The preceding protocol details the methods to simultaneously quantify the flux of substrate through glucose oxidation and fatty acid oxidation in the isolated working rat heart. The measurements can then be superimposed to the recorded cardiac functional parameters to determine the relationship between substrates metabolism and cardiac work under baseline and stress conditions (change in workload, ischemia-reperfusion, etc…). It is also possible to evaluate how the metabolism/contraction relationship is affected by preexisting conditions such as heart failure and diabetes. In addition, the heart of genetically-modified rodents can be used to interrogate the effect of a specific protein on cardiac metabolism and function. Last, the effect of drugs and other circulating factors on these parameters can be individually tested. Because the flux of glucose through glycolysis does not always correlate with the rate of glucose oxidation, it may be informative to follow the rates of glucose flux through both pathways in a single experimental setting.
The rates of glycolysis can be determined by adding [5-3H]glucose to the perfusion buffer, because the release of 3H2O is determined by the activity of the enolase step of the glycolysis20. Alternatively [2-3H]glucose, which leads to the production of 3H2O at the phosphoglucose isomerase step of the glycolytic pathway, can be used to interrogate the rates of glucose uptake by the heart muscle16,17,21. The possibility to choose from multiple radiolabeled tracers to investigate the fate of glucose at different levels of its catabolism is another example of the versatility of the technique. However, because all the flux measurements rely on the quantitative recovery of either 3H2O or 14CO2 from the coronary effluent, only two radiolabeled tracers (one 3H-labeled and the other one labeled with 14C) can be used in the perfusion buffer at a time.
Methodological considerations
There are some inherent limitations to the measurement of cardiac metabolic flux and function using this protocol. Although the use of KH buffer allows for a total control over the composition of the perfusate, the physiological relevance of this experimental setup may be questionable. First, the use of a crystalloid solution over blood is known to negatively impact cardiac hemodynamics and resistance to ischemia22,23. Second, the perfusion buffer we describe here lacks a variety of hormones and nutrients that can directly modulate cardiac metabolism and consequently impact the heart's response to a simulated stress condition. Indeed, the mammalian heart is a metabolic omnivore and can, besides glucose and fatty acids, utilize other substrates to fulfill its energy requirements (lactate, pyruvate, ketone bodies, branched-chain amino acids). There is mounting evidence that some of these substrates play an important role in the metabolic remodeling of the diseased heart24,25. It is entirely possible for the investigator to add these substrates to the perfusion buffer, to modulate their concentration in order to mimic more closely different physiological conditions (e.g. fed state versus fasted state) or disease states, and to follow their rates of oxidation using the appropriate radiolabeled tracers26,27. The metabolism of triglycerides can also be traced, and in that case it is recommended to avoid the use of heparin prior to excision of the heart as this will induce the release of lipoprotein lipase from the endothelium and significantly decrease the extraction of triglyceride from the buffer28. With careful selection of the radiolabeled tracers, the incorporation of radioactivity in various tissue metabolites can also be measured after perfusion to determine parameters such as de novo triglyceride synthesis, glycogen turnover, or rates of protein synthesis18,29,30. In other words, the investigator can work with a wide variety of substrates/hormones combinations and concentrations. The choice of the buffer composition will mostly depend on the objectives of the experiment. Because these controlled buffer conditions create a "simplified" physiological model, results from ex vivo working heart perfusion experiments should be interpreted with caution and if possible the data should be further validated in vivo.
Choice of the anesthetic
The anesthetic used on rats prior to excision of the heart should be carefully selected based on its known effects on cardiopulmonary function and metabolism to ensure that this will not interfere with the experiment to be performed. Both injectable and inhalational anesthetics rapidly induce hyperglycemia and variable degrees of glucose intolerance that may affect cardiac metabolism during perfusion31,32. Compared to other agents, the short-term effects of barbiturates (Pentobarbital and thiobutabarbital) on glucose homeostasis are relatively negligible31. However, intraperitoneal pentobarbital anesthesia prior to heart excision has been shown to decrease cardiac output, impair left ventricular function, and increase myocardial lactate release in an ex vivo protocol of ischemia-reperfusion33. The negative inotropic effect that pentobarbital has on the isolated rat heart is suggested to be caused by tissue accumulation of the drug34. Conversely the use of inhalational anesthetics, which are more rapidly washed out from the cardiac tissue, is associated with better contractile function ex vivo33. Volatile anesthetics may actually provide cardioprotection during ischemia-reperfusion through a mechanism involving the opening of the mitochondrial KATP channels and increased binding of hexokinase to mitochondria32. In summary, the type of anesthetic used in an isolated working heart perfusion protocol is a significant variable in the assessment of both functional and metabolic parameters that may directly impact the outcomes of the experiment. Therefore, the type and the dose of anesthetic used should always be reported in the methods section of an experiment, and these parameters should not be changed between experiments that are meant to be compared.
