possibility of being deceived by off-target effects can have tremendous scientific and financial impact on a drug discovery program. Ideally, confidence in a preclinical drug target and a modulating compound is boosted in an early stage by more extensive analysis and validation of the actual drug-target relationship. Rescue of a disease-relevant phenotype by genetic restoration of a target mutation is a gold standard approach in drug discovery by which target validation can be achieved. We aim to follow this approach targeting the BRAF V600E mutation in a number of well described melanoma lines as well as the MAP2K1 Q56P mutation in the non-small cell lung cancer cell line H1437. Target validation for both BRAF and MAP2K1 will be addressed by assessing viability, phenotypic changes and sensitivity to compound modulation upon CRISPR/Cas9 repair of the target mutation or by exogenous re-expression of the wild type variant. Compounds tested will be Vemurafenib for BRAF and Trametinib for MAP2K1. Further investigation into target validity will be done using a physiologically relevant 3D spheroid based co-culture system. Mimicking the tumor microenvironment increases the knowledge about “drug-ability” of a target and sustainability of the target modulation at an early time point in the development process. Such early in-depth validation of the relationship between a compound and the drug target is vital to mitigate the risk of failure at later steps of drug development. Citation Format: Laure Grandmoursel, Lieke Geerts, Geraldine Servant, Miranda van der Ham, Armin Maier, Jamil Aarbiou, Marijn Vlaming, Jeroen DeGroot, Julia Schuler, Ian Waddell, Anne-Marie Zuurmond. Validation of the interaction between a candidate compound and the intended drug target by a phenotypic rescue approach [abstract]. In: Proceedings of the AACR-NCI-EORTC International Conference on Molecular Targets and Cancer Therapeutics; 2019 Oct 26-30; Boston, MA. Philadelphia (PA): AACR; Mol Cancer Ther 2019;18(12 Suppl):Abstract nr C021. doi:10.1158/1535-7163.TARG-19-C021
Systemic sclerosis (SSc or scleroderma) is an auto-immune disease characterized by skin fibrosis. While primary cells from patients are considered as a unique resource to better understand human disease biology, the effect of in vitro culture on these cells and their evaluation as a platform to identify disease regulators remain poorly characterized. The goal of our studies was to provide insights into the utility of SSc dermal fibroblast primary cells for therapeutic target discovery. The disease phenotypes of freshly isolated and in vitr o cultured SSc dermal fibroblasts were characterized using whole transcriptome profiling, alpha smooth muscle actin (ASMA) expression and cell impedance. SSc dermal fibroblasts retained most of the molecular disease phenotype upon in vitro culture for at least four cell culture passages (approximatively 10 cell doublings). We validated an RNA interference high throughput assay that successfully identified genes affecting the myofibroblast phenotype of SSc skin fibroblasts. These genes included MKL1 , RHOA and LOXL2 that were previously proposed as therapeutic anti-fibrotic target, and ITGA5 , that has been less studied in fibrosis biology and may be a novel potential modifier of SSc fibroblast biology. Together our results demonstrated the value of carefully-phenotyped SSc dermal fibroblasts as a platform for SSc target and drug discovery.
Antimicrobial proteins and peptides (AMPs) are a central component of the antibacterial activity of airway epithelial cells. It has been proposed that a decrease in antibacterial lung defense contributes to an increased susceptibility to microbial infection in smokers and patients with chronic obstructive pulmonary disease (COPD). However, whether reduced AMP expression in the epithelium contributes to this lower defense is largely unknown. We investigated the bacterial killing activity and expression of AMPs by air-liquid interface-cultured primary bronchial epithelial cells from COPD patients and non-COPD (ex-)smokers that were stimulated with nontypeable Haemophilus influenzae (NTHi). In addition, the effect of cigarette smoke on AMP expression and the activation of signaling pathways was determined. COPD cell cultures displayed reduced antibacterial activity, whereas smoke exposure suppressed the NTHi-induced expression of AMPs and further increased IL-8 expression in COPD and non-COPD cultures. Moreover, smoke exposure impaired NTHi-induced activation of NF-κB, but not MAP-kinase signaling. Our findings demonstrate that the antibacterial activity of cultured airway epithelial cells induced by acute bacterial exposure was reduced in COPD and suppressed by cigarette smoke, whereas inflammatory responses persisted. These findings help to explain the imbalance between protective antibacterial and destructive inflammatory innate immune responses in COPD.
