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In the present study we show how to perform and analyze three useful tests of sensorimotor function in mice. These include the challenging beam, spontaneous activity in the cylinder, and response to sensory stimuli (adhesive removal). These tests were chosen for the following reasons 1) we and others have found them to be highly sensitive to varying degrees of nigrostriatal dopaminergic dysfunction in genetic mouse models14,16-18, 2) only a short amount of training is required for the beam and handling for the response to sensory stimuli tests and once trained the assays can be performed in one test session, and 3) the price of the equipment needed to perform the tests is quite low compared to purchasing more automated equipment such as the rotarod and open field chambers.
The challenging beam test is not only useful at detecting motor performance and coordination deficits in genetic mouse models of PD but is also useful in uncovering impairments in 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine-treated and 6-hydroxydopamine-treated mice and norepinephrine deficient mice19, 23-25. In addition, we find the challenging beam to be less influenced by body weight compared to other tests of motor performance and coordination (rotarod and pole test). This is particularly beneficial when working with aged male mice that can weigh up to 50+ grams. Similar to the beam, alterations in spontaneous activity are reliably observed in parkin knockout, PQ311X, Thy1-aSyn, Pitx3-aphakia, and LRRK2 mice14, 16-18, 26. The adhesive removal test is also sensitive to genetic manipulation including parkin knockout, parkin Q311X, Thy1-aSyn, and DJ-1 knockout mutations in mice14,16, 17, 22. In the unilateral 6-hydroxydopamine-treated mouse the adhesive removal test is performed in a manner similar to how it is typically done with rats1,2. The adhesive label is placed on each forepaw using a forcep and the time to remove the label is recorded. We found that 6-hyrdoxydopamine-treated mice will remove the label from the unaffected limb prior to removing the label on the affected limb 19.
This test battery is easy to implement in aging studies using chronic treatments but it is also easy to use in pharmacological studies. Once animals are trained and ready for testing a test station for each assay can be set up. The animals are then run in the same order on each test. The drug of interest can be administered and once the desired drug peak concentration is reached each mouse can be tested on the beam and then moved to the cylinder for three minutes and then to the adhesive removal test. We found this strategy to work well when testing different dopamine agonists in mice18, 21. Both the beam and adhesive removal tests are amenable to repeated testing, however spontaneous activity in the cylinder is affected by repeated testing resulting in reduced activity over time16. Depending on how robust the deficit is in the mouse you may still be able to detect differences with repeated testing in the cylinder16. In general, habituation and reduced activity is observed as soon as the 2nd exposure to the cylinder however, we find that we can get sufficient activity levels when we run the spontaneous activity test immediately following beam traversal in pharmacological studies18,21. The number of spontaneous activity testing sessions to include in a study will be dependent on mouse strain (some are definitely more active than others) and treatment duration. In our pharmacological studies in mice on a mixed C57BL/6 X DBA background we measured activity between 2-4 times and the testing sessions were separated by one week21.
The beam and cylinder tests do require post-testing analysis of videorecorded behaviors. For this aspect of the analysis it is particularly important to have raters that are blind to the experimental conditions. When we train new raters in the laboratory we have the person score behavior on videotapes previously analyzed by an expert rater from the lab. The criteria are explained and shown to the new rater and then the person begins to score the previously analyzed tapes on their own. The scores are then compared to the expert' ratings. The person is not allowed to rate new data until they are within 95-98% accuracy of the expert. All data is then randomly spot-checked for accuracy by an expert rater.
The battery of tests described in this study is designed to assess sensorimotor function in mice. However, whenever characterizing a novel mouse model of disease it is always important to do a basic examination of the animal as well. Body weight and temperature should be monitored throughout testing and any abnormal behaviors should be noted, like the removal of vibrissae or clasping of the hindlimbs when picked up by the tail. Basic neurological assessments are described elsewhere in detail27-29.