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工程化卷曲螺旋蛋白用于递送骨关节炎反向激动剂。

Engineered Coiled-Coil Protein for Delivery of Inverse Agonist for Osteoarthritis.

机构信息

Department of Chemical and Biomolecular Engineering , NYU Tandon School of Engineering , Brooklyn , New York 11201 , United States.

Department of Chemistry , New York University , New York , New York 10003 , United States.

出版信息

Biomacromolecules. 2018 May 14;19(5):1614-1624. doi: 10.1021/acs.biomac.8b00158. Epub 2018 Apr 9.

Abstract

Osteoarthritis (OA) results from degenerative and abnormal function of joints, with localized biochemistry playing a critical role in its onset and progression. As high levels of all- trans retinoic acid (ATRA) in synovial fluid have been identified as a contributive factor to OA, the synthesis of de novo antagonists for retinoic acid receptors (RARs) has been exploited to interrupt the mechanism of ATRA action. BMS493, a pan-RAR inverse agonist, has been reported as an effective inhibitor of ATRA signaling pathway; however, it is unstable and rapidly degrades under physiological conditions. We employed an engineered cartilage oligomeric matrix protein coiled-coil (C) protein for the encapsulation, protection, and delivery of BMS493. In this study, we determine the binding affinity of C to BMS493 and the stimulator, ATRA, via competitive binding assay, in which ATRA exhibits approximately 5-fold superior association with C than BMS493. Interrogation of the structure of C indicates that ATRA causes about 10% loss in helicity, while BMS493 did not impact the structure. Furthermore, C self-assembles into nanofibers when bound to BMS493 or ATRA as expected, displaying 11-15 nm in diameter. Treatment of human articular chondrocytes in vitro reveals that C·BMS493 demonstrates a marked improvement in efficacy in reducing the mRNA levels of matrix metalloproteinase-13 (MMP-13), one of the main proteases responsible for the degradation of the extracellular cartilage matrix compared to BMS493 alone in the presence of ATRA, interleukin-1 beta (IL-1β), or IL-1 β together with ATRA. These results support the feasibility of utilizing coiled-coil proteins as drug delivery vehicles for compounds of relatively limited bioavailability for the potential treatment of OA.

摘要

骨关节炎(OA)是由关节退行性和功能异常引起的,局部生物化学在其发病和进展中起着关键作用。由于滑液中全反式视黄酸(ATRA)水平升高被认为是 OA 的一个促成因素,因此已经开发了视黄酸受体(RAR)的新型拮抗剂来阻断 ATRA 作用机制。BMS493 是一种全 RAR 反向激动剂,已被报道为 ATRA 信号通路的有效抑制剂;然而,它在生理条件下不稳定且迅速降解。我们采用工程化的软骨寡聚基质蛋白卷曲螺旋(C)蛋白来封装、保护和递送 BMS493。在这项研究中,我们通过竞争性结合测定法确定了 C 与 BMS493 和激动剂 ATRA 的结合亲和力,其中 ATRA 与 C 的结合亲和力约是 BMS493 的 5 倍。C 的结构分析表明,ATRA 导致约 10%的螺旋性丧失,而 BMS493 对结构没有影响。此外,正如预期的那样,C 与 BMS493 或 ATRA 结合时会自组装成纳米纤维,直径为 11-15nm。体外处理人关节软骨细胞表明,与单独使用 BMS493 相比,C·BMS493 在 ATRA、白细胞介素-1β(IL-1β)或 ATRA 与 IL-1β 共同存在的情况下,能显著降低基质金属蛋白酶-13(MMP-13)的 mRNA 水平,MMP-13 是负责降解细胞外软骨基质的主要蛋白酶之一。这些结果支持了利用卷曲螺旋蛋白作为相对生物利用度有限的化合物的药物递送载体的可行性,用于潜在的 OA 治疗。

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