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Biology subjects

Overboom, M. C.

Publications and source records attributed to Overboom, M. C..

3 recordsLinked to original sources

Marfan Patient iPSC-Derived Endothelial Cells Carrying FBN1 Variants Reveal Endothelial Dysfunction

Marfan syndrome (MFS) is an inherited connective tissue disorder caused by pathogenic variants in FBN1, encoding fibrillin-1, with life-threatening aortic complications arising in part from endothelial cell (EC) dysfunction. To study this in a human model, we generated hiPSC-derived ECs from three MFS patients (iMFS-ECs). We show that iMFS-ECs recapitulate known disease phenotypes, including impaired alignment in the direction of flow. Moreover, we found that iMFS-ECs do not recover from TNF--induced loss of barrier integrity, due to sustained EC contractility. iMFS-ECs exhibited TNF--induced ICAM1 upregulation and NF-{kappa}B activation comparable to healthy donor-derived hiPSC-ECs by bulk RNA-seq, while expression of genes linked to cytoskeletal arrangements, cell signaling and ECM remodeling were dysregulated. In conclusion, we show that hiPSC derived ECs can serve as a model to investigate MFS pathology. These findings establish a human iPSC platform for MFS endothelial research and suggest impaired inflammatory resolution as a novel therapeutic target.

cell biology↗

Vessel-on-Chip Model Of The Microcirculation In Abdominal Aortic Aneurysms

Abdominal aortic aneurysms (AAA) are pathological dilations of the abdominal aorta. To date, surgical intervention is the only option for managing large AAAs, with no pharmacological therapies to prevent growth of small aneurysms. A current limitation in investigating further pharmacological avenues is the translatability of results from animal models, or from patient trials that are limited by co-morbidities and disease severity. To bridge this knowledge gap, we created a novel, patient-specific vessel-on-chip (VoC) model of the microcirculation in AAA (AAA-VoC). We found that co-culture of both C (control)-VSMCs and AAA-patient derived VSMCs with healthy, hiPSC-derived ECs generate lumenized and perfusable microvascular networks. We show that AAA-VoCs are characterized by an enlarged average vascular diameter. We furthermore found that AAA-VSMCs show phenotypical deviations from C- VSMCs after 7 days in co-culture such as increased number and surface area, indicative of a preserved pathological phenotype in our in vitro model. Lastly, we demonstrate that AAA-VoCs showed an increased level of pro-inflammatory cytokine expression over C-VoCs and displayed an impaired endothelial barrier function, resulting in vascular leakage. With this study, we show that AAA-VSMCs affect microvascular networks formed by healthy hiPSC-ECs and that a AAA phenotype is preserved in 3D co-culture, making this model valuable for future studies investigating treatments for AAA.

cell biology↗

Rapid proteostasis controls monolayer integrity of quiescent endothelium

Endothelial monolayer permeability is regulated by actin dynamics and vesicular traffic. Recently, ubiquitination was also implicated in the integrity of quiescent endothelium, as it differentially controls the localization and stability of adhesion- and signaling proteins. We found that inhibition of E1 ubiquitin ligases induces a rapid, reversible loss of integrity in quiescent, primary human endothelial monolayers, accompanied by increased F-actin stress fibers and the formation of intercellular gaps. Concomitantly, total protein and activity of the actin-regulating GTPase RhoB, but not its close homologue RhoA, increase [~]10-fold in 5-8 h. The depletion of RhoB, but not of RhoA, the inhibition of actin contractility and the inhibition of protein synthesis all significantly rescue the loss of cell-cell contact induced by E1 ligase inhibition. Our data suggest that in quiescent human endothelial cells, the continuous and fast turnover of short-lived proteins that negatively regulate cell-cell contact, is essential to preserve monolayer integrity.

molecular biology↗