A comprehensive step-by-step guide for constructing an olfactometer designed for odor association tasks can be found in the literature. Researchers may encounter various challenges during the assembly and operation of the device, but fortunately, there are established troubleshooting methods to address these issues. Once properly constructed and calibrated, the olfactometer serves as an invaluable tool for scientists conducting experiments related to olfaction, enabling precise control and delivery of odor stimuli.
Critical steps
The MATLAB version downloaded should be 2015, as the code written is compatible with this version, and using any other version may lead to issues. It is important to verify that the correct board is selected in instacall. The installation of mcc.dill can be accomplished by executing daqregister('mcc') while logged in as a MATLAB administrator.
Troubleshooting
At the beginning of each training week, run the calibration software (InstaCal) to make certain that the PC and the olfactometer are interfacing correctly. Open this program, click on the board, and click on Digital Calibration. The airflow rate needs to be checked. The background airflow should be 2 L/min, and the flow to the odor equilibration vials should be 50 mL/min. It is extremely important to routinely check for airflow rate at the output of the olfactometer.
Before placing a mouse, it is important to ensure the following parameters are tested: (1) Odor valves: The odor valves should be clicked when pressing the button on the black box. Air tubing should bubble into the mineral oil, with no mineral oil trapped in the tubing. (2) Odor tubing: If odors do not produce bubbles, the tubing may be blocked where it typically pinches near the valve. Tubing replacement may be necessary. (3) Final valve and water valve: The final valve should open correctly, with the tubing checked for proper function. For the water valve, any air blocking water flow should be cleared, allowing water to flow into the lixit. (4) Airflow: The flow meters need to appear calibrated and positioned appropriately. (5) Relay lights: Ensure that the "lights" on the relays activate correctly during the experiment. (6) Water reward relay: When a water reward is dispensed, the relay above the water should blink as it dispenses the reward. (7) Odor and water reward relay: When an odor is paired with a water reward, the red relay above the corresponding valve number should blink red during the reward.
Limitations
The go/no-go task tests the ability of the mouse to test 2 odors. In order to run the task, the animal must be run through several sessions. This is not a high throughput technique for testing odor discrimination. The olfactometer is designed to test olfactory stimuli. It is not a multisensory testing apparatus. However, modifications can be made to test other sensory inputs.
This article describes a liquid dilution olfactometer where air bubbling through the odorant diluted in mineral oil at a rate of 50 mL/min is pre-equilibrated with the background airflow at 2 L/min. For this odorant delivery design, the kinetics of odor dilution in the carrier airflow determines the speed of the increase in the concentration of the odor in the background airflow. As shown in Figure 7, while the concentration increases within 200 ms to half of the final concentration, the rate of concentration change slows down beyond half a second. While this configuration does not produce a square step change in odor concentration, it has been used successfully to study odor discrimination and detection23. If the experimental protocol requires a step change in odor concentration, the design for odorant delivery should be modified to three continuous 2 L/min background airflow channels where odorants are continuously delivered into the background airflow of two of the background airflow channels. The third delivery channel would deliver air equilibrated with mineral oil. In this case, diverting valves would be used to divert one of the two odorants or odor-free air into the odor port. This would result in step increases in odorant concentration at the odor port (also previous reports20,24). Regardless, it is key to document the time course for the change in odor concentration using a photoionization detector.
The olfactometer described here is designed for mouse behavioral experiments, however this design has been used in the past for rats. The main difference is that it is necessary to increase the size of the chamber for studies with rats25. Finally, this olfactometer assesses the olfactory behavior of a single mouse. A high throughput automated olfactometer has been described to test multiple mice26.
Significance
This protocol describes a custom-made olfactometer, which reduces costs compared to other available methods.
Future applications
The olfactometer is designed specifically for use with mice and requires modification for use with other animals, such as rats. Additional features, such as a multi-electrode recording system (e.g., a multi-electrode recording board), an Arduino Uno board, or a camera, can also be incorporated.