微型模块化软体导管实现胰腺内精准导航与治疗
Moving Beyond Compliance in Soft-Robotic Catheters Through Modularity for Precision Therapies
- 1.47毫米直径的模块化设计,集成感知、驱动与治疗功能
- 在猪模型中实现7.5厘米胰管内自主导航与精准插管
- 支持四单元独立控制,适合复杂内镜手术场景
软体机器人器械可更安全地穿越复杂解剖结构,但临床应用受限于末端功能不足和组织界面实时反馈缺失。现有传感与治疗模块难以满足微创介入中对紧凑性、鲁棒性和适应性的要求。本文提出一种直径1.47毫米的模块化软体导管,集成传感、驱动与治疗功能,保持柔性以实现安全腔内导航。在多种活体环境中验证,重点应用于内镜逆行胰胆管造影(ERCP),这是进入脆弱且难操作的胰腺的关键路径,与胰腺癌等疾病密切相关。该架构支持最多四个独立控制的功能单元,可灵活组合锚定、操控、感知与靶向给药。在活体猪模型中,实现了半自主部署至胰管及7.5厘米内镜导航,当前标准导管无法触及。结合学习模型、磁力驱动、机载形变传感与视觉标记追踪的闭环自主/人机协作系统进一步提升了插管精度。这些成果建立了一个可扩展的多功能软体导管平台,为复杂腔内干预提供新范式,有望降低辐射暴露、缩短培训周期,并加速软体机器人技术的临床转化。
原文摘要 · Abstract (English)
Soft robotic instruments could navigate delicate, tortuous anatomy more safely than rigid tools, but clinical adoption is limited by insufficient tip functionalization and real-time feedback at the tissue interface. Few sensing and therapeutic modules are compact, robust, and adaptable enough to measure, and respond to, subtle physiological cues during intraluminal procedures. We present a 1.47 mm diameter modular soft robotic catheter that integrates sensing, actuation, and therapy while retaining the compliance needed for safe endoluminal navigation. Validated across multiple in vivo settings, we emphasize its utility in endoscopic retrograde cholangiopancreatography (ERCP), a highly technical procedure and a key access route to the pancreas, an organ that is fragile, difficult to instrument, and central to diseases such as pancreatic cancer. Our architecture supports up to four independently controlled functional units, allowing customizable combinations of anchoring, manipulation, sensing, and targeted drug delivery. In a live porcine model, we demonstrate semi-autonomous deployment into the pancreatic duct and 7.5 cm of endoscopic navigation within it, a region currently inaccessible with standard catheters. A closed-loop autonomous/shared-control system that combines a learned model, magnetic actuation, onboard shape sensing, and visual marker tracking further improves cannulation accuracy. Together, these results establish a scalable platform for multifunctional soft robotic catheters and a new paradigm for complex endoluminal interventions, with potential to reduce radiation exposure, shorten training, and accelerate clinical translation of soft robotic technologies.
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