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1. Wild bird capture using mist nets
- For shorebird capture, set up mist nets at an active foraging site such as a marsh, shoreline, or mud flat.
- Slide trammel line loops of one end of the mist net around the pole and insert pole vertically into mud.
- Stretch out net, insert second pole through trammel loops at other end of mist net and vertically insert pole into mud, making sure that the trammel lines are taught.
- Once a bird is captured, extract the bird from the net and return to the banding station.
2. Cloacal swab sampling
- Collect cloacal swabs immediately after capture
- Locate the cloaca and use fingertips to push back surrounding feathers
- Unwrap a sterile Dacron- or Polyester-tipped swab, stem end first, and moisten the tip with sterile viral transport media for greater ease in swabbing. After moistening, the entire head of the swab is gently inserted into the cloaca. Swab the inside circumference of the cloaca by slowly twirling the swab and remove the swab from cloaca.
- Inserting the swab tip directly into the viral transport media sample vial; rotate the swab shaft between the thumb and forefinger while the swab is in the media. Have an assistant complete the procedure by pulling the tip of the swab back from the bottom of the vial ~ 1 cm and cut the shaft of the swab with a pair of scissors so the swab tip remains in the vial and the shaft does not interfere with cap closure. Cap vial tightly. Disinfect the scissors with alcohol in between cutting swab shafts.
- Place the vials in a freezer box containing either dry ice or ice packs.
3. Oropharyngeal swab sampling
- Gently open the bird's beak so that the choanal slit is visible
- Unwrap a clean swab from the package, stem end first, and moisten the tip with viral transport media for greater ease in swabbing
- Without touching the tip to any other surfaces, insert it into the mouth and swab the choanal opening on the roof of the mouth and continue back towards the oropharyngeal or throat region
- Place the swab tip directly into the viral transport media vial. Rotate the swab shaft between the thumb and forefinger while the swab is in the media. As above, have an assistant pull the tip of the swab back from the bottom of the vial ~ 1 cm and cut the shaft of the swab with a pair of scissors so the swab tip remains in the vial and the shaft does not interfere with cap closure. Cap vial tightly. Disinfect the scissors with alcohol in between cutting swab shafts.
- Place the vials in a freezer box containing dry ice or ice packs.
4. Bird handling and release
- Return bird to the site of capture and release in a timely manner (<20mins). Handlers should be aware of the principles of animal welfare and be alert for signs of bird suffering during sampling (i.e. abrasions, capture myopathy and hypo- or hyperthermia). A basic first aid kit should be included in the equipment list.
5. Testing facilities
- Samples can be tested in any enclosed space such as a research trailer or tent, with a power supply (voltage-regulated power generator) to run the PCR unit and attached computer.
6. RNA extraction
- RNA extraction was performed with the RNeasy Mini kit with minor modifications to the manufacturer's instructions following Spackman et al. 1
- Vortex the swab medium for 3-5 s and transfer 350 μl to a 2 ml microcentrifuge tube. Note: Keep remainder sample on ice in case PCR-positive samples need to be rescreened or H5 test needs to be run.
- Add 350 μl of RLT buffer (with β-me) and vortex for 5 s.
- Add 350 μl of RNA grade 70% ethanol.
- Centrifuge at 5,000 x g for 5 min.
- Add 600 μl of the supernatant to a spin column placed in a 2 ml collection tube. Retain the remaining sample in test tube rack.
- Centrifuge for 20 s at 10,000 x g and discard flow-through.
- Repeat steps 17-18 until all the sample has been passed through spin column.
- Place spin column in a clean 2 ml collection tube.
- Add 700 μl of RW1 buffer to the spin column and centrifuge 25 s at 10,000 x g. Discard the flow-through.
- Add 500 μl RPE buffer to the spin column and centrifuge for 25 s at 10,000 x g. Discard the flow-through.
- Repeat step 22 for a total of two washes with RPE buffer.
- Centrifuge the spin column for an additional 2 minutes at 14,000 x g. Discard collection tube.
- Place the spin column in a clean 1.5 ml microcentrifuge tube and add 50μl of nuclease-free water. Incubate at room temperature for 60 s.
- Elute RNA by spinning for 60 s at 10,000 x g for 60 s. Place purified sample on ice.
7. Preparing negative controls
- Lyophilized reagents were prepared for use in the PCR assay according to instructions from the Idaho Technologies Freeze-Dried Reagent Detection Kit for TaqMan Probes Influenza A Target 1 (ASAY-ASY-0109).
- Centrifuge negative control reagent vial (red) for 3 s to ensure pellets are at the bottom.
- Remove cap, visually make sure pellets are at the bottom.
- Add 20 μl of 2 X Reconstitution Buffer and 20 μl Reagent Grade Water.
- Recap and vortex for 5 s at maximum speed.
- Centrifuge for 3 s to bring liquid to bottom of vial.
