Since some parts of the protocol are performed as previously described in other JoVE videos2 and papers3 with minor modification we will not discuss those in detail here.
1. Egg Handling and Needle Preparation
- Eggs can be stored in a wine cooler at about 13°C for up to 1 week. If the temperature is too high, embryos will start to develop abnormally, while lower temperature causes high mortality. Once you are ready to incubate take out the eggs from the wine cooler and set the eggs vertically with the larger end up. Keep the eggs in the room temperature for at least 2 hours before putting them in the 37.5°C incubator.
- Incubate the eggs for 96-100 hours which is about embryonic day 4 to obtain embryos that are at the Hamburger and Hamilton stage 224-5.
- Prepare micropipette needles from pulled glass capillary tubes and break the tip under a dissecting microscope with a tweezers to get a tip opening about 0.1 μm in diameter and a 20 mm taper. Needles with larger tips have difficulty piercing the vitelline membrane while smaller tips have difficulty loading and delivering the DNA solution.
- Attach the needle to a 0.1 ml Hamilton Gastight syringe mounted on a micromanipulator. Use a small piece of Masterplex silicone tube for attaching the needle to the syringe. Since the connections are tight no need to add mineral oil to seal this attachment.
- Mix 2 μl of reporter plasmid DNA solution with a concentration ranging 3-6 μg/μl and 0.2 μl of fast green (0.025%) on a piece of parafilm. Fast green dye will help to visualize the injection. Slowly, load the needle with the mixture.
- To free the vitelline membrane from the inner membrane rotate the egg gently about 180° and wait for few minutes then rotate it back to original position and set it for electroporation.
- Wipe the forceps and egg shell with 70 % ethanol to avoid infection to the embryo.
- Make a small hole on the egg immediately above the air cell with a pair of size AA forceps. Be careful not to crack the egg shell. Remove small pieces one at a time to make a small window. Carefully remove the inner membrane using the forceps without touching the vitelline membrane.
2. Injection and Electroporation
- To prevent damage to the brain or the heart, position the needle contra lateral to the main bundle of blood vessels entering the eye and pointing towards the beak.
- Pierce through the vitelline membrane, sclera, retina and vitreous humor by a sudden mild push of the needle. If the needle pierces through the other end of the eye it should be alright unless it damages any major blood vein.
- Slowly pull back the needle at the edge of the opening and place it almost tangent to the outer wall of the eyeball.
- Insert the needle into the sub retinal space between the sclera and retina.
- Inject the DNA until you can visualize the green solution filling the side of the eyeball and pushing the retina inwards by creating a bulge.
- If your needle placing is not correct then you will see the DNA solution spreading inside the vitreous humor filling up the middle of the eye ball. Also, if you damage the retina too much then you will see the DNA solution is coming out of the eyeball.
- Slowly remove the needle and immediately place the electrodes in parallel inside the egg after soaking in PBS. Push down the electrodes to submerge into the amniotic fluid in a way so that the injected eye is located between the electrodes. Avoid touching any major blood vessel or the heart with the electrodes while placing them. The negative electrode should be at the injection side so that DNA can be transported from sub retinal space into the retina towards positive electrode. Electroporate the retina with 5 pulses of 15V for 50 ms with 950 ms intervals.
- Carefully remove the electrodes and seal the window of the egg with pieces of clear scotch tape.
- Label and date the injected egg before putting it back to the incubator. Typically, it takes about 3 to 5 minutes to complete the whole electroporation process.
- GFP expression can be seen as early as 8 hours after electroporation. However, you may wait until the embryo reaches the desired stage before harvesting.
3. Representative Results
In our study, we use various plasmid constructs to study the regulation of gene expression that involved retinal cell development. In this video pCAG-GFP (transfection control) was used to follow a successful injection and electroporation. However, any plasmid construct with reporter gene (GFP, RFP etc.) can be used. Even though GFP expression can be seen as early as 8 hours after electroporation, we typically start harvesting the egg on day 6 (E6) and onwards. Electroporated retinas were dissected out of the embryo and analyzed under fluorescent dissection microscope before embedding and sectioning. Typically, reporter gene expression can be seen at least in a quarter of the retina after a successful electroporation (Fig 1). The transfected retinal tissues were further analyzed through sectioning for clear visualization of cell morphologies. Immunohistochemistry using cell type specific markers (Brn3a, Pax6 etc.) allowed characterization of cell-specific GFP expression (Fig 2).

Figure 1. Successful electroporation of reporter plasmid results positive GFP expression. Chicken embryonic retinas were injected and electroporated at embryonic day 4 and harvested at embryonic day 6. At least 25% of the retina was successfully transfected (A=Top view, B= Bottom view). Scale Bar = 1mm.

Figure 2. Characterization of GFP expressing retinal cells using immunohistochemistry. GFP expressing retinal tissues at E7 stage were fixed and sectioned. These sections were then stained with various cell specific markers. Brn3a was used to determine ganglion cells (A) while Pax6 was used to determine horizontal, amacrine and ganglion cells (B). Scale bar = 50 μm.