Electroacupuncture (EA) therapy is a unique method in which acupuncture needles are inserted into the scalp and connected to an electro-machine to stimulate specific points1. Unlike manual stimulation, EA allows better control of stimulation by stabilizing specific frequencies and waveforms to achieve optimal therapeutic effects2. According to a survey, 81.2% of medical institutions in China use EA or manual acupuncture to treat cerebral palsy, neuralgia, facial palsy, and other conditions. Despite its popularity, the specific mechanism of efficacy of EA is still unknown, which has hindered its promotion and application in the rehabilitation treatment of neurological diseases1,2,3. Further research is needed to fully understand the mechanism of EA's effectiveness and to promote its use in the rehabilitation treatment of neurological diseases.
As the influence of acupuncture expands worldwide, many studies have already investigated the mechanisms of EA performed on rodent models, such as rat or mouse models1,2,3. Several issues are often encountered in EA's rodent experiments. The first is how to immobilize rodents without anesthesia, as acupuncture performed on awake subjects is more reflective of clinical practice. In addition, some experiments require animals to be awake to observe treatment effects2,3. Another challenge is accurately locating the acupoints in mice or rats that correspond to those in humans. The precise localization of acupoints in experimental rodents is currently being studied by many scholars4,5. In this protocol, MS6 and ST25 were selected, which have been clearly defined in rodents by the transformation of human anatomical localization. MS6 is commonly used for the treatment of some brain diseases, such as Parkinson's disease6. ST25 is usually used to treat gastrointestinal problems, such as diarrhea7. These two acupoints were chosen primarily to demonstrate how rodents can be effectively immobilized in both supine and prone positions. Moreover, these acupoints have been extensively studied and offer significant insights for research purposes6,7.
The previous method of immobilizing a single rat for experiments is not only time-consuming but also difficult to handle by a single person8. Additionally, due to the non-cooperation of animals, the success rate is relatively low in practice. Therefore, there is a critical need to create an easily established animal model with stable characteristics to improve experiment efficiency. In this article, a 3D printed holder for small animals was introduced that could easily immobilize multiple rodents, leading to motor restriction. The aim of this paper is to administer EA treatments to a batch of young rats or mice, focusing on the strategies for bulk restriction of mice, identification, and stimulation of MS6 and ST25 acupoints.