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Biology subjects

Linares, I.

Publications and source records attributed to Linares, I..

3 recordsLinked to original sources

A human synovial tendon-on-a-chip models key features of peritendinous adhesions and offers a new approach methodology for testing anti-fibrotic drugs

Peritendinous adhesions are a debilitating complication of tendon injury characterized by excessive matrix deposition and chronic inflammation. Due to limitations of current preclinical models, the underlying mechanisms of adhesion pathogenesis remain poorly defined, and there are no approved drugs to prevent or resolve adhesions. Here, we develop a human synovial tendon-on-a-chip (synToC) that integrates synovial fibroblasts, tendon-resident fibroblasts, immune cells, and vascular endothelium to reconstruct the intrasynovial tendon microenvironment. We show that synovial fibroblast activation promoted tendon contraction and inflammatory cytokine secretion dominated by IL-6, leading to monocyte infiltration and formation of fibronectin- and collagen III-rich matrix bridges between tendon and synovial compartments resembling nascent peritendinous adhesions. These phenotypes emerged even in the absence of exogenous TGF-{beta}1, indicating that synovial fibroblast-mediated crosstalk is sufficient to initiate adhesion-like pathology. Importantly, pharmacological inhibition of the IL-6/JAK/STAT pathway suppressed synovial activation, blunted inflammatory cytokine signaling, and attenuated fibrotic matrix deposition and interfacial adhesion formation. These findings establish the synToC as a human-relevant new approach methodology (NAM) to interrogate the multicellular drivers of tendon adhesions and to accelerate the development of anti-fibrotic therapies.

bioengineering↗

Correlation between DNA double strand breaks and cell death in peripheral blood lymphocytes from breast cancer patients

Radiotherapy is an effective treatment to fight cancer. However, it not only affects cancer cells but also healthy tissues, causing side effects. Different factors can influence the appearance of radiotoxicity, like total dose administered or patient individual characteristics, such as genetic variability. Several biomarkers have been proposed to predict radiotoxicity, especially those based on apoptosis or DNA damage, for example {gamma}-H2AX, which correlates with DNA double strand breaks. Our purpose is to analyze how apoptosis and {gamma}-H2AX correlate to each other and to link these results with selected SNPs associated with apoptosis. Blood samples from 60 breast cancer patients in remission were recruited. After mononucleated cells isolation, samples were irradiated. Then, we assessed induction and kinetics of disappearance of {gamma}-H2AX at different times after 2-Gy irradiation and apoptosis induced 24 and 48 h after 8-Gy irradiation. A negative correlation was observed between basal and residual {gamma}-H2AX and apoptosis at 48 h post-irradiation. This result supports previous studies with cancer patients showing a negative correlation between these two biomarkers. Considering the high variability of radio-induced apoptosis, we performed a genotyping study. Two SNPs located at TP53 and FAS genes were associated with apoptosis. Overall, our results indicate that individuals with less efficiency in removing damaged cells, probably due to genetic polymorphisms, presented more basal and residual levels of DNA damage.

cell biology↗

Fluid Flow Impacts Endothelial-Monocyte Interactions in a Model of Vascular Inflammatory Fibrosis

The aberrant vascular response associated with tendon injury results in circulating immune cell infiltration and a chronic inflammatory feedback loop leading to poor healing outcomes. Studying this dysregulated tendon repair response in human pathophysiology has been historically challenging due to the reliance on animal models. To address this, our group developed the human tendon-on-a-chip (hToC) to model cellular interactions in the injured tendon microenvironment; however, this model lacked the key element of physiological flow in the vascular compartment. Here, we leveraged the modularity of our platform to create a fluidic hToC that enables the study of circulating immune cell and vascular crosstalk in a tendon injury model. Under physiological shear stress consistent with postcapillary venules, we found a significant increase in the endothelial leukocyte activation marker intercellular adhesion molecule 1 (ICAM-1), as well as enhanced adhesion and transmigration of circulating monocytes across the endothelial barrier. The addition of tissue macrophages to the tendon compartment further increased the degree of circulating monocyte infiltration into the tissue matrix. Our findings demonstrate the importance of adding physiological flow to the human tendon-on-a-chip, and more generally, the significance of flow for modeling immune cell interactions in tissue inflammation and disease.

bioengineering↗