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Biology subjects

Dimitriadi, A.

Publications and source records attributed to Dimitriadi, A..

2 recordsLinked to original sources

Hyaluronan underlies the emergence of form, fate, and function in human cardioids

The extracellular matrix (ECM) is crucial for organ development and disease. Yet, the interplay among cells, function, and the ECM during human cardiogenesis remains obscure. Using human cardioids, we discovered that cardiac mesoderm-synthesized hyaluronan (HA) underlies early cardiac functional development. HA drives cardioid cavity formation through hydrogel swelling and bioscaffolding, critical functions of the cardiac jelly in the early vertebrate heart. During an early developmental window, HA is essential for establishing cardiac cell identity, while at later stages, HA-generated forces promote beating function through mechanosensitive channels. Chamber-specific differences in mechanical sensitivity ensure robust contractions in multi-chambered tissues. Our findings reveal how a single endogenous ECM component orchestrates the co-emergence of form, fate, and function during human organogenesis, opening new avenues for bioengineering physiologically relevant organ models.

developmental biology↗

A photoswitchable HaloTag for spatiotemporal control of fluorescence in living cells

Photosensitive fluorophores, which emission can be controlled using light, are essential for advanced biological imaging, enabling precise spatiotemporal tracking of molecular features, and facilitating super-resolution microscopy techniques. While irreversibly photoactivatable fluorophores are well established, reversible reporters which can be re-activated multiple times remain scarce, and only few have been applied in living cells using generalizable protein labelling methods. To address these limitations, we introduce chemigenetic photoswitchable fluorophores, leveraging the self-labelling HaloTag protein with fluorogenic rhodamine dye ligands. By incorporating a light-responsive protein domain into HaloTag, we engineer a tunable, photoswitchable HaloTag (psHaloTag), which can reversibly modulate the fluorescence of a bound dye-ligand via a light-induced conformational change. Our best performing psHaloTag variants show high performance in vitro and in living cells, with large, reversible, far-red fluorescence turn-on upon 450 nm illumination across various biomolecular targets. Together, this work establishes the chemigenetic approach as a versatile platform for the design of photoswitchable reporters, tunable through both genetic and synthetic modifications, with promising applications for dynamic imaging.

biochemistry↗