Abstract / Summary
A cardinal feature of nonexudative age-related macular degeneration (AMD) is the accumulation of drusen between the retinal pigment epithelium (RPE) and Bruch's membrane, yet the mechanisms that initiate and promote drusen formation remain to be fully understood. Hydroxyapatite (HAP), a calcium-phosphate mineral identified within human drusen, has been proposed to contribute to drusen nucleation and is associated with increased likelihood of RPE atrophy. However, mechanistic studies providing insight into RPE-associated mineralization have been limited by a lack of easy-to-use and manipulatable culture models. Here, we established a rapid, inducible ARPE-19-based model of HAP mineralization. We found that ARPE-19 cells cultured in minimum essential media (MEM) supplemented with nicotinamide (NIC), sodium phosphate, and ascorbic acid (NaPAA) reproducibly formed HAP positive deposits, whereas mineralization was not observed while using standard DMEM/F12 medium, DMEM/F12 with NaPAA, MEM-NIC medium, or MEM-NIC medium with alternative osteogenic supplements (such as beta-glycerophosphate, ascorbic acid, and dexamethasone). Scanning electron microscopy with energy dispersive X ray spectroscopy demonstrated that the formed deposits were enriched in calcium (Ca) and phosphorus (P) with Ca/P ratios comparable to drusen-associated HAP deposits from AMD donor tissue. ARPE-19-based HAP deposits were also closely associated with neutral lipid-rich material, staining positive for BODIPY around their core structure. Bulk RNA sequencing of mineralized ARPE-19 cells revealed extracellular matrix, angiogenic, inflammatory, and metabolic transcriptional changes in the absence of strong enrichment of canonical osteogenic pathways. Co-treatment of mineralizing cells with either pyrophosphate, EDTA, or sodium citrate significantly reduced mineral deposition, but these approaches were not able to reverse it. Together, these findings establish a tractable RPE mineralization model that recapitulates key features of AMD-associated HAP and provides a platform for investigating mechanisms of drusen-associated mineral formation.