Petromyzontidae‐Biomimetic Multimodal Microneedles‐Integrated Bioelectronic Catheters for Theranostic Endoscopic Surgery

Author:

Huang Shuang1,He Mengyi1,Yao Chuanjie1,Huang Xinshuo1,Ma Deyuan1,Huang Qiqi1,Yang Jingbo1,Liu Fanmao2,Wen Xingqiao3,Wang Ji2,Chen Huijiuan1,Xie Xi12ORCID

Affiliation:

1. State Key Laboratory of Optoelectronic Materials and Technologies Guangdong Province Key Laboratory of Display Material and Technology School of Electronics and Information Technology Sun Yat‐Sen University Guangzhou 510006 China

2. The First Affiliated Hospital of Sun Yat‐Sen University Sun Yat‐Sen University Guangzhou 510080 China

3. The Third Affiliated Hospital of Sun Yat‐Sen University Sun Yat‐Sen University Guangzhou 510630 China

Abstract

AbstractCurrent catheter devices in minimally invasive surgery still possess limited functional options, lacking multimodal integration of both sensing and therapy. Catheter devices usually operate outside the tissue, incapable to detect intra‐tissue biochemical information for accurate localization and assessment of lesions during surgery. Inspired by the feature and functions of Petromyzontidae, here a multimodal core‐shell microneedles‐integrated bioelectronic catheter (MNIBC) for tissue‐penetrating theranostics in endoscopic surgery is developed. The microneedle (MN) device possesses individually addressable functionality at single‐MN tip resolution, enabling multiplex functions (a total of 11 functions distributed in three types of catheters) including biochemical sensing, myoelectric modulation, electroporation, and drug delivery in a submucosal environment. The MNIBC is prepared through hybrid fabrication and dimensionality reduction strategies, where the MN electrodes are functionalized with an MXene‐carbon nanotube (MXene‐CNT)‐based electron mediator, addressing the challenge of reduced electrode sensitivity on ultra‐small MN tip. The functionalities of MNIBC are demonstrated both ex vivo and in vivo on anesthetized rabbits via laparoscopy, simulated cystoscopy, and laparotomy. The MNIBC can effectively detect intra‐tissue biochemical signals in the bladder, and offers localized electroporation and intra‐tissue drug delivery for precise treatments of lesions. The versatile features of the MNIBC present a highly advanced platform for precise surgeries.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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