Department of Biomedical Engineering, The City College of New York, Steinman Hall, Room 401, 160 Convent Avenue, New York, NY 10031,
Eur Cell Mater. 2018 May 30;35:300-317. doi: 10.22203/eCM.v035a21.
Back and neck pain are commonly associated with intervertebral disc (IVD) degeneration. Structural augmentation of diseased nucleus pulposus (NP) tissue with biomaterials could restore degeneration-related IVD height loss and degraded biomechanical behaviors; however, effective NP replacement biomaterials are not commercially available. This study developed a novel, crosslinked, dual-polymer network (DPN) hydrogel comprised of methacrylated carboxymethylcellulose (CMC) and methylcellulose (MC), and used in vitro, in situ and in vivo testing to assess its efficacy as an injectable, in situ gelling, biocompatible material that matches native NP properties and restores IVD biomechanical behaviors. Thermogelling MC was required to enable consistent and timely gelation of CMC in situ within whole IVDs. The CMC-MC hydrogel was tuned to match compressive and swelling NP tissue properties. When injected into whole IVDs after discectomy injury, CMC-MC restored IVD height and compressive biomechanical behaviors, including range of motion and neutral zone stiffness, to intact levels. Subcutaneous implantation of the hydrogels in rats further demonstrated good biocompatibility of CMC-MC with a relatively thin fibrous capsule, similar to comparable biomaterials. In conclusion, CMC-MC is an injectable, tunable and biocompatible hydrogel with strong potential to be used as an NP replacement biomaterial since it can gel in situ, match NP properties, and restore IVD height and biomechanical function. Future investigations will evaluate herniation risk under severe loading conditions and assess long-term in vivo performance.
背痛和颈痛通常与椎间盘(IVD)退变有关。用生物材料增强病变的髓核(NP)组织的结构可以恢复与退变相关的 IVD 高度丢失和降解的生物力学行为;然而,有效的 NP 替代生物材料在商业上不可用。本研究开发了一种新型的交联双聚合物网络(DPN)水凝胶,由甲基丙烯酰化羧甲基纤维素(CMC)和甲基纤维素(MC)组成,并进行了体外、原位和体内测试,以评估其作为可注射、原位凝胶化、生物相容性材料的功效,该材料与天然 NP 特性相匹配,并恢复 IVD 生物力学行为。热凝胶化的 MC 是使 CMC 在整个 IVD 内原位进行一致和及时凝胶化所必需的。CMC-MC 水凝胶被调整为匹配压缩和膨胀 NP 组织特性。当在椎间盘切除损伤后注入整个 IVD 时,CMC-MC 恢复了 IVD 的高度和压缩生物力学行为,包括运动范围和中性区刚度,达到完整水平。水凝胶在大鼠皮下的植入进一步证明了 CMC-MC 的良好生物相容性,形成了相对较薄的纤维囊,类似于可比的生物材料。总之,CMC-MC 是一种可注射、可调谐且生物相容的水凝胶,具有作为 NP 替代生物材料的巨大潜力,因为它可以原位凝胶化、匹配 NP 特性,并恢复 IVD 的高度和生物力学功能。未来的研究将评估在严重负荷条件下的疝出风险,并评估长期的体内性能。