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Biology subjects

Ochoa, S. L.

Publications and source records attributed to Ochoa, S. L..

2 recordsLinked to original sources

PROX1 loss in adult mouse Schlemm's canal causes permanent ocular hypertension

Glaucoma is associated with ocular hypertension and lowering intraocular pressure is a key objective of glaucoma therapies. Recent studies have established a role for the Schlemms canal endothelium in this pressure increase and have shown it to have a unique, lymphatic-like, hybrid phenotype. However, the role of these lymphatic phenotypes in the adult canal remains uncertain. Long-term functional studies have been limited by systemic importance of lymphatic genes and lack of Schlemms canal-specific animal models. Here, we designed and validated a strategy using 4OH-tamoxifen-loaded nanocarriers to generate targeted, Schlemms canal specific knockout mice lacking lymphatic phenotypes. Using this system, we selectively deleted Prox1, the master transcription factor governing lymphatic fate. Within four weeks, intraocular pressure significantly increased, and ocular hypertension was maintained for at least 24 weeks. Unlike lymphatic vessels, which degenerate following Prox1 deletion, Schlemms canal reverted to a less functional vein-like phenotype with no change in size or morphology. These results highlight the utility of nanocarriers for tissue-specific genetic recombination and demonstrate that changes in lymphatic phenotypes alter intraocular pressure, providing new targets for glaucoma therapy. Moreover, as we found that PROX1 was downregulated with age in human Schlemms canal, these canal-specific conditional Prox1 knockout mice are a valuable new adult-onset model of ocular hypertension that captures key features of age-related human disease.

physiology↗

Filomicelle-Embedded Composite Hydrogels for Localized Gelation within the Anterior Chamber of the Eye

Nanocarriers hold transformative potential for treating anterior segment eye diseases, yet corneal epithelium impermeability necessitates intraocular injection. Given the discomfort and infection risk, an injectable hydrogel-based depot offers a promising strategy for sustained nanocarrier delivery in intraocular therapy. However, because the aqueous humor is a large, fluid-filled environment, achieving spatially confined gelation remains a key challenge as injected materials rapidly diffuse. Herein, we present a composite hydrogel (C-gel) that enables localized in situ gelation and sustained nanocarrier release within the anterior chamber. This is achieved using poly(ethylene glycol)-b-poly(propylene sulfide) (PEG-b-PPS) filomicelles (FMs), whose filamentous structure confines crosslinking reactions spatially, promoting efficient gel formation. As a result, 90% of the injected polymer is retained within the crosslinked hydrogel matrix. Embedded FMs then undergo oxidation-induced cylinder-to-sphere transitions, facilitating gradual release of micellar nanocarriers. The rheological properties, gelation timing, and microstructure of the C-gel are adjustable, allowing precise control of nanocarrier release dynamics. In vivo evaluation in mice confirmed excellent biocompatibility without inducing intraocular pressure elevation, ocular toxicity, or immune cell infiltration. Sustained release of nanocarriers was observed for over a month under conditions mimicking that of the anterior chamber of the eye, underscoring the potential of C-gels for long-term drug delivery in anterior segment eye diseases therapy.

bioengineering↗