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Biology subjects

Golestan, K.

Publications and source records attributed to Golestan, K..

2 recordsLinked to original sources

Recapitulating apicobasal tissue polarity in extracellular matrix incorporated airway organoids

The airway epithelium is a dynamic barrier that interfaces with the external environment and internal matrix along its apicobasal axis. To recapitulate this tissue arrangement in an organoid format, we present the decellularized ExtraCellular Matrix-incorporated Apical-out Airway Organoid (dECM-AoAO) that integrates basolateral matrix cues through incorporation of human lung dECM microparticles, while maintaining direct apical exposure to the exterior. Compared to the ECM-free AoAO, dECM incorporation effectively diversifies lineage distribution that better recapitulates native epithelial composition. Harnessing dECM-AoAO locomotion powered by its outward-facing ciliary beating, we developed an experimental and computational pipeline for swarm analysis of organoid group motility as a functional readout of ciliary function. Lastly, dECM-AoAO withstood cryopreservation and revival with sustained viability, lineage composition, and ciliary function, enabling future scalability and broad distribution. Together, this work establishes dECM-AoAO as a more physiologically relevant model system for investigating epithelial-ECM crosstalk during airway homeostasis, pathogenesis, and injury responses.

cell biology↗

AggreBots: configuring CiliaBots through guided, modular tissue aggregation

Ciliated biobots, or CiliaBots, are a class of engineered multicellular tissues that are capable of self-actuated motility propelled by the motile cilia located on their exterior surface. Correlations have been observed between CiliaBot motility patterns and their morphology and cilia distribution. However, precise control of these structural parameters to generate desired motility patterns predictably remains lacking. Here, we developed a novel Aggregated CiliaBot (AggreBot) platform capable of producing designer motility patterns through spatially controlled aggregation of epithelial spheroids made from human airway cells (referred to as CiliaBot Building Blocks or CBBs), yielding AggreBots with configurable geometry and distribution of active cilia. Guided multi-CBB aggregation led to the production of rod-, triangle-, and diamond-shaped AggreBots, which consistently effected greater motility than traditional single-spheroid CiliaBots. Furthermore, CBBs were found to maintain internal boundaries post-aggregation through the combined action of pathways controlling cellular fluidity and tissue polarity. This boundary fidelity, combined with the use of CBBs with immotile cilia due to mutations in the CCDC39 gene, allowed for the generation of hybrid AggreBots with precision control over the coverage and distribution of active cilia, further empowering control of motility patterns. Our results demonstrate the potential of AggreBots as self-propelling biological tissues through the establishment of morphological "levers" by which alterations to tissue motility can be theoretically planned and experimentally verified.

bioengineering↗