Urban Joseph N, Malloy J Scott, Fitzgerald Peyton, Kim Ernest S, Landis Beau, Quinnert Anthony, Dafflisio Gianna, Emani Sitaram M, King Daniel F, Carter David J D, Williams Corin
The Charles Stark Draper Laboratory, Inc., 555 Technology Square, Cambridge, MA 02139 USA.
Boston Children's Hospital, Department of Cardiovascular Surgery, 300 Longwood Ave, Boston, MA 02115 USA.
Acta Biomater. 2025 Jun 15;200:724-736. doi: 10.1016/j.actbio.2025.05.030. Epub 2025 May 10.
Suturing by hand remains the gold standard for the manufacturing of bioprosthetic heart valves (BHVs), which is a time- and skill-intensive process for attaching tissue valve grafts to stents. Suturing becomes even more challenging for the assembly of small devices, such as pediatric BHVs. Here, we report the development of sutureless mechanical adhesion to tissue (MANTIS), a microstructured tissue fastening technology that mediates rapid attachment of rigid materials to compliant biological tissues. Following characterization of BHV tissue wall thickness, we designed 4 distinct MANTIS microfastener geometries that were fabricated in stainless steel foils via a photochemical machining process. Bioinspired microfastener designs mimicked flexure of the praying mantis claw to provide enhanced tissue entrapment upon insertion via controlled buckling. Tissue adhesion testing was performed on individual microfasteners and microfastener arrays, with all 4 MANTIS designs outperforming controls across normal, 0° shear, and 180° peel loading orientations. Overall, MANTIS shows promise as a sutureless adhesive technology for integrating mechanically disparate materials such as tissues and medical device surfaces. STATEMENT OF SIGNIFICANCE: Attaching rigid materials to soft biological tissues is a challenging problem. Current options such as sutures, staples, and chemical adhesives often fail to simultaneously achieve strong, permanent coupling in a rapidly deployable and compact form factor. Here, we designed and characterized a family of microfastener designs which can quickly puncture and interlock with connective tissue fibers to form strong adhesion that can resist multi-directional loads. This approach is reminiscent of VELCRO® and its hook-and-loop principle of operation, though our work also incorporates a "controllable deformation" functionality inspired by the praying mantis claw. We anticipate MANTIS will provide a valuable new solution for a wide range of applications that require reliable and strong attachment of device surfaces to biological tissues.
手工缝合仍然是生物人工心脏瓣膜(BHV)制造的金标准,这是一个将组织瓣膜移植物连接到支架上的耗时且需要技术的过程。对于小型设备(如儿科BHV)的组装,缝合变得更具挑战性。在此,我们报告了无缝合机械组织粘附技术(MANTIS)的开发,这是一种微结构化组织固定技术,可介导刚性材料与顺应性生物组织的快速连接。在对BHV组织壁厚进行表征之后,我们设计了4种不同的MANTIS微紧固件几何形状,这些几何形状通过光化学加工工艺在不锈钢箔中制造。受生物启发的微紧固件设计模仿了螳螂爪的弯曲,以便在插入时通过可控屈曲提供增强的组织捕获。对单个微紧固件和微紧固件阵列进行了组织粘附测试,所有4种MANTIS设计在正常、0°剪切和180°剥离加载方向上均优于对照。总体而言,MANTIS作为一种无缝合粘合技术,有望用于整合机械性质不同的材料,如组织和医疗设备表面。重要性声明:将刚性材料连接到柔软的生物组织上是一个具有挑战性问题。当前的选择(如缝合线、订书钉和化学粘合剂)往往无法以快速可部署且紧凑的外形同时实现牢固、永久的连接。在此,我们设计并表征了一系列微紧固件设计,这些设计可以快速刺穿结缔组织纤维并与之互锁,以形成能够抵抗多方向载荷的强粘附力。这种方法让人联想到VELCRO®及其钩环操作原理,不过我们的工作还融入了受螳螂爪启发的“可控变形”功能。我们预计MANTIS将为广泛的应用提供一种有价值的新解决方案,这些应用需要将设备表面可靠且牢固地连接到生物组织上。