$$\rightleftharpoonup{xx}$$
$$\longleftharp{xx}$$,
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Critical steps within the protocol
First, it is important to maintain normothermia from the initiation of anesthesia until full recovery, as there are known effects of both hypothermia17 and hyperthermia18 on the progression of brain injury in both immature and mature animals. Second, while securing the animal and retracting the incision, optimal positioning to monitor breathing and to ensure that the trachea is free of compression is essential. Third, avoid squeezing or stretching the vagus nerve, as this may cause changes in heart rate with vagal stimulation. Fourth, because retraction of the ICA is necessary to control bleeding during the arteriotomy, attention must be paid to the degree of tension during retraction to avoid damaging the artery. If the artery does tear from retraction, or if there is a poor arteriotomy incision, the animal should be excluded from analysis due to the risk of hemorrhage and poor reperfusion.
Modifications and troubleshooting
Using MRI as a guide, the suture length may be optimized to ensure that the silicone tip properly occludes the MCA to create the focal ischemia. If MRI is not available, pups may be euthanized before reperfusion for dissection to visualize the placement of the suture. Adjust the suture length as needed. The pup weight highly correlates with the occluding suture length requirements. The occlusion time can be modified to adjust the degree of injury severity.
In addition, suture shape and length are critical. For P10 Sprague-Dawley and Long Evans rats weighing 19-21 g, 10 mm is the optimal length of insertion in our experience. Further insertion of the occluding suture may result in perforation of the MCA. Furthermore, the consistency in the shape of the occluding filament in each surgery will result in an increased consistency of injury pattern19,20. For this reason, we recommended using professionally-manufactured sutures for this specific purpose. It is also important to note that the injury pattern may differ between practitioners due to seemingly minute differences in technique.
Limitations of the technique
Performing this technique in a small, developing rodent requires significant experience. If performed correctly, the surgeon is able to cause a very consistent injury pattern across animals of different sizes and attain a survival rate greater than 95%. Furthermore, proper surgical tools are essential. Surgical instruments must be well maintained to ensure that all instrument tips approximate properly.
Significance of this technique with respect to existing or alternative methods
While hypoxia-ischemia, or the Rice-Vannucci model2, is most commonly used to study hypoxic-ischemic injury in the developing brain, it is important to note that this model of tMCAO is distinct from HI in that there is transient focal ischemia without global hypoxia, followed by a reperfusion phase when the obstruction is removed and blood flow is restored. This causes a more consistent and reproducible injury and is more clinically translational by causing an injury pattern similar to that seen in full-term neonatal stroke. This enables the study of focal injury patterns and compensatory responses in uninjured tissue.
Future applications after mastering this technique
This model is similar to the most common cause of stroke in human neonates, a transient occlusive thrombus that occurs during the perinatal period11,21. The etiology is not entirely clear and is most likely multifactorial, but it is presumed in most cases to result from emboli passing from the placenta11. In addition, many newborns with presumed perinatal stroke often present with later seizure activity or subtle focal neurological exam abnormalities22. This makes the use of a consistent, translational injury model to identify mechanisms of injury progression and possible therapeutic strategies crucial.