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Designed trimer-mimetic TNF superfamily ligands on self-assembling nanocages

机译:在自组装纳米腔设计中设计的三聚体模拟TNF超家族配体

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Presentation of an endogenous bioactive ligand in its native form is a key factor in controlling and determining its bioactivity, stability, and therapeutic efficacy. In this study, we developed a novel strategy for presenting trimeric ligands on nanocages by designing, optimizing and testing based on the rational design, high-resolution structural analysis and agonistic activity assays in vitro and in vivo. We successfully designed a nanocage that presents the TNF superfamily member, TRAIL (TNF-related apoptosis-inducing ligand) in its native-like trimeric structure. The native structure of TRAIL complexes was mimicked on the resulting trimeric TRAIL-presenting nanocages (TTPNs) by inserting sufficient spacing, determined from three-dimensional structural models, to provide optimal access to the corresponding receptors. The efficacy of TrPNs as an anti-tumor agent was confirmed in preclinical studies, which revealed up to 330-fold increased affinity, 62.5-fold enhanced apoptotic activity, and improved pharmacokinetic characteristics and stability compared with the monomeric form of TRAIL (mTRAIL). In this latter context, TrPNs exhibited greater than 90% stability over 1 mo, whereas similar to 50% of mTRAIL aggregated within 2 d. Consistent with their enhanced stability and ultra-high affinity for the TRAIL receptor, TrPNs effectively induced apoptosis of tumor cells in vivo, leading to effective inhibition of tumor growth. Although TRAIL was used here as a proof-of-concept, all members of the TNF superfamily share the TNF homology domain (THD) and have similar distances between ecto-domain C-termini. Thus, other TNF superfamily ligands could be genetically substituted for the TRAIL ligand on the surface of this bio-mimetic delivery platform. (C) 2018 Elsevier Ltd. All rights reserved.
机译:其天然形式的内源性生物活性配体的呈现是控制和确定其生物活性,稳定性和治疗效果的关键因素。在这项研究中,我们通过在体外和体内的基于合理设计,高分辨率结构分析和激动活性测定的设计,优化和测试,开发了一种用于在纳米腔内呈现三聚物配体的新策略。我们成功地设计了一种纳米病,呈现TNF超家族成员,在其天然三聚体结构中呈现TNF超家族成员,迹线(与TNF相关的凋亡诱导配体)。通过从三维结构模型中确定足够的间隔,通过插入足够的间隔来模拟迹截止络合物的天然结构,以提供对相应受体的最佳访问。在临床前研究证实了TRPNS作为抗肿瘤剂的疗效,呈临床前进的研究证实了至多330倍的亲和力,62.5倍增强的凋亡活性,以及​​与单体形式的TRAIL(MTRAIL)相比的药代动力学特性和稳定性。在后一种背景下,TRPNS在1Mo上显示出大于90%的稳定性,而类似于2天内的50%的MTRAIL聚集。符合其对TRAIL受体的增强稳定性和超高亲和力,TRPNS有效地诱导体内肿瘤细胞凋亡,导致肿瘤生长的有效抑制。虽然这里使用TRAIL作为概念验证,但TNF超家族的所有成员都分享了TNF同源域(THD),并且在各个域C-Termini之间具有类似的距离。因此,其他TNF超家族配体可以在该生物模拟输送平台的表面上遗传地代替TRAIL配体。 (c)2018年elestvier有限公司保留所有权利。

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