中文版 | English
Title

SHAPE MEMORY MICROANCHORS WITH MAGNETIC GUIDANCE FOR INTRAVASCULAR MICROEMBOLIZATION

Author
Name pinyin
CHEN Zijian
School number
11855012
Degree
博士
Discipline
生物医学工程
Supervisor
郭琼玉
Mentor unit
生物医学工程系
Publication Years
2023-08-25
Submission date
2023-10-07
University
新加坡国立大学
Place of Publication
新加坡
Abstract

Untethered intelligent microdevices through the circulatory system show great potential for therapy but lack strategies to stably anchor them at the desired site in vascularized tissues to take action. This thesis presents a new strategy to develop an untethered shape memory polymeric microsystem capable of performing radial expansion to precisely lock inside the confined space of microscale vasculatures for biomedical applications.  We refer to this system as a shape memory magnetic microanchor (i.e., SM2A), which requires (1) biocompatibility in selected materials; (2) proper positioning with remote control; and (3) precisely controlled radial expansion with a proper recovery speed at a body-friendly shape recovery temperature. We developed SM2A with tunable shape recovery modes that could be thermally activated within a hyperthermia temperature range (37-45 °C) at a rapid speed to achieve precise microembolization in the vasculature. We designed a facile film sequential stretching processing technique that manipulates the polymer orientation of the shape memory microsystem at distinctive temperature settings to memorize versatile particle shapes. This approach produces purely entropy-driven shape recovery behavior precisely controlled by the polymeric glass transition, and features precisely controlled shape transformations to facilitate endovascular radial expansion. The SM2A system incorporated with superparamagnetic Fe3O4 nanoparticles can be remotely guided by a magnetic field through microscale vascular branches and subsequently undergo on-site radial expansion to anchor at a predetermined location upon shape recovery.  Such a microdevice has the potential to be employed for transcatheter embolization therapies and other biomedical applications that need precise delivery of therapeutic agents to vascularized tissues.

Keywords
Language
English
Training classes
联合培养
Enrollment Year
2018
Year of Degree Awarded
2023-09
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人工提交
Document TypeThesis
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/571607
DepartmentDepartment of Biomedical Engineering
Recommended Citation
GB/T 7714
Chen ZJ. SHAPE MEMORY MICROANCHORS WITH MAGNETIC GUIDANCE FOR INTRAVASCULAR MICROEMBOLIZATION[D]. 新加坡. 新加坡国立大学,2023.
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