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Ocular dissection is an important technique in ophthalmic research and has allowed investigators to access the segments of the eye for targeted studies. Previously, ocular researchers relied on the ocular tissue from diseased individuals for their studies. However, the progressively growing number of strains of ophthalmic rodent models1 over the years has diminished the need for human ocular tissue. These mouse strains have permitted a deeper understanding of ocular disease and interventions. Yet, they have also generated a need for innovative techniques of ocular micro-dissection. The small size and limited area of operation severely constrain effective access to the ocular sub-parts. Further, owing to the homogenous cellular assembly of the posterior and anterior eyecups, it is difficult to conduct targeted interventions post-dissection. The current micro-dissection techniques of laser2 and surgical microdissection3,4 are inadequate in meeting such requirements of ocular research. Laser micro-dissection is very effective in single-cell analysis, but the specific tissue needs to be micro-dissected before the laser procedure2. The technique can isolate small regions of interest from a pre-dissected tissue for molecular analysis. Thus, the technique is not suitable for preparing wholemounts or for the isolation of axially packed ocular layers for optimum visualization.
The surgical method is the most widely used technique; this method involves immobilizing the eye via the optic nerve5 and then performing the dissection. This practice is arduous and can damage any fragile tissue, as the spherical eye continues to move during dissection. Despite being beneficial for isolating the various sections of the retinal layers, the technique cannot demarcate the spatial orientation of the tissue upon dissection.
During dissection, maintaining the presence of the attached nictitating membrane or the third eyelid (Figure 1) presents unique and significant advantages. In this method, first, the eyeball is enucleated with the third eyelid. Then, the third eyelid is used to immobilize the eye6 (Figure 2A). This is followed by piercing the eyeball through the corneal limbus and using the incision as the point of entry (Figure 2B,C). Then, the eyecups are separated by cutting along the circumference anteriorly and posteriorly (Figure 2D-G). By dissecting the posterior eyecup further, the translucent layer of the neural retina can be identified and gently peeled off. Three or four equidistant cuts are then made in the obtained hemispherical anterior and posterior cups, which allow these flower-shaped cups to fall flat onto a slide (Figure 2H).
The third eyelid aids in easy and efficient handling during the dissection, thus ensuring minimal damage to the tissue while accessing the various ocular layers and when producing wholemounts. Further, the presence of the third eyelid helps to locate and examine localized interventions during visualization.
The procedure, in our lab, has been performed on a CBA/J or an rd1 mouse strain at P28 of any sex. The procedure can be performed on any strain, age, or sex of animal and has no bias according to these characteristics.
The animals were procured from commercial sources (see Table of Materials) and maintained at the Small Animal Facility (SAF) at the National Institute of Immunology (NII). They were kept in individual ventilated cages (IVC) and received ad libitum access to acidified autoclaved water and food. They were maintained at 21-23 °C and with a 14 h/10 h light/dark cycle.
Given below is a modified surgical method for the micro-dissection of a mouse eye.