Department of Bioengineering, University of California, Los Angeles, USA.
Division of Advanced Prosthodontics, University of California, Los Angeles, USA.
Acta Biomater. 2018 May;72:45-54. doi: 10.1016/j.actbio.2018.03.034. Epub 2018 Mar 26.
Although bone morphogenetic protein-2 (BMP-2) is known to be the most potent stimulator available for bone formation, a major barrier to widespread clinical use is its inherent instability and absence of an adequate delivery system. Heparin is being widely used in controlled release systems due to its strong binding ability and protective effect for many growth factor proteins. In this work, we developed a hydrogel surface that can mimic heparin to stabilize BMP-2 and to enhance osteogenesis by introducing heparin-mimicking sulfonated molecules such as poly-vinylsulfonic acid (PVSA) or poly-4-styrenesulfonic acid (PSS), into photo-crosslinkable hydrogel. Bioactivity of BMP-2 was well preserved in the presence of polysulfonates during exposure to various therapeutically relevant stressors. The heparin-mimicking sulfonated hydrogels were effective to bind BMP-2 compared to unmodified MeGC hydrogel and significantly enhanced osteogenic differentiation of encapsulated bone marrow stromal cells (BMSCs) without the addition of exogenous BMP-2. The sulfonated hydrogels were effective in delivering exogenous BMP-2 with reduced initial burst and increased BMSCs osteogenesis induced by BMP-2. These findings suggest a novel hydrogel platform for sequestering and stabilizing BMP-2 to enhance osteoinductive activity in bone tissue engineering.
Although bone morphogenetic protein-2 (BMP-2) is believed to be the most potent cytokine for bone regeneration, its clinical applications require supraphysiological BMP dosage due to its intrinsic instability and fast enzymatic degradation, leading to worrisome side effects. This study demonstrates a novel hydrogel platform that mimics a natural protector of BMPs, heparin, to sequester and stabilize BMP-2 for increased osteoinductive signaling. This study will achieve the stabilization of BMPs with prolonged bioactivity by a synthetic heparin mimic that has not been examined previously. Moreover, the heparin mimetic hydrogel surface can augment endogenous BMP activity by sequestering and localizing the cell-produced BMPs. The additional knowledge gained from this study may suggest basis for future development of material-based therapeutics for tissue engineering.
骨形态发生蛋白 2(BMP-2)是已知的最有效的骨形成刺激物,但由于其内在的不稳定性和缺乏足够的递送系统,其广泛的临床应用受到了限制。肝素由于其对许多生长因子蛋白的强结合能力和保护作用,正在被广泛用于控制释放系统。在这项工作中,我们开发了一种水凝胶表面,可以模拟肝素,通过引入肝素模拟物磺化分子(如聚 4-乙烯基磺酸(PVSA)或聚 4-苯乙烯磺酸(PSS))来稳定 BMP-2 并增强成骨作用,这些磺化分子被引入到光交联水凝胶中。在暴露于各种治疗相关应激物的情况下,多磺酸存在时 BMP-2 的生物活性得到了很好的保留。与未改性的 MeGC 水凝胶相比,肝素模拟磺化水凝胶能有效地结合 BMP-2,并显著增强包封的骨髓基质细胞(BMSCs)的成骨分化,而无需添加外源性 BMP-2。磺化水凝胶能有效地递送外源性 BMP-2,减少初始突释,并增加 BMP-2 诱导的 BMSCs 成骨作用。这些发现为骨组织工程中隔离和稳定 BMP-2 以增强成骨活性提供了一种新的水凝胶平台。
尽管骨形态发生蛋白 2(BMP-2)被认为是最强有力的骨再生细胞因子,但由于其内在的不稳定性和快速的酶降解,其临床应用需要超生理剂量的 BMP-2,这导致了令人担忧的副作用。本研究展示了一种新的水凝胶平台,该平台模拟了 BMPs 的天然保护剂肝素,通过合成的肝素模拟物来隔离和稳定 BMP-2,以增强成骨信号。这项研究将通过以前没有研究过的合成肝素模拟物实现 BMPs 延长生物活性的稳定性。此外,肝素模拟水凝胶表面可以通过隔离和定位细胞产生的 BMPs 来增强内源性 BMP 活性。从这项研究中获得的额外知识可能为未来基于材料的组织工程治疗方法的发展提供依据。