Radioisotopes in heart perfusion
All flux measurements performed with the preceding protocol are performed in the non-recirculating mode, meaning that the coronary effluent is discarded instead of being returned to the buffer reservoir (Figure 1). The investigator may rather choose to use the perfusion apparatus in the recirculating mode, which has the advantage of requiring a much smaller volume of buffer and hence radioactivity to operate. However, recycling of the coronary effluent compromises the steady state composition of the perfusion buffer through recovery of byproducts originating from the metabolic activity of the heart (including lactate, but also 3H2O and H14CO3-), which complicates the determination of metabolic fluxes and may even alter cardiac function over time35. These issues are prevented in the non-recirculating mode. Due to the amount of radioactivity and to the large volume of perfusion buffer used in a single experiment, the investigator should be particularly cautious when using the working rat heart in metabolic flux analyses. When using a perfusion apparatus for the first time, it is recommended to perform several mock experiments with non-radioactive buffer to become familiar with the different steps of the protocol and with the safety procedures. The mounting of the heart on the cannulas is a particularly sensitive step because it requires establishing a close contact with the apparatus and because buffer may leak or shoot out from one of the heart's severed blood vessels. The perfusion apparatus described by Taegtmeyer and colleagues11 has the advantage of including a Langendorff reservoir that is entirely independent from the rest of the perfusion apparatus, and can therefore be filled with non-radioactive KH buffer to prevent spills of radioactive material during the heart's cannulation. Regardless of the system used, the experiments should be performed in a dedicated area with restricted access. The room should include a sink and a supply of ultrapure water to perform buffer preparation and cleaning of contaminated equipment in the same area. Investigators should work closely with their institution's radiation safety office to establish specific containment, control and decontamination procedures.
Cleaning of the perfusion apparatus
The post experimental cleaning of the perfusion apparatus is a critical step that is too often overlooked and, if not carefully executed, responsible for most of the issues related to poor experimental reproducibility. The nutrient-rich perfusion buffer and the high temperature of the perfusion system provide ideal conditions for bacterial and fungal growth. The utilization of proteins (insulin, BSA) and fatty acids in the perfusion buffer adds another degree of complexity to the cleaning procedure because these compounds will stick to the surface of the tubing and glassware, making them hard to flush out of the apparatus. The use of radioisotopes will also impose additional constraints such as the creation of a dedicated containment area in the laboratory for manipulation of the contaminated equipment and disposal of solid and liquid radioactive wastes. Therefore, the adequate cleaning procedure will mostly depend on both the composition of the perfusion buffer and on the type of perfusion apparatus used. If using a commercial apparatus, check the manufacturer's website or contact the customer service to obtain information on how to perform cleaning without damaging any of the components of the apparatus. In general, all glassware and plastic parts can be washed with a wide range of soaps. Enzyme-active powered detergents are particularly useful to remove fatty acid-BSA residue. Most contaminants will also be removed by running 0.1 M HCl or 0.1 M HNO3 through the apparatus for several hours. We obtain satisfactory cleaning results by flushing the system first with 0.1 M HCl, then with a fresh 1% (w:v) solution of enzyme-active powered detergent prepared in warm water, and finally by rinsing the system with ultrapure water. When using a custom-built perfusion apparatus as the one originally described by Taegtmeyer and colleagues11, it may be easier and more effective to completely dismantle the apparatus at the end of each experimental day. The glassware is cleaned by a 15 min immersion into a concentrated bath of a chromic acid and sulfuric acid mixture. The plastic parts and the PVC tubing can be washed with a residue-free detergent. We found it is actually faster and more reliable to entirely replace the PVC tubing every day, because it limits the manipulation of material contaminated by radiochemicals and because it prevents leaving residues of cleaning agents behind. In any case, the investigator should apply the following rules: 1- Clean the perfusion apparatus and all dirty equipment immediately after completing the perfusion experiment. Waiting will only make the cleaning more difficult and time consuming. 2- Check the circulating bath of the water jacket system regularly for contaminations. Use of a water conditioner will increase the interval between cleaning of the water bath. 3- After cleaning, thoroughly rinse all glassware and tubing with tap water several times and finish rinsing with ultrapure water to remove residues from cleaning agents. 4- Two heart preparations consecutively failing when the dissection was carefully executed and the perfusion buffer carefully prepared are likely to indicate a contamination of the apparatus (either by bacteria or by solvent residues). If this happens, the washing and rinsing procedures should be entirely repeated.
Scaling down to the mouse heart
Although the preceding protocol focuses on the determination of metabolic rates in an isolated working rat heart, the same procedures can be applied to the mouse heart with a few modifications to the perfusion apparatus and data acquisition equipment36. Due to its smaller size the isolated working mouse heart is technically more challenging, but because of its significantly lower flow rate it has the advantage of requiring a much lower volume of perfusion buffer. The large number of genetically modified mouse models that are already available also makes the isolated working mouse heart very attractive to study the function of a single gene product on cardiac metabolic and functional remodeling. However, the recent technological advances in genome editing and a rapidly growing catalog of transgenic and knockout rats are rapidly closing the gap between the two rodent species. Moreover, the rat has long been praised as a superior animal model to investigate cardiovascular disease because its pathophysiology closely mimics human conditions37. For these reasons, we believe that the isolated working rat heart still hold an important place in the modern era of cardiovascular research.