Background Systemic sclerosis (SSc) is an autoimmune disease characterised by fibrosis of skin and multiple organs of which pathogenesis is poorly understood. Here we studied differentially expressed coding and non-coding genes in relation to SSc pathogenesis with a specific focus on antisense non-coding RNAs. Materials and methods Skin biopsy-derived RNAs from fourteen early SSc patients and six healthy individuals were sequenced with ion-torrent and analysed using DEseq2. Protein-coding and non-coding genes annotated in GENCODEV7 were analysed. Significant long non-coding RNAs were independently replicated in a Northern American dataset. Results 4901 genes with a fold change >1.5 and a false discovery rate of less than 5% were detected in patients versus controls. Upregulated coding genes clustered in immunological, cell adhesion and keratin-related processes as previously found by microarray studies. Interestingly, 676 deregulated non-coding genes were detected, 257 of which were classified as antisense genes. 42% of these antisense genes had a concurrent deregulated sense gene. The majority of the sense-antisense genes had a similar effect sizes in an independent North American dataset with three genes (OTUD6B-AS1, CTBP1-AS2 and HMGN3-AS1) exceeding the study-wide Bonferroni-corrected ρ-value (PBonf <0.0024, Pcombined=1.6×10-9, 1.7 × 10–6, 2.6 × 10–6, respectively). Intriguingly, the correlation of sense-antisense gene pairs deregulated in SSc is stronger than sense-antisense gene pairs not deregulated in SSc (p<0.001). Conclusions For the first time we highlight that together with coding genes, (antisense) long noncoding RNAs are deregulated in skin tissue of SSc patients suggesting a novel class of genes involved in pathogenesis of SSc.
Systemic sclerosis is an autoimmune disease characterized by fibrosis of skin and multiple organs of which the pathogenesis is poorly understood. We studied differentially expressed coding and non-coding genes in relation to systemic sclerosis pathogenesis with a specific focus on antisense non-coding RNAs. Skin biopsy-derived RNAs from 14 early systemic sclerosis patients and six healthy individuals were sequenced with ion-torrent and analyzed using DEseq2. Overall, 4,901 genes with a fold change >1.5 and a false discovery rate <5% were detected in patients versus controls. Upregulated genes clustered in immunologic, cell adhesion, and keratin-related processes. Interestingly, 676 deregulated non-coding genes were detected, 257 of which were classified as antisense genes. Sense genes expressed opposite of these antisense genes were also deregulated in 42% of the observed sense-antisense gene pairs. The majority of the antisense genes had a similar effect sizes in an independent North American dataset with three genes (CTBP1-AS2, OTUD6B-AS1, and AGAP2-AS1) exceeding the study-wide Bonferroni-corrected P-value (PBonf < 0.0023, Pcombined = 1.1 × 10-9, 1.4 × 10-8, 1.7 × 10-6, respectively). In this study, we highlight that together with coding genes, (antisense) long non-coding RNAs are deregulated in skin tissue of systemic sclerosis patients suggesting a novel class of genes involved in pathogenesis of systemic sclerosis.
ObjectivesType 1 Diabetes is characterized by progressive autoimmune destruction of pancreatic β‐cells. The aim of this study was to assess whether extensively hydrolyzed casein might interfere with the release of pro‐inflammatory cytokines by immune cells and whether it might preserve β‐cell function in vitro.MethodsMurine and human immune cells were pre‐incubated with specific hydrolyzed casein and fractions thereof for 1‐hour followed by activation of the cells with LPS or CD40. Cytokine secretion was measured after 24 hours. Furthermore, effects of the hydrolysate on insulin secretion by β‐cells were assessed.ResultsPro‐inflammatory cytokine secretion from murine macrophages was decreased by the hydrolysate and fractions thereof. Similarly, dose‐dependent inhibition of pro‐inflammatory cytokine responses was confirmed using human primary dendritic cells and macrophages. Finally, specific hydrolysate fractions that exerted anti‐inflammatory effects also significantly promoted insulin secretion from β‐cells following exposure to IL‐1β, IFN‐γ or IL‐23. Not all hydrolysate fractions showed these activities, highlighting the potential specificity of certain hydrolysate preparations.ConclusionExtensively hydrolyzed casein and some specific fractions display dual functionality; they can exert anti‐inflammatory effects on cells of the immune system and rescue insulin secretion impaired by inflammatory activity. These mechanisms may contribute to a potential preventive effect in the development of inflammatory diseases.
