ReviewJournal of translational medicine2026
Targeting injury-induced transglutaminase-2 activity with a cementoin-SLPI fusion protein: a novel therapeutic strategy for alkali-induced corneal injury.
Review in Journal of translational medicine, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Authors and funding
7 authors.
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Abstract
backgroundChemical injury of the cornea, particularly alkali-induced corneal injuries, triggers a self-amplifying cascade of inflammation, extracellular matrix disruption, and pathological neovascularization that often resists conventional therapy. Transglutaminase-2 (TG2) is a calcium-dependent enzyme whose activation in injured tissues orchestrates crosslinking of matrix proteins and modulation of inflammatory signaling, positioning it as a mechanistic hub in tissue damage. MAIN TEXT: Here we review the molecular and cellular mechanisms underpinning TG2's role in corneal injury, focusing on its compartment-specific functions in intracellular stress responses, cell-matrix adhesion dynamics, and extracellular matrix stabilization. We also synthesize evidence from preclinical models indicating that injury-induced TG2 activity generates a microenvironment permissive to targeted therapeutic anchoring. Building on this concept, we describe the design and biological rationale of a genetically engineered fusion protein composed of a TG2 substrate domain (cementoin) linked to secretory leukocyte protease inhibitor (SLPI), enabling covalent anchoring to TG2-rich injured tissue. Our preclinical studies demonstrate that this fusion protein improves local tissue retention, modulates inflammatory signaling, reduces protease activity, and attenuates pathological neovascularization in alkali-induced corneal damage.
conclusionsExploiting injury-generated enzymatic activity, rather than inhibiting isolated downstream pathways, represents a novel therapeutic paradigm. The cementoin-SLPI fusion protein exemplifies a context-dependent strategy to achieve spatially restricted modulation of inflammation and tissue remodeling. These mechanistic insights and translational perspectives lay the groundwork for clinical evaluation of TG2-targeted biologics in severe ocular surface disease.
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