Henry Nina, Clouet Johann, Fragale Audrey, Griveau Louise, Chédeville Claire, Véziers Joëlle, Weiss Pierre, Le Bideau Jean, Guicheux Jérôme, Le Visage Catherine
a INSERM, UMRS 1229, RMeS "Regenerative Medicine and Skeleton" , Team STEP "Skeletal Physiopathology and Joint Regenerative Medicine" , Nantes , France.
b Institut des Matériaux Jean Rouxel (IMN) , Université de Nantes, CNRS , Nantes , France.
Drug Deliv. 2017 Nov;24(1):999-1010. doi: 10.1080/10717544.2017.1340362.
Discogenic low back pain is considered a major health concern and no etiological treatments are today available to tackle this disease. To clinically address this issue at early stages, there is a rising interest in the stimulation of local cells by in situ injection of growth factors targeting intervertebral disc (IVD) degenerative process. Despite encouraging safety and tolerability results in clinic, growth factors efficacy may be further improved. To this end, the use of a delivery system allowing a sustained release, while protecting growth factors from degradation appears of particular interest. We propose herein the design of a new injectable biphasic system, based on the association of pullulan microbeads (PMBs) into a cellulose-based hydrogel (Si-HPMC), for the TGF-β1 and GDF-5 growth factors sustained delivery. We present for the first time the design and mechanical characterization of both the PMBs and the called biphasic system (PMBs/Si-HPMC). Their loading and release capacities were also studied and we were able to demonstrate a sustained release of both growth factors, for up to 28 days. Noteworthy, the growth factors biological activity on human cells was maintained. Altogether, these data suggest that this PMBs/Si-HPMC biphasic system may be a promising candidate for the development of an innovative bioactive delivery system for IVD regenerative medicine.
椎间盘源性下腰痛被认为是一个重大的健康问题,目前尚无针对该疾病的病因治疗方法。为了在早期临床解决这一问题,通过原位注射针对椎间盘(IVD)退变过程的生长因子来刺激局部细胞的研究兴趣日益浓厚。尽管在临床上取得了令人鼓舞的安全性和耐受性结果,但生长因子的疗效仍可进一步提高。为此,使用一种能够实现持续释放、同时保护生长因子不被降解的递送系统显得尤为重要。我们在此提出一种新型可注射双相系统的设计,该系统基于将支链淀粉微珠(PMB)与纤维素基水凝胶(Si-HPMC)相结合,用于转化生长因子-β1(TGF-β1)和生长分化因子-5(GDF-5)生长因子的持续递送。我们首次展示了PMB和所谓的双相系统(PMB/Si-HPMC)的设计及力学特性。还研究了它们的负载和释放能力,并且我们能够证明两种生长因子均可实现长达28天的持续释放。值得注意的是,生长因子对人细胞的生物学活性得以维持。总体而言,这些数据表明,这种PMB/Si-HPMC双相系统可能是用于IVD再生医学创新生物活性递送系统开发的一个有前景的候选者。