This manuscript describes useful experimental protocols to delineate DA homeostasis in any mouse model of choice. We provide detailed protocols for measuring levels of DA in brain tissue from mice using HPLC and synaptosomal DA uptake to assess functional DA transport through DAT. The procedures, protocols and limits for the HPLC experiment and synaptosomal DA uptake assay will be elaborated below.
The synaptosomal uptake protocol can provide useful insight to the functionality of DAT. Combined with a surface biotinylation experiment13, knowledge on the total amount, surface level, and functionality of DAT can be obtained. Given the major role of DAT and its influence on DA transmission and its participation in various diseases, it has been a major goal to establish assays that can model DAT function. One of the advantages of the synaptosomal DA uptake experiment is that it can be performed post in vivo manipulations such as upon chemogenetic manipulation as well as different in vivo drug treatments or behavioral training in addition to investigations on genetically modified mice. Drug-treatment can be performed after synaptosomal preparation, instead of in vivo if preferred, making it possible to test the effect of drugs on DAT directly22.
Alternatives to performing synaptosomal DA uptake, is to perform uptake experiments either on DAT transfected cell cultures or in neuronal cultures naturally expressing the transporter. Cell culture assays might be preferred for initial investigations into different modifications of DAT23, whereas neuronal primary cultures with the endogenous transporter may provide a more physiologically trustworthy picture of the transporter function in vivo. Even though neuronal cultures are made directly from animals, there are advantages of using synaptosomes instead. Neuronal cultures are usually made from prenatal or immature neurons, which might influence the function and expression of DAT, whereas synaptosomal preparations represent physiological preparations that can be obtained from adult and even old animals without difficulties6,14.
There are several advantages of using the synaptosomal uptake experiment to investigate function of DAT, but important limitations have to be considered. The synaptosomes have limited viability6. Keeping them on ice is essential to obtain reliable results with low variations. If kept on ice and provided necessary nutrients, purified synaptosomes are viable for hours and take up and release neurotransmitters efficiently15. It is possible to freeze synaptosomes, but the method of freezing is of great importance15. Small variations in the experimental procedure can lead to extensive variations in outcome. Therefore, experimental protocols should be optimized on wild type conditions (e.g. wild type mice) until reproducible results are obtained and then comparisons can be made following various genetic or pharmacological manipulations. Synaptosomal DA uptake assay is an easy, reliable and valid experimental tool to acquire reproducible data with a very low variation in a key parameter in DA homeostasis, DAT functionality (Figure 2A). The limitations are heavily outweighed by the advantages of being able to perform the experiment on preserved nerve endings from adult mice6.
The presently used methods to analyze DA levels in tissue are supported by histochemical methods developed in the 1950's. The significance of developing methods like HPLC to measure DA levels, has been obvious since discovering the substantial decrease of DA in the basal ganglia of Parkinson's patients, thereby founding the principle of treating patients suffering from Parkinson's with L-DOPA24. Since this discovery, more advanced techniques for tissue analysis of DA levels have been developed, but as with any other techniques there are pitfalls. One of the major pitfalls of these techniques is the unstable nature of monoamines (dopamine, noradrenaline and serotonin). How to correctly prepare the tissue preparation to avoid loss of monoamines has been discussed in great detail by Atack et al.25 and will not be discussed further in this article, except to stress the importance of placing the tissue on dry ice directly after dissection and not adding homogenization solution until immediately before the HPLC analysis. From our experience, tissue can be kept at -80 oC for up to one month without any degradation of DA if no solution has been added. Atack et al discuss tissue preparation for methods ranging from the fluoro spectrometric method to advanced HPLC methods allowing a detection limit down to 3 ng/mL tissue25. The method we describe in this paper is based on the same principles. Current advanced technologies enable more refined analyses and detection of DA levels at fmol concentrations. By using a fluorescent HPLC technique, even more robust monoamine analysis can be obtained26. Due to the robustness of the method, HPLC is widely used to obtain information about changes in the levels of monoamines and precursors and metabolites in various brain regions, such as DA in striatum, to validate disease models of Parkinson's in mice, monkeys and minipigs27,28,29. Here, we perform the experiment on tissue from dStr and NAc, but the method is also suitable for other DA-innervated brain areas, such as the prefrontral cortex, hippocampus, substantia nigra and ventral tegmental area 30. In these areas, a more diluted standard sample will be necessary for proper determination of DA levels. Our analysis of DA content show higher levels in striatal subcompartments compared to previous investigations, but this can be explained experimentally. First, we have dissected two parts of the striatum (NAc and dStr) as opposed to investigating the whole striatum, which might account for the difference compared to previous reports12,31. Striatal measurements will have lower DA levels compared to measurements in pure dStr, since levels in NAc are substantially lower compared to dStr. We also have previous studies confirming our DA levels5.
Every assay has its limitations. Assays are developed in an attempt to model and provide information on specific aspects of a cellular process, and they might leave out possible important details or provide a too generalized picture of the real world process. An important limitation to consider when choosing HPLC, is that it only provides a snapshot of the neurotransmitter levels. However, neurotransmitter levels are prone to fluctuate over a day, week or month32,33, which emphasizes the need to obtain samples at a narrow time window, instead of comparing samples taken hours, days or months apart as though they were taken within the same hour. However, HPLC data can provide useful information on DA content and reveal aberrant altered levels such as those demonstrated by the DAT-KO and DAT-KD transgenic mouse lines, where genetic deletion or knock-down of DAT significantly influences DA homeostasis by perturbing DA reuptake. These data furthermore demonstrate that striatal DA pools primarily consist of sequestered DA rather than de-novo synthesized DA and that replenishment of intracellular striatal DA pools is critically dependent on the reuptake process12,34. One important pitfall to consider is that tissue dissection may limit a more specific and accurate description of the DA content in a brain area at any given time. The variation in DA concentration in different brain areas varies greatly. Therefore, the accuracy of dissection is of great importance, which can be improved by dissecting smaller areas to ensure only tissue from the area of interest is included.
A more functional measure of the endogenous DA pools can be analyzed using microdialysis. This has been developed and pioneered by Ungerstedt et al. using the vertical microdialysis probe35. The microdialysis technique makes it possible to measure monoamine concentrations in the brain of freely moving animals and in different brain structures. Another advantage of the microdialysis technique over the tissue sampling through HPLC is the option to measure and follow monoamine changes over a large window of time. This is a considerable advantage compared to sampling of brain tissue where only one time point is possible per animal as in the HPLC protocol. While, microdialysis can provide insight into the release of DA, tissue sampling followed by HPLC will instead reveal changes in the endogenous pools and vesicular DA. To obtain real-time information on DA release kinetics in various brain areas, methods like fast-scan cyclic voltammetry36,37 or high-speed chronoamperometry38 can be implemented.