Related Experiment Video
Updated: May 6, 2026

The Establishment and Utilization of Patient Derived Xenograft Models of Central Nervous System Metastasis
Published on: May 7, 2021
Engineering High-fidelity Preclinical Mouse Model for Brain Metastasis using Interlock Pulsatile Injection Technique
Yu Bai1, Jialu Xu2, Weihai Ning1
1Department of Neurosurgery, Sanbo Brain Hospital, Capital Medical University.
Abstract:
Brain metastasis remains a devastating clinical problem. A major challenge in brain metastasis research is the lack of high-quality models that accurately recapitulate the metastatic process, thereby enabling mechanistic insights into how cancer cells colonize in the brain. Traditional intracarotid artery injection models of brain metastasis often require permanent ligation of the common carotid artery (CCA), which alters cerebral hemodynamics and compromises the integrity of the blood-brain barrier (BBB). The protocol presents a refined method for establishing a high-fidelity mouse model of brain metastasis. The core innovation involves the Interlock Pulsatile Injection (IPI) technique for tumor cell delivery, followed by microsurgical arterial reconstruction at the puncture site to restore physiological blood flow in the CCA. Compared with the conventional CCA ligation model, the IPI-microsurgical repair approach significantly reduced perioperative mortality (2.86% vs. 25.71%) and increased the rate of brain metastasis establishment (94.12% vs. 65.38%). The IPI technique utilizes a tandem syringe configuration to minimize cell regurgitation during intracarotid injection. After tumor cell infusion, the CCA is meticulously repaired using microsurgical sutures under a stereomicroscope, thereby avoiding permanent occlusion. This preserves the native cerebral hemodynamics and the integrity of the BBB at the time of tumor cell entry, while significantly improving surgical success rates and reducing mortality. The metastatic intracranial lesions are validated by serial bioluminescence imaging and histopathology. The method provides a superior platform for studying the pathophysiology of brain metastasis and for preclinical therapeutic evaluation, thereby recapitulating the metastatic process.
Insights
This study introduces a new mouse model for brain metastasis research using an Interlock Pulsatile Injection (IPI) technique and microsurgical repair. This refined method improves survival and metastasis establishment rates for better cancer colonization studies.
Area of Science:
- Neuroscience
- Oncology
- Surgical Innovation
Background:
- Brain metastasis is a critical clinical challenge with limited high-fidelity research models.
- Existing models often compromise cerebral hemodynamics and blood-brain barrier integrity due to permanent common carotid artery ligation.
Purpose of the Study:
- To develop a refined, high-fidelity mouse model for studying brain metastasis.
- To improve upon traditional models by preserving physiological conditions during tumor cell injection.
Main Methods:
- Utilized the Interlock Pulsatile Injection (IPI) technique for precise tumor cell delivery.
- Implemented microsurgical arterial reconstruction to restore common carotid artery (CCA) blood flow post-injection.
- Avoided permanent CCA ligation to maintain native cerebral hemodynamics and blood-brain barrier (BBB) integrity.
Main Results:
- Significantly reduced perioperative mortality (2.86% vs. 25.71%) compared to conventional models.
- Increased the rate of brain metastasis establishment (94.12% vs. 65.38%).
- Validated intracranial lesions using bioluminescence imaging and histopathology.
Conclusions:
- The IPI-microsurgical repair method offers a superior platform for brain metastasis research.
- This model accurately recapitulates the metastatic process, enabling mechanistic insights and preclinical therapeutic evaluation.
More Related Videos
10:01Modeling Brain Metastasis by Internal Carotid Artery Injection of Cancer Cells
Published on: August 2, 2022
07:42Modelling Brain Metastasis: Standardized Analysis of Metastatic Colonization and Histological Growth Patterns by Stereotactic Intracortical Injection
Published on: January 16, 2026