Human metapneumovirus (HMPV) encodes a small hydrophobic (SH) protein of unknown function. HMPV from which the SH open reading frame was deleted (HMPVΔSH) was viable and displayed similar replication kinetics, cytopathic effect and plaque size compared with wild type HMPV in several cell-lines. In addition, no differences were observed in infection efficiency or cell-to-cell spreading in human primary bronchial epithelial cells (HPBEC) cultured at an air-liquid interphase. Host gene expression was analyzed in A549 cells infected with HMPV or HMPVΔSH using microarrays and mass spectrometry (MS) based techniques at multiple time points post infection. Only minor differences were observed in mRNA or protein expression levels. A possible function of HMPV SH as apoptosis blocker, as proposed for several members of the family Paramyxoviridae, was rejected based on this analysis. So far, a clear phenotype of HMPV SH deletion mutants in vitro at the virus and host levels is absent.
Pathogenic mechanisms involved in fibrosis of various organs share many common features. Myofibroblasts are thought to play a major role in fibrosis through excessive deposition of extracellular matrix during wound healing processes. Myofibroblasts are observed in fibrotic lesions, and whereas these derive from the hepatic stellate cells in liver, in lung they appear to originate from fibroblasts. The source of these fibroblasts has been the object of numerous studies over the recent years and points towards multiple sources. First of all, resident fibroblasts are thought to differentiate into the more contractile myofibroblasts, secreting many extracellular matrix proteins. Secondly, the epithelial to mesenchymal transition (EMT) of epithelial cells may also account for increased numbers of fibroblasts, though in vivo evidence in patient tissue is still scarce. Thirdly, the enigmatic fibrocytes, stemming from the bone marrow, may also account for increasing numbers of fibroblasts in fibrotic lesions. These pathogenic processes are further augmented by the generation of so-called alternatively activated macrophages, which have direct and indirect effects on myofibroblast accumulation and collagen deposition. TGFβ, which is produced predominantly by macrophages, plays a central role in all these processes by inducing EMT, driving differentiation of fibrocytes, and differentiation towards myofibroblasts. This review describes the potential origins and roles of these fibrotic cells in the lung and discusses models to study these cells in vitro. These models offer innovative approaches in target and drug discovery, aiming to uncover novel therapeutic targets that regulate the profibrotic phenotype of these cells.
Background Epithelial sodium channel (ENaC) hyperactivity has been implicated in the pathogenesis of cystic fibrosis (CF) by dysregulation of fluid and electrolytes in the airways. In the present study, we show proof-of-principle for ENaC inhibition by lentiviral-mediated RNA interference.Methods Immortalized normal (H441) and CF mutant (CFBE) airway cells, and differentiated human bronchial epithelial cells in air liquid interface culture (HBEC-ALI) were transduced with a vesicular stomatitis virus G glycoprotein pseudotyped lentiviral (LV) vector expressing a short hairpin RNA (shRNA) targeting the alpha subunit of ENaC (ENaC alpha), and a marker gene. Efficacy of ENaC alpha down-regulation was assayed by the real-time polymerase chain reaction (PCR), membrane potential assay, western blotting, short-circuit currents and fluid absorption. Off-target effects were investigated by a lab-on-a-chip quantitative PCR array.Results Transduction to near one hundred percentage efficiency of H441, CFBE and HBEC-ALI was achieved by the addition of the LV vector before differentiation and polarization. Transduction resulted in the inhibition of ENaC alpha mRNA and antigen expression, and a proportional decrease in ENaC-dependent short circuit current and fluid transport. No effect on transepithelial resistance or cAMP-induced secretion responses was observed in HBEC-ALI. The production of interferon alpha and pro-inflammatory cytokine mRNA, indicating Toll-like receptor 3 or RNA-induced silencing complex mediated off-target effects, was not observed in HBEC-ALI transduced with this vector.Conclusions We have established a generic method for studying the effect of RNA interference in HBEC-ALI using standard lentiviral vectors. Down-regulation of ENaC alpha by lentiviral shRNA expression vectors as shown in the absence off-target effects has potential therapeutic value in the treatment of cystic fibrosis. Copyright (C) 2012 John Wiley & Sons, Ltd.
Genetically modified mice have been studied for more than fifteen years as models of cystic fibrosis (CF). The large amount of experimental data generated illuminates the complex multi-organ pathology of CF and raises new questions relevant to human disease. CF mice have also been used to test experimental therapies prior to clinical trials. This review recapitulates the major phenotypic traits of CF mice and highlights important new findings including aberrant alveolar macrophages, bone and cartilage abnormalities and abnormal bioactive lipid metabolism. Novel data are presented on the intestinal and nasal physiology of F508del-CFTR CF mice backcrossed onto different genetic backgrounds. Caveats, and sources of variability including age, gender and animal husbandry, are discussed. Interspecies differences limit comparison of lung pathology in CF mice to the human disease. The recent development of genetically modified pigs and ferrets heralds the application of more advanced animal models to CF research and drug development.