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Parigoris, E.

Publications and source records attributed to Parigoris, E..

2 recordsLinked to original sources

Stably-Inverted Apical-Out Human Upper Airway Organoids for SARS-CoV-2 Infection and Therapeutic Testing

While breakthroughs with organoids have emerged as next-generation in vitro tools, standardization for drug discovery remains a challenge. This work introduces human airway organoids with reversed biopolarity (AORBs), cultured and analyzed in a high-throughput, single-organoid-per-well format, enabling milestones towards standardization. AORBs exhibit a spatio-temporally stable apical-out morphology, facilitating high-yield direct intact-organoid virus infection. Single-cell RNA sequencing and immunohistochemistry confirm the physiologically relevant recapitulation of differentiated human airway epithelia. The cellular tropism of five severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) strains along with host response differences between Delta, Washington, and Omicron variants, as observed in transcriptomic profiles, also suggest clinical relevance. Dose-response analysis of three well-studied SARS-CoV-2 antiviral compounds (remdesivir, bemnifosbuvir, and nirmatrelvir) demonstrates that AORBs efficiently predict human efficacy, comparable to gold-standard air-liquid interface cultures, but with higher throughput ([~]10-fold) and fewer cells ([~]100-fold). This combination of throughput and relevance allows AORBs to robustly detect false negative results in efficacy, preventing irretrievable loss of promising lead compounds. While this work leverages the SARS-CoV-2 study as a proof-of-concept application, the standardization capacity of AORB holds broader implications in line with regulatory efforts to push alternatives to animal studies.

bioengineering↗

Extended longevity geometrically-inverted proximal tubule organoids for protein uptake studies

While some in vitro platforms have been adapted to study proteinuric kidney disease, organoids have been challenging to study the disease. This is because apical access is historically difficult, and this is the surface on which megalin (LRP2), an endocytic receptor responsible for tubular reabsorption of filtered plasma proteins, resides. Based on our previous geometrically-inverted organoids, this study established high-throughput basal-in and apical-out proximal tubule organoids to study proteinuric kidney disease in a more physiologically consistent manner. Organoids successfully formed around a minimal Matrigel scaffold, and were maintained in culture for 90+ days, the longest reported hanging drop culture to date. The proximal tubule organoids exhibited good polarization, showed upregulation of maturity markers, such as aquaporin-1 and megalin, and experienced less epithelial-to-mesenchymal (EMT) transition compared to 2D cells. To assess protein uptake, fluorescent albumin was placed in the surrounding media, facing the apical surface, and organoids demonstrated functional protein uptake even at 90 days. To mimic proteinuric conditions, organoids were exposed to human serum albumin and released kidney injury molecule-1 (KIM-1), a common biomarker for kidney injury, in both dose- and time-dependent manners. While this study focuses on applications for modeling proteinuric kidney disease conditions, these organoids are envisioned to have broad utility where apical proximal tubule cell access is required.

bioengineering↗