Emerging materials and technologies for advancing bioresorbable surgical meshes

被引:13
作者
Heidari, Behzad Shiroud [1 ]
Dodda, Jagan Mohan [2 ]
El-Khordagui, Labiba K. [3 ]
Focarete, Maria Letizia [4 ,5 ,6 ]
Maroti, Peter [7 ,8 ]
Toth, Luca [9 ,10 ]
Pacilio, Serafina [4 ,5 ,6 ,11 ]
El-Habashy, Salma E. [3 ]
Boateng, Joshua [12 ]
Catanzano, Ovidio [13 ]
Sahai, Nitin [7 ,8 ,14 ]
Mou, Lingjun [15 ]
Zheng, Minghao [1 ,16 ]
机构
[1] Univ Western Australia, Ctr Orthopaed Res, Med Sch, Nedlands, WA, Australia
[2] Univ West Bohemia, New Technol Res Ctr NTC, Univerzitni 8, Plzen 30100, Czech Republic
[3] Alexandria Univ, Fac Pharm, Dept Pharmaceut, Alexandria, Egypt
[4] Univ Bologna, Dept Chem Giacomo Ciamician, Bologna, Italy
[5] Univ Bologna, INSTM UdR Bologna, Bologna, Italy
[6] Univ Bologna, Hlth Sci & Technol HST CIRI, Via Tolara 41-E, I-40064 Bologna, Italy
[7] Univ Pecs, Med Sch, 3d Printing & Visualizat Ctr, Pecs, Hungary
[8] Univ Pecs, Med Skills Educ & Innovat Ctr, Pecs, Hungary
[9] Univ Pecs, Inst Translat Med, Med Sch, Pecs, Hungary
[10] Univ Pecs, Med Sch, Dept Neurosurg, Pecs, Hungary
[11] Alma Mater Studiorum Univ Bologna, Dept Biomed & Neuromotor Sci DIBINEM, Bologna, Italy
[12] Univ Greenwich, Fac Engn & Sci, Medway Campus, London, England
[13] CNR, Inst Polymers Composites & Biomat IPCB, Via Campi Flegrei 34, I-80078 Pozzuoli, NA, Italy
[14] North Eastern Hill Univ, Dept Biomed Engn, Shillong, Meghalaya, India
[15] Sir Charles Gairdner Hosp, WA Liver & Kidney Transplant Serv, Nedlands, WA, Australia
[16] Perron Inst Neurol & Translat Sci, Nedlands, WA, Australia
基金
澳大利亚研究理事会;
关键词
Surgical meshes; Clinical complications; Biopolymers; Hydrogels; 4D printing; Hernia; Bone regeneration; Wound healing; POLYPROPYLENE TISSUE MESH; INCISIONAL HERNIA REPAIR; ABDOMINAL-WALL DEFECT; POLY-4-HYDROXYBUTYRATE MESH; ENZYMATIC DEGRADATION; SURFACE MODIFICATION; BONE; BIOMATERIALS; SCAFFOLDS; MEMBRANES;
D O I
10.1016/j.actbio.2024.06.012
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Surgical meshes play a significant role in the treatment of various medical conditions, such as hernias, pelvic floor issues, guided bone regeneration, and wound healing. To date, commercial surgical meshes are typically made of non-absorbable synthetic polymers, notably polypropylene and polytetrafluoroethylene, which are associated with postoperative complications, such as infections. Biological meshes, based on native tissues, have been employed to overcome such complications, though mechanical strength has been a main disadvantage. The right balance in mechanical and biological performances has been achieved by the advent of bioresorbable meshes. Despite improvements, recurrence of clinical complications associated with surgical meshes raises significant concerns regarding the technical adequacy of current materials and designs, pointing to a crucial need for further development. To this end, current research focuses on the design of meshes capable of biomimicking native tissue and facilitating the healing process without post-operative complications. Researchers are actively investigating advanced bioresorbable materials, both synthetic polymers and natural biopolymers, while also exploring the performance of therapeutic agents, surface modification methods and advanced manufacturing technologies such as 4D printing. This review seeks to evaluate emerging biomaterials and technologies for enhancing the performance and clinical applicability of the next-generation surgical meshes. Statement of significance In the ever-transforming landscape of regenerative medicine, the embracing of engineered bioabsorbable surgical meshes stands as a key milestone in addressing persistent challenges and complications associated with existing treatments. The urgency to move beyond conventional non-absorbable meshes, fraught with post-surgery complications, emphasises the necessity of using advanced biomaterials for engineered tissue regeneration. This review critically examines the growing field of absorbable surgical meshes, considering their potential to transform clinical practice. By strategically combining mechanical strength with bioresorbable characteristics, these innovative meshes hold the promise of mitigating complications and improving patient outcomes across diverse medical applications. As we navigate the complexities of modern medicine, this exploration of engineered absorbable meshes emerges as a promising approach, offering an overall perspective on biomaterials, technologies, and strategies adopted to redefine the future of surgical meshes. (c) 2024 The Author(s). Published by Elsevier Ltd on behalf of Acta Materialia Inc. This is an open access article under the CC BY license ( http://creativecommons.org/licenses/by/4.0/ )
引用
收藏
页码:1 / 21
页数:21
相关论文
共 214 条
[1]   Clinical evaluation of a resorbable wrap-around implant as an alternative to nerve repair: A prospective, assessor-blinded, randomised clinical study of sensory, motor and functional recovery after peripheral nerve repair [J].
