Bioinspired Proteome-Engineered Hydrogels as Vitreous Substitutes for Preserving Intraocular Homeostasis.

Wang, Ting; Ren, Xiang; Ran, Ruijin; Chang, Shuhua; Ge, Pengjin; Xu, Hanyue; Cao, Jun; Zhang, Ming · Adv Healthc Mater · 2026

basic_science · Level V

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Abstract

Current vitreous substitutes, failing to recapitulate the dynamic proteomic microenvironment essential for retinal homeostasis, often cause complications like increased intraocular pressure, proliferative vitreoretinopathy and macular edema. Herein, we propose a proteome-directed vitreous microenvironment engineering strategy, pioneering a paradigm that goes beyond structural replacement by actively restoring the proteomic homeostasis intrinsic to the native vitreous. Specifically, a photo-crosslinked network is engineered by integrating hyaluronic acid methacrylate and polyethylene glycol methacrylate, achieving exceptional (>90%) retention of endogenous vitreous proteins (e.g., COL2A1, COL3A1, FBLN1, FBLN2). This engineered vitreous-mimetic properties, featuring high optical transmittance, a physiological refractive index and tailored viscoelasticity. Crucially, small-angle X-ray scattering reveals a dual-mesh architecture (ξ = 13-47.5 nm) of the network, facilitating selective diffusion of small molecules while immobilizing homeostatic proteins. In a rabbit vitrectomy model, this network exhibits long-term structural stability in supporting retina, demonstrates good biocompatibility, and preserves the endogenous vitreous proteome without causing observable adverse effects. This work introduces a promising platform for intraocular biomaterial design by integrating proteomic functionality to dynamically form a homeostatic microenvironment, offering a safe intraocular tamponade for vitreoretinal pathologies.

Medical subject headings