Literature DB >> 34298988

Biocompatibility and Biological Performance Evaluation of Additive-Manufactured Bioabsorbable Iron-Based Porous Suture Anchor in a Rabbit Model.

Chien-Cheng Tai1, Hon-Lok Lo2, Chen-Kun Liaw3,4,5, Yu-Min Huang3,4, Yen-Hua Huang1,6,7, Kuo-Yi Yang8, Chih-Chieh Huang8, Shin-I Huang8, Hsin-Hsin Shen8, Tzu-Hung Lin9, Chun-Kuan Lu10, Wen-Chih Liu2,11,12, Jui-Sheng Sun13,14, Pei-I Tsai8, Chih-Yu Chen3,4,5.   

Abstract

This study evaluated the biocompatibility and biological performance of novel additive-manufactured bioabsorbable iron-based porous suture anchors (iron_SAs). Two types of bioabsorbable iron_SAs, with double- and triple-helical structures (iron_SA_2_helix and iron_SA_3_helix, respectively), were compared with the synthetic polymer-based bioabsorbable suture anchor (polymer_SAs). An in vitro mechanical test, MTT assay, and scanning electron microscope (SEM) analysis were performed. An in vivo animal study was also performed. The three types of suture anchors were randomly implanted in the outer cortex of the lateral femoral condyle. The ultimate in vitro pullout strength of the iron_SA_3_helix group was significantly higher than the iron_SA_2_helix and polymer_SA groups. The MTT assay findings demonstrated no significant cytotoxicity, and the SEM analysis showed cells attachment on implant surface. The ultimate failure load of the iron_SA_3_helix group was significantly higher than that of the polymer_SA group. The micro-CT analysis indicated the iron_SA_3_helix group showed a higher bone volume fraction (BV/TV) after surgery. Moreover, both iron SAs underwent degradation with time. Iron_SAs with triple-helical threads and a porous structure demonstrated better mechanical strength and high biocompatibility after short-term implantation. The combined advantages of the mechanical superiority of the iron metal and the possibility of absorption after implantation make the iron_SA a suitable candidate for further development.

Entities:  

Keywords:  additive manufacturing (3D printing); bioabsorbable; iron-based; suture anchor

Year:  2021        PMID: 34298988     DOI: 10.3390/ijms22147368

Source DB:  PubMed          Journal:  Int J Mol Sci        ISSN: 1422-0067            Impact factor:   5.923


  1 in total

1.  3D-Printed Double-Helical Biodegradable Iron Suture Anchor: A Rabbit Rotator Cuff Tear Model.

Authors:  Wen-Chih Liu; Chih-Hau Chang; Chung-Hwan Chen; Chun-Kuan Lu; Chun-Hsien Ma; Shin-I Huang; Wei-Lun Fan; Hsin-Hsin Shen; Pei-I Tsai; Kuo-Yi Yang; Yin-Chih Fu
Journal:  Materials (Basel)       Date:  2022-04-11       Impact factor: 3.748

  1 in total

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