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Biology subjects

Mirazi, H.

Publications and source records attributed to Mirazi, H..

2 recordsLinked to original sources

Microfluidic Osteoarthritis-on-a-Chip: Modeling Human Joint Inflammation

Osteoarthritis (OA) is a multifactorial joint disease driven by complex interactions among chondrocytes, osteoblasts, fibroblasts, and immune cells across cartilage, bone, and synovial tissues. Conventional monoculture systems are unable to capture this crosstalk, limiting their physiological relevance. Building on our previously established joint-on-a-chip platform, this study evaluated multicellular communication and assessed whether a microfluidic co-culture provides a more realistic representation of joint inflammation compared with monoculture models. Two configurations were established: a healthy, low-inflammation model containing M0 macrophages and an OA-like, high-inflammation model with M1 macrophages. In healthy models, co-culture significantly increased MMP-1 ([~]4-fold), MMP-3 ([~]15-fold), TIMP-2 ([~]5-fold), IL-6 ([~]6-fold), and IL-8 ([~]5-fold) relative to monoculture, indicating that endogenous signaling initiates basal matrix remodeling and inflammatory pathways. In disease models, M1-driven co-culture elevated MMP-10 ([~]300-fold) and MMP-13 ([~]60-fold), along with TIMP-2 ([~]5-fold), compared with monoculture, reflecting amplified catabolic activation. Direct comparison of disease versus healthy co-culture revealed additional increases in MMP-10 ([~]55-fold), MMP-13 ([~]95-fold), MCP-1 ([~]1.6-fold), MMP-1 ([~]1.6-fold), MMP-3 ([~]1.8-fold), TIMP-1 ([~]1.4-fold), and TIMP-2 ([~]1.5-fold), representing a macrophage-mediated shift from homeostasis to OA-like pathology. However, neither IL-1 nor TNF, each a key inflammatory mediator of OA, differed measurably between healthy and disease models under either monoculture or co-culture conditions. Thus, the microfluidic joint inflammation-on-a-chip model presented here more faithfully recapitulates the pathogenic MMP profile of OA than monoculture systems, but it does not yet fully recapitulate the pathogenic inflammatory environment of OA.

cell biology↗

Microfluidic Co-Culture for Modeling Human Joint Inflammation in Osteoarthritis Research

Here we present a microfluidic model that allows for co-culture of human osteoblasts, chondrocytes, fibroblasts, and macrophages of both quiescent (M0) and pro-inflammatory (M1) phenotypes, maintaining initial viability of each cell type at 24 h of co-culture. We established healthy (M0-based) and diseased (M1-based) joint models within this system. An established disease model based on supplementation of IFN-{gamma} and LPS in cell culture media was used to induce an M1 phenotype in macrophages to recapitulate inflammatory conditions found in OA. Cell viability was assessed using NucBlue Live and NucGreen Dead fluorescent stains, with mean viability of 83.9% {+/-} 14% and 83.3% {+/-} 12% for healthy and diseased models, respectively, compared with 93.3% {+/-} 4% for cell in standard monoculture conditions. Cytotoxicity was assessed via a lactate dehydrogenase (LDH) assay and showed no measurable increase in LDH release into the culture medium under co-culture conditions, indicating that neither model promotes a loss of cell membrane integrity due to cytotoxic effects. Cellular metabolic activity was assessed using a PrestoBlue assay and indicated increased cellular metabolic activity in co-culture, with levels 5.9 {+/-} 3.2 times mean monolayer cell metabolic activity levels in the healthy joint model and 5.3 {+/-} 3.4 times mean monolayer levels in the diseased model. Overall, these findings indicate that the multi-tissue nature of in vivo human joint conditions can be recapitulated by our microfluidic co-culture system at 24 h and thus this model serves as a promising tool for studying the pathophysiology of rheumatic diseases and testing potential therapeutics.

bioengineering↗