Babo Pedro S, Pires Ricardo L, Santos Lívia, Franco Albina, Rodrigues Fernando, Leonor Isabel, Reis Rui L, Gomes Manuela E
3B's Research Group-Biomaterials, Biodegradables and Biomimetics, University of Minho, Avepark-Zona Industrial da Gandra, 4806-017 Barco GMR, Portugal.
ICVS/3B's-PT Government Associate Laboratory, University of Minho, Braga/Guimarães, Portugal.
ACS Biomater Sci Eng. 2017 Jul 10;3(7):1359-1369. doi: 10.1021/acsbiomaterials.6b00508. Epub 2017 Jan 10.
The integrity and function of the periodontium can be compromised by traumatic injuries or periodontitis. Currently available clinical therapies are able to stop the progression of periodontitis and allow the healing of periodontal tissue. However, an optimal strategy capable of restoring the anatomy and functionality of the lost periodontal tissue is still to be achieved. Herein is proposed the development of an injectable hydrogel system able to release a growth factors and cells to the periodontal defect. This injectable system is based on a photocrosslinkable hydrogel, prepared from methacrylated hyaluronic acid (me-HA) and incorporating platelet lysate (PL). The delivery of growth factors and cells in situ is expected to enhance regeneration of the periodontium. Various formulations of me-HA containing increasing PL concentrations were studied for achieving the formation of stable photocrosslinkable hydrogels. The produced hydrogels were subsequently characterized to assess mechanical properties, degradation, protein/growth factor release profile, antimicrobial activity and response toward human Periodontal Ligament fibroblasts (hPDLFs). The results demonstrated that it was possible to obtain stable photocrosslinkable hydrogels incorporating different amounts of PL that can be released in a sustained manner. Furthermore, the incorporation of PL improved ( < 0.02) the viscoelastic properties of the hydrogels and enhanced their resilience to the degradation by hyaluronidase (HAase). Additionally, the PL was shown to provide antimicrobial properties. Finally, hPDLFs, either seeded or encapsulated into the developed hydrogels, showed enhanced proliferation over time ( < 0.05), proportionally to the increasing amounts of PL present in the hydrogel formulations.
牙周组织的完整性和功能可能会因创伤性损伤或牙周炎而受到损害。目前可用的临床治疗方法能够阻止牙周炎的进展,并使牙周组织得以愈合。然而,一种能够恢复缺失牙周组织的解剖结构和功能的最佳策略仍有待实现。本文提出开发一种可注射水凝胶系统,该系统能够向牙周缺损部位释放生长因子和细胞。这种可注射系统基于一种可光交联的水凝胶,由甲基丙烯酸化透明质酸(me-HA)制备而成,并包含血小板裂解物(PL)。预计原位递送生长因子和细胞将增强牙周组织的再生。研究了含有不同PL浓度的各种me-HA配方,以实现稳定的可光交联水凝胶的形成。随后对制备的水凝胶进行表征,以评估其机械性能、降解情况、蛋白质/生长因子释放曲线、抗菌活性以及对人牙周膜成纤维细胞(hPDLFs)的反应。结果表明,有可能获得包含不同量PL的稳定的可光交联水凝胶,这些水凝胶能够持续释放。此外,PL的加入改善了(<0.02)水凝胶的粘弹性,并增强了它们对透明质酸酶(HAase)降解的抵抗力。此外,PL还具有抗菌性能。最后,接种或封装在开发的水凝胶中的hPDLFs随着时间的推移显示出增殖增强(<0.05),这与水凝胶配方中PL含量的增加成比例。