Aberg, Maria ;
Ljungberg, Christina ;
Edin, Ellenor ;
Millqvist, Helena ;
Nordh, Erik ;
Theorin, Anna ;
Terenghi, Giorgio ;
Wiberg, Mikael .
JOURNAL OF PLASTIC RECONSTRUCTIVE AND AESTHETIC SURGERY, 2009, 62 (11) :1503-1509
[2]  
Abicht B.P., 2022, FOOT ANKLE SURG TECH, V2, P100135, DOI [10.1016/j.fastrc.2021.100135, DOI 10.1016/J.FASTRC.2021.100135]
[3]   Collagen-inducing biologization of prosthetic material for hernia repair: Polypropylene meshes coated with polyP/collagen [J].
Ackermann, Maximilian ;
Wang, Xiaohong ;
Wang, Shunfeng ;
Neufurth, Meik ;
Schroeder, Heinz C. ;
Isemer, Friedrich-Eckart ;
Mueller, Werner E. G. .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2018, 106 (06) :2109-2121
[4]   Clinical Use of GalaFLEX in Facial and Breast Cosmetic Plastic Surgery [J].
Adams, William P., Jr. ;
Toriumi, Dean M. ;
Van Natta, Bruce W. .
AESTHETIC SURGERY JOURNAL, 2016, 36 :S23-S32
[5]   Direct Ink Writing of Biocompatible Nanocellulose and Chitosan Hydrogels for Implant Mesh Matrices [J].
Ajdary, Rubina ;
Reyes, Guillermo ;
Kuula, Jani ;
Raussi-Lehto, Eija ;
Mikkola, Tomi S. ;
Kankuri, Esko ;
Rojas, Orlando J. .
ACS POLYMERS AU, 2022, 2 (02) :97-107
[6]   CLOSURE STRENGTH OF SUTURE TECHNIQUES AND SUTURE MATERIALS [J].
Allaeys, M. ;
Visscher, L. ;
Den Hartog, F. P. J. ;
Tanis, P. J. ;
Jeekel, J. ;
Lange, J. F. ;
Berrevoet, F. ;
Eker, H. H. .
BJS-BRITISH JOURNAL OF SURGERY, 2023, 110
[7]  
Allan B, 2021, TISSUE ENG PT A, V27, P372, DOI [10.1089/ten.tea.2020.0140, 10.1089/ten.TEA.2020.0140]
[8]   Biosynthetic hydrogel scaffolds made from fibrinogen and polyethylene glycol for 3D cell cultures [J].
Almany, L ;
Seliktar, D .
BIOMATERIALS, 2005, 26 (15) :2467-2477
[9]  
[Anonymous], 2004, Medical Textiles (MARCH)., P12
[10]   Membranes for Guided Bone Regeneration: A Road from Bench to Bedside [J].
Aprile, Paola ;
Letourneur, Didier ;
Simon-Yarza, Teresa .
ADVANCED HEALTHCARE MATERIALS, 2020, 9 (19)