Successful completion of the described swimming and diving training procedures can decrease the stress experienced by rats when diving under water. Blood corticosterone levels indicate that repetitive daily training decreases the stressfulness associated with voluntary diving, and trained rats find diving no more stressful than being handled daily by a human (Figure 2; 17). Conversely, rats not trained in the diving protocol find voluntary diving stressful (Figure 2; 17). Additionally, both trained and untrained rats find forced diving to be the most stressful (Figure 2; 17).
The cardiovascular responses from swimming, voluntary diving and forced diving rats have been recorded using implanted telemetry devices (Figure 3; 8,17-20) and trailing cannulae (Figure 4; 21-23). Immediately upon voluntary submersion, and within a single beat, heart rate decreases by 78% and mean arterial blood pressure decreases by 25% 17. These results show that voluntarily diving rats exhibit the same cardiorespiratory changes typically seen in other diving animals. Trailing arterial cannulae have been used to inject the muscarinic antagonist atropine, which eliminates the bradycardia associated with voluntary diving (Figure 4; 21), and to determine the distribution of cardiac output 22, including cerebral blood flow 23, during voluntary diving. Trailing cannulae have also been used to show that rats ignore increasing arterial hypoxemia and hypercapnia while they are submerged 18, and that pre-existing chemoreceptor drive does not have any effect on the cardiovascular responses to voluntary diving 21.
Neurons within laminae I and II of the ventral medullary dorsal horn (MDH) express Fos during voluntary diving, and these neurons may constitute the initial brainstem afferent relay of the diving response (Figure 5; 24). Important brainstem cardiorespiratory control areas, such as the caudal pressor area (CPA), nucleus tractus solitaries (NTS), rostral ventrolateral medulla (RVLM), and peribrachial regions, all show increased Fos labeling during voluntary diving compared with swimming 25. Neurons in chemosensitive regions of the brainstem express Fos after long duration forced dives 18.

Figure 1: Schematic of Diving Tank. A Plexiglas tank (100 x 60 x 15 cm) was used to create a simple maze consisting of five 1 m long channels. The tank was filled with 30 °C tap water, and rats were initially trained to negotiate the maze by swimming on the surface of the water, from the Start Area (top left) to the Finish Area (bottom right). The rats were then trained to dive through the maze, kept underwater by horizontal Plexiglas pieces placed 2-3 cm below the water surface. [This figure has been modified from 26]

Figure 2: Corticosterone measurements. Blood draws from rat tail veins were used to measure corticosterone concentrations (mean ± SE) from rats left in their cages (Naïve), rats handled for 10 min/day (Handled), rats trained to swim and dive (Trained), and rats that received no swim or dive training (Untrained). Corticosterone was measured after trained rats had completed their swim training (Left set of bars), after trained rats had completed their voluntary dive training (Center set of bars), and after trained rats had completed their forced dive training (Right set of bars). 1 indicates value is significantly greater than Naïve; 2 indicates value is significantly greater than Handled; 3 indicates value is significantly greater than Trained; * indicates that in Trained rats value during forced dive is significantly greater than during voluntary dive. [This figure has been modified from 17]

Figure 3: Arterial blood pressure traces from telemetric transmitters. Raw data traces showing pulsatile arterial blood pressure during swimming (left column), voluntary diving (middle column), and forced diving (right column) from rats trained to swim and dive through the maze (bottom row) and from rats that had not had the training procedure (top row). Diving underwater (both voluntary and forced submergence) produced an immediate bradycardia and slower onset increase in arterial pressure, whereas swimming on the surface of the water caused no such cardiovascular changes. Bars under traces indicate periods of submergence. Breaks in trace indicate periods when the telemetric signal was lost. [This figure has been modified from 17]

Figure 4: Atropine eliminates diving bradycardia. Original recordings of pulsatile arterial blood pressure of voluntarily diving rats (A) before and (B) after atropine pre-treatment. Traces were obtained using a trailing arterial cannula. Before atropine pre-treatment, arterial pressure decreased slightly upon submersion, but then increased to greater than pre-dive for the remainder of the dive. Heart rate was determined from adjacent pulse pressure intervals. Upon submersion there was an immediate and substantial bradycardia that was sustained for the duration of the dive. After parasympathetic blockade by atropine pre-treatment the bradycardia was eliminated. There was also an increase in arterial pressure during the dive. The bar under the trace indicates the period of submergence. [McCulloch, unpublished]

Figure 5: Fos labeling within the MDH. Photomicrographs of the trigeminal medullary dorsal horn (MDH) and the spinal trigeminal tract (sp5) in rats trained to dive underwater. (A) In a control rat that did not repetitively dive there is no Fos labeling. (B) In a swimming rat there is very little Fos label in the MDH (large arrowhead) or paratrigeminal nucleus (small arrow) within sp5. (C) In a diving rat there is more Fos labeling ventrally in both the MDH (large arrowhead) and paratrigeminal nucleus (small arrows) compared to the swimming and control rat. Insert in panel (A) indicates the rostral-caudal location of panels A-C. Scale bar in panel C is 100 μm. [This figure has been modified from 24]

Figure 6: Activated catecholaminergic neurons from diving rats. Photomicrographs show the medullas of a non-diving control rat (A, C, and E) and a voluntarily diving rat (B, D, and F). The brain tissue was immunohistologically processed for both Fos and tyrosine hydroxylase (TH), producing brown TH somas and black Fos nuclei. Open arrowheads identify single-labeled TH-positive neurons, while solid arrows identify Fos+TH double-labeled neurons. A1 neurons are identified in A and B. C1 neurons are identified in C and D. A5 neurons are identified in E and F. More Fos and TH double-labeled are seen in the A1, C1, and A5 regions of the diving rat than in the non-diving control rat. Calibration bar in E is for panels A-F, and is 250 μm. Calibration bar in inset in F is for all insets, and is 50 μm. [This figure has been modified from 26]