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Medam, R.

Publications and source records attributed to Medam, R..

2 recordsLinked to original sources

Disease Modifying Osteoarthritis Drug Discovery Using A Temporal Phenotypic Reporter In Primary Human Chondrocytes

Osteoarthritis is a significant and growing problem with no disease modifying drugs in the clinic. Current screening platforms typically use 2D culture, immortalized or non-human cells in a hyperoxic environment. To challenge this paradigm and identify new drugs, we engineered primary human chondrocytes with a secreted luciferase reporter under the control of the articular cartilage marker, type II collagen. We then successfully screened a natural product library using a high throughput model with COL2A1-Gaussia luciferase primary human chondrocyte reporter cells in 3D aggregates under physioxia. We identified several candidate compounds that increased type II collagen over controls, with aromoline being the best candidate. Aromoline is a bisbenzylisoquinoline alkaloid that has been studied for its anti-proliferative, anti-inflammatory, and anti-microbial properties, and we are the first to explore its effects on chondrocytes and chondrogenesis. In silico analysis of predicted targets narrowed by RNA-Seq data on expression provided an unexpected initial candidate target protein: the dopamine receptor D4 (DRD4). The researchers confirmed upregulation in the expression of DRD4 and type II collagen after treatment with aromoline. This novel approach combining in silico and in vitro methods provides a platform for drug discovery in a challenging and under-researched area. In conclusion, a novel drug (aromoline) and target receptor (dopamine receptor D4) were identified as stimulating type II collagen, with the goal to treat or prevent osteoarthritis.

pharmacology and toxicology↗

Micronutrient Optimization Using Design of Experiments Approach in Tissue Engineered Articular Cartilage for Production of Type II Collagen

Tissue Engineering of cartilage has been hampered by the inability of engineered tissue to express native levels of type II collagen in vitro. Inadequate levels of type II collagen are, in part, due to a failure to recapitulate the physiological environment in culture. In this study, we engineered primary rabbit chondrocytes to express a secreted reporter, Gaussia Luciferase, driven by the type II collagen promoter, and applied a Design of Experiments approach to assess chondrogenic differentiation in micronutrient-supplemented medium. Using a Response Surface Model, 240 combinations of micronutrients absent in standard chondrogenic differentiation medium, were screened and assessed for type II collagen expression. Five conditions predicted to produce the greatest Luciferase expression were selected for further study. Validation of these conditions in 3D aggregates identified an optimal condition for type II collagen expression. Engineered cartilage grown in this condition, showed a 170% increase in type II collagen expression (Day 22 Luminescence) and in Youngs tensile modulus compared to engineered cartilage in basal media alone. Collagen cross-linking analysis confirmed formation of type II-type : II collagen and type II-type : IX collagen cross-linked heteropolymeric fibrils, characteristic of mature native cartilage. Combining a Design of Experiments approach and secreted reporter cells in 3D aggregate culture enabled a high-throughput platform that can be used to identify more optimal physiological culture parameters for chondrogenesis.

cell biology↗