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NiTi wires are widely used in medical implants but require an initial shape-setting process during device fabrication1. Various devices are made from NiTi, including catheter tubes, guidewires, stone retrieval baskets, filters, needles, dental files, as well as other surgical instruments2. NiTi's biocompatibility, superelasticity, and fatigue resistance make it suitable for these applications. Additionally, it has applications in the automotive and aerospace industries3.
Usage of NiTi is limited due to its high cost and complex processes needed for shape-setting. In the shape-setting process, NiTi structures are traditionally exposed to high temperatures (about 500 °C) while confined in a fixture4. This elevated temperature, as well as the stresses during the shape-setting process, requires a fixture with high mechanical strength. This is why typical fixtures are usually made from metals1. As such, the use of metal fixtures that are typically machined increases costs and poses challenges for the rapid prototyping and testing of NiTi structures. One alternative approach involves the use of reconfigurable fixtures constructed from pins and plates1, which simplifies the process; however, this process has limitations in the shaping of complex geometries. Accordingly, a low-cost, shape-setting process using low-cost materials and manufacturing is highly desirable for research that requires shape-setting NiTi frames.
To address the need for rapid prototyping of NiTi, we recently introduced a protocol utilizing low-cost 3D printed parts and crafted manufacturing for shape-setting NiTi wires5. This method incorporates sacrificial fixtures with a minimal mass. The fixture is shown to be beneficial in securing the NiTi wire during wire forming and shape-setting (heat treatment) processes. Copper tubes were employed as an accessible and low-cost material. It acts as a reinforcing sacrificial fixture and the standard wire bending techniques can be used for shape-setting complex structures. It was observed that the brass tubes could be used as an alternative. Ammonium persulfate was utilized in the final stage for the selective etching of copper, after the annealing process. This step finally released the shape-set NiTi wires. This approach illustrates the innovative use of sacrificial structures as spacers. When this approach is combined with additive manufacturing, the fabrication of complex shapes can be achieved.
In vitro deployment test is among the basic tests for assessing the feasibility of a self-expanding prototype implant, designed to be deployed through a catheter. These tests involve assessing if a self-expanding implant can successfully pass through a sheath/catheter with the required dimension. Such tests have been used in various transcatheter devices or implant prototypes; some examples include left atrial appendage occluders6,7, soft-stents8, NiTi flow diverter9, and NiTi stents10. These works highlight the need for a methodology for rapidly fabricating NiTi frames with complex topologies, which could self-expand through catheters thereby satisfying the preliminary requirements for a transcatheter implant.
The aim of this paper is to outline cost-efficient and well-crafted manufacturing methods, providing a detailed, step-by-step guide through each process. It focuses on demonstrating a variety of self-expanding NiTi wire frames suitable for implants and analyzes key aspects of the method needed to produce complex topologies using affordable and efficient techniques. This paper includes testing these frames and deploying them through a Fr-12 catheter in a benchtop setup that simulates transeptal implant delivery to the atrial septum. This test is similar to basic tests, employed by prior work6,8. This method demonstrated the capability of deployment of a prototype self-expanding frame after passing through a catheter. Ultimately, this methodology can help determine if a certain topology/design for a NiTi frame can meet the preliminary mechanical requirements for deployment through a specific catheter.
While this work focuses on the fabrication of prototypes for NiTi frames and the basic characterization of their topology and conformality, various other characterizations11 and regulatory safety tests12,13 are necessary for the development of implants. Some characterizations include characterization of surface properties/chemistry14, corrosion14, fatigue analysis13, hemocompatibility13, and biocompatibility15.