4D Printing of Bioinspired Absorbable Left Atrial Appendage Occluders: A Proof-of-Concept Study

ACS Appl Mater Interfaces. 2021 Mar 24;13(11):12668-12678. doi: 10.1021/acsami.0c17192. Epub 2021 Jan 4.

Abstract

The significant mismatch of mechanical properties between the implanted medical device and biological tissue is prone to cause wear and even perforation. In addition, the limited biocompatibility and nondegradability of commercial Nitinol-based occlusion devices can easily lead to other serious complications, such as allergy and corrosion. The present study aims to develop a 4D printed patient-specific absorbable left atrial appendage occluder (LAAO) that can match the deformation of left atrial appendage (LAA) tissue to reduce complications. The desirable bioinspired network is explored by iterative optimization to mimic the stress-strain curve of LAA tissue and LAAOs are designed based on the optimal network. In vitro degradation tests are carried out to evaluate the effects of degradation on mechanical properties. In addition, 48 weeks of long-term subcutaneous implantation of the occluder shows favorable biocompatibility, and the 20-cycle compression test demonstrates outstanding durability of LAAO. Besides, a rapid, complete, and remote-controlled 4D transformation process of LAAO is achieved under the trigger of the magnetic field. The deployment of the LAAO in an isolated swine heart initially exhibits its feasibility for transcatheter LAA occlusion. To the best of our knowledge, this is the first demonstration of the 4D printed LAA occlusion device. It is worth noting that the bioinspired design concept is not only applicable to occlusion devices, but also to many other implantable medical devices, which is conducive to reducing complications, and a broad range of appealing application prospects can be foreseen.

Keywords: 4D printing; biodegradable occluders; bioinspired structures; left atrial appendage occluders; shape memory polymers; tailored mechanical properties.

MeSH terms

  • Absorbable Implants*
  • Atrial Appendage / pathology
  • Atrial Appendage / surgery*
  • Biomechanical Phenomena
  • Biomimetic Materials / chemistry
  • Humans
  • Materials Testing
  • Printing, Three-Dimensional
  • Stress, Mechanical
  • Tensile Strength