- Visually check the pellet has rehydrated, if not repeat steps 31-32.
- Pipette 19 μl of the hydrated mixture into a Lightcycler capillary tube, repeat pipette step into a second capillary to obtain a duplicate.
8. Preparing test samples
- Centrifuge the unknown reagent vial (blue) for 3 sec to ensure pellets are at the bottom.
- Remove cap, visually make sure pellets are at the bottom.
- Add 40 μl of purified RNA.
- Recap and vortex for 5 s at maximum speed.
- Centrifuge for 3 s to bring liquid to bottom of vial.
- Visually check the pellet has rehydrated, if not repeat steps 38-39.
- Pipette 19 μl of hydrated mixture into a Lightcycler capillary tube, repeat pipette step into a second capillary to obtain a duplicate.
9. Preparing positive controls
- Centrifuge the positive control reagent vial (green) for 3 s to ensure pellets are at the bottom.
- Remove cap, visually make sure pellets are at the bottom.
- Add 20 μl of 2 X Reconstitution Buffer and 20 μl Reagent Grade Water.
- Recap and vortex for 5 s at maximum speed.
- Centrifuge for 3 s to bring liquid to bottom of vial.
- Visually check the pellet has rehydrated, if not repeat steps 45-46.
- Pipette 19 μl of the hydrated mixture into a Lightcycler capillary tube, repeat pipette step into a second capillary to obtain a duplicate.
10. Centrifuging the capillary tubes
- Once all of the capillary tubes for the batch have been prepared load them into the mini-centrifuge fitted with capillary adapters.
- Centrifuge at the lowest setting by holding the pulse button down for 1 s. This transfers liquid to the bottom in preparation for testing.
11. Operating the RAPID
- Create a New file. Label positive control, negative control, and samples (by their ID number).
- Program 1: RNA Sample Preparation Hold
- Cycles = 1
- Analysis Mode = None
- Target Temperature = 40
- Incubation Time = 30 min
- Temperature Transition Rate = 20°C/s (default)
- Secondary Temperature Target = 0 (default)
- Step Size = 0 (default)
- Step Delay = 0 (default)
- Acquisition Mode = None (default)
- Program 2: RNA Denaturation
- Cycles = 1
- Analysis Mode = None
- Target Temperature = 94
- Incubation Time = 120s
- Temperature Transition Rate = 20°C/s (default)
- Secondary Temperature Target = 0 (default)
- Step Size = 0 (default)
- Step Delay = 0 (default)
- Acquisition Mode = None (default)
- Program 3: RNA Amplification
- Cycles = 45
- Analysis Mode = Auto Analysis
- Target Temperature, Segment 1 = 94; Segment 2 = 60
- Incubation Time, Segment 1 = 0 s, Segment 2 = 20 s
- Temperature Transition Rate, Seg 1 & 2 = 20°C/s (default)
- Secondary Temperature Target, Seg 1 & 2 = 0 (default)
- Step Size, Seg 1 & 2 = 0 (default)
- Step Delay, Seg 1 & 2 = 0 (default)
- Acquisition Mode, Segment 1 = None; Segment 2 = single
- Fluorescence Parameters
- Display Mode: fluorescence channel 2 (Ch2/1)
Gains:
- Ch 1 (F1) = 1
- Ch 2 (F2) = 8
- Ch 3 (F3) = 1
- To display the real-time fluorescence data for each sample, select the sample of interest and click the 'Show Graph' button at the bottom of the screen
- For each capillary, the results include the following:
- # -- identifies the carousel position of the carousel
- Sample name - provides the name of the sample
- Control - indentifies the sample type for each sample
- Score - calculated using the relationship between the sample's fluorescence and the level of background fluorescence in the sample
- Result - displays the overall result for the sample
12. Representative results:
Possible results include the following:
Present: A red 'present' call for a test/unknown sample indicates that the target was identified in that sample and the controls were successful.
Not detected: A green 'not detected' call for a test/unknown sample indicates that the target was not identified in that sample and the test controls were successful.
Please repeat: A 'please repeat' indicates that the positive or negative control failed.
An example of a successful analysis by the RAPID 7200 is shown in Figure 4. The positive control is amplified and generates detectable fluorescence (y-axis) at approximately 25 cycles (x-axis). A cycle threshold (CT) > 35 is the agreed cut-off for most AIV reference laboratories. Therefore, the positive controls for this method produced a fluorescent signal within the accepted number of cycles (0-35) for AIV detection. In contrast, the negative control does not generate a fluorescent signal even after 45 cycles. Similarly, the twelve samples collected from western sandpipers did not generate a fluorescent signal indicating that the birds were negative for AIV. Follow-up testing of all positive samples in a traditional laboratory is encouraged to ensure that no false positives are erroneously produced.

Figure 1. Shorebird capture using mist nets.

Figure 2. Collection of cloacal and oropharyngeal samples from least sandpipers.

Figure 3. Programming the RAPID 7200 for RNA amplification.

Figure 4. Fluorogram generated by the RAPID 7200 portable rRT-PCR showing how positive and negative controls should appear in a successful assay. Click here to view the full sized image