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In this article, we have outlined a simplified protocol for the isolation and culture of murine retinal pigment epithelium. RPE cells isolated from the eyes of adult mice expressed an RPE-specific marker, RPE65, and an intercellular junction marker, ZO-1. Additionally, the cultured cells developed into pigmented, hexagonal sheets in culture.
Several methods for isolation of RPE in rodents have been published previously6,7,8,9,10,11,12. Many protocols peel the RPE layers from the Bruch's membrane requiring technical skill and increasing the risk of RPE damage or cell death6,7,9,11,12,16. Thus, this protocol utilizes enzymatic detachment of the RPE layer, rather than mechanical dissociation, to promote survival and maintain the integrity of the RPE sheets in culture. This method yields mouse RPE in a culture that maintain RPE morphology with highly pigmented and hexagonal-shaped cells that conserve the expression of tight junction proteins. In addition, this protocol lacks the use of complex reagents or materials used in other protocols, such as permeable membrane inserts, additional extracellular matrix coating proteins, or specialized tissue dissociation reagents. Instead, this protocol utilizes simple enzymatic digestion using 0.25% Trypsin-EDTA in combination with tissue agitation to dissociate the RPE layer from Bruch's membrane. This protocol has been successfully performed on mice aged 3- to 14-weeks-old; however, more eyes may be needed to successfully gain a confluent culture in young mice.
Several challenges may arise during the execution of this protocol. Technical skill is required to precisely cut around the ora serrata and carefully remove the retina without disrupting the RPE layer. The retina may be disturbed while cutting the circumference of the sclera, which can alter RPE viability. Refinement of this technique can only be accomplished through repetitive, continuous practice. Additionally, RPE sheets may remain attached to the retinal layer after removal. To avoid excess loss of RPE, stimulate retinal detachment by using a syringe or transfer pipette filled with wash buffer medium to gently lift the edges of the retina from the eyecup. Hyaluronidase incubation can also facilitate detachment16. In the event that RPE are not properly detaching from the Bruch's membrane and choroid, increase incubation time with trypsin in the water bath. Additionally, freeze aliquots of fresh trypsin at -20 °C and thaw directly before use to maintain optimal enzymatic activity. Failure of the RPE to attach to the well plate after isolation can arise if cells are seeded at too low of a density or if the RPE were damaged during the isolation process. In addition, our protocol does not require the coating of extracellular matrix (ECM) proteins for culture. However, ECM proteins, such as fibronectin, collagen IV, laminin, or collagen I, have been shown to increase cell attachment and should be considered if adherence is poor11.
To increase the yield of RPE-cultured monolayers, pool at least 2-3 eyes of age-matched mice with the same genetic background; cells can lose their hexagonal shape and pigment over time if not seeded at a high enough density. For mice that are over 8 weeks of age, 2 eyes per 24-well plate should be sufficient for optimal confluency. If mice are under the age of 8 weeks, 3-4 eyes will result in better adherence and confluency. Over time, cells may be susceptible to epithelial-mesenchymal transition (EMT) with loss of pigmentation and acquisition of an elongated shape. The addition of Rho-Kinase and TGFβR-1/ALK5 inhibitors, such as Y27632 and Repsox, respectively, can prevent EMT of the cultured RPE cells12. While the isolation protocol is brief, only requiring 1 h for isolation of 2-4 eyes, the primary culture may take up to 7-10 days to reach full confluency. In addition, passaging RPE is limited, with an increased risk of EMT at every subsequent passage.
Retinal pigment epithelial cells are critical cells for maintaining homeostasis in the eye. RPE act as phagocytes to aid in the maintenance of photoreceptors, prevent neural layers from light damage, and act as a tight epithelial barrier to regulate transport17. Diseases directly affecting RPE, such as age-related macular degeneration, retinitis pigmentosa, and diabetic retinopathy, can exacerbate inflammation, increase apoptosis, and disrupt cellular junctions, leading to the increased probability of retinal degeneration and blindness17. Cultivation of primary RPE facilitates the study of the pathogenesis of ocular diseases affecting RPE. In conclusion, our protocol shortens the duration of isolation and simplifies the necessary techniques and reagents while maintaining high-purity cell culture.