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Updated: Jan 31, 2026

Establishment of a Rat Model of Superior Sagittal-Sinus Occlusion via a Thread-Embolism Method
Published on: July 4, 2021
Development of a Rat Model of Sick Sinus Syndrome Using Pinpoint Press Permeation
Hong-Bin Zhong1,2, Ting-Jun Wang1, Gui-Li Lian1
1Fujian Hypertension Research Institute, The First Affiliated Hospital of Fujian Medical University, Fuzhou, China.
Objective:
Sick sinus syndrome (SSS) is one of the most common causes of cardiac impairment necessitating pacemaker implantation. However, studies of SSS pathogenesis are neither comprehensive nor conclusive due to limited success in achieving a stable rat SSS model. Here, we modified pinpoint press permeation to establish a stable rat SSS model.
Methods:
We randomly assigned 138 male Sprague-Dawley rats into three groups: normal control (n = 8), sham (n = 10), and SSS (n = 120). Postoperatively, the SSS group was further divided into SSSA (n = 40), SSSB (n = 40), and SSSC (n = 40), based on reduction in heart rates by 20-30%, 31-40%, and 41-50%, respectively. We also assessed histomorphological characteristics and hyperpolarization-activated cyclic nucleotide-gated cation channel 4 (HCN4) expression in the sinoatrial node (SAN) at 1, 2, 3, and 4 weeks after surgery.
Results:
Mortality was statistically higher in SSSC compared to SSSA and SSSB (7.5% versus 90.0% and 87.5%; P < 0.05). Heart rate in SSSA was gradually restored to preoperative levels by week 4 after surgery. In contrast, heart rate in SSSB was stable at 2-3 weeks after surgery. However, we observed that the tissues and cells in SAN were severely injured and also found a time-dependent increase in collagen content and atrium myocardium in SSSB. HCN4 expression was significantly reduced at all 4 time points in SSSB, with statistically significant differences among the groups (P < 0.01).
Conclusion:
We successfully developed a rat SSS model that was sustainable for up to 4 weeks.
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