The protocol described here demonstrates methods for preparing and implementing micropipettes for microiontophoresis. Delivery of acetylcholine is used to illustrate calcium signaling underlying endothelium-dependent vasodilation in arterioles of the anesthetized mouse. Our results illustrate that the distance over which ACh increases endothelial cell calcium fluorescence increases with the intensity of ejection current from the microiontophoresis micropipette (Figure 3). The lack of fluorescence increase under resting conditions indicates negligible leakage of ACh from the micropipette. The lack of response to 100 nA stimulus intensity (Figure 3, legend) illustrates that a threshold intensity of stimulation is required for endothelial cell calcium to increase. These techniques can be readily adapted to other vasoactive agents and tissue preparations.
Practical considerations: In working with microiontophoresis to study arteriolar reactivity, several things should be recognized. While it has proven difficult to determine the actual concentration of agonist delivered, stimulus-response curves are reproducible within and between preparations. These can be performed by holding pulse duration constant (e.g., 500 ms) and varying the ejection current (e.g., 250, 500 and 1000 nA; Figure 3). Alternatively, ejection current can be held constant (e.g., 500 nA) and pulse duration varied (e.g., 250, 500 and 1000 ms). For a reference to the actions of a defined agonist concentration, the preparation can be superfused with the appropriate solution5. Because the driving force for solute ejection is electrical charge movement, the agent to be delivered must carry a net charge to be displaced from the micropipette. To ensure that the agent of interest is the primary charge carrier, it is dissolved at high concentration (e.g., 1 M for ACh) to minimize electro-osmosis. When this requires manipulating the pH of the micropipette filling solution, vehicle controls are required to ascertain any nonspecific effects. Appropriate controls should also be performed for the passage of current alone (e.g., using micropipettes filled with isotonic saline). The effective distance for diffusion of the agent from its site of release should be ascertained and is most readily determined empirically by the disappearance of a physiological response (e.g., vasodilation or a rise in intracellular calcium upon ejection of ACh) as the micropipette is positioned at defined distances from the target site. In practice, the effective diffusion distance is greatly influenced by how the tip of the micropipette is positioned in the tissue; e.g. if the tip pressed down into the tissue and its tip is occluded, than ejection is impaired. Excessive connective tissue is particularly troublesome and should be removed from the tissue surface during surgical preparation. Attention should also be given to the possibility of depleting the tip of the designated agent. This is minimized by using relatively short pulses (e.g., ≤ 1 s). With sustained currents (e.g., several seconds), the agonist may be expelled from the tip more rapidly than it can be replaced by diffusion from the bulk filling solution in the micropipette.
Because negligible volume is displaced with microiontophoresis, if one is trying to change the local ionic milieu (e.g., to deliver a depolarizing K+ stimulus), this cannot be effectively accomplished with microiontophoresis but is readily achieved with pressure ejection of bulk fluid having the desired composition. For local stimulation of an arteriole, micropipette tips with internal diameters of 2-3 μm work well with ejection pressure 4-5 psi (28-35 kPa) and pulse duration (e.g., 1 second) controlled with a solenoid valve10. Where sustained delivery of an agent from a micropipette onto a microvessel is required, pressure ejection is preferred using micropipettes of appropriate internal tip diameter (e.g., ˜10 μm)11,12. A hydrostatic column of known height with a stopcock valve provides an inexpensive, well-defined on/off constant pressure head. Flow rates are determined by the inner diameter of the pipette tip and the driving pressure. As always, vehicle controls are essential to exclude nonspecific actions of pressure ejection.