体内
细胞外基质
肽
分子成像
蛋白质水解
临床前影像学
材料科学
三维细胞培养
生物物理学
体外
三螺旋
细胞生物学
生物化学
化学
计算生物学
生物
酶
生物技术
立体化学
作者
Lucas L. Bennink,Yang Li,Bumjin Kim,Ik Jae Shin,Boi Hoa San,Maurizio Zangari,Donghoon Yoon,S. Michael Yu
出处
期刊:Biomaterials
[Elsevier BV]
日期:2018-08-21
卷期号:183: 67-76
被引量:75
标识
DOI:10.1016/j.biomaterials.2018.08.039
摘要
Degradation of the extracellular matrix (ECM) is one of the fundamental factors contributing to a variety of life-threatening or disabling pathological conditions. However, a thorough understanding of the degradation mechanism and development of new ECM-targeting diagnostics are severely hindered by a lack of technologies for direct interrogation of the ECM structures at the molecular level. Previously we demonstrated that the collagen hybridizing peptide [CHP, sequence: (GPO)9, O: hydroxyproline] can specifically recognize the degraded and unfolded collagen chains through triple helix formation. Here we show that fluorescently labeled CHP robustly visualizes the pericellular matrix turnover caused by proteolytic migration of cancer cells within 3D collagen culture, without the use of synthetic fluorogenic matrices or genetically modified cells. To facilitate in vivo imaging, we modified the CHP sequence by replacing each proline with a (2S,4S)-4-fluoroproline (f) residue which interferes with the peptide's inherent propensity to self-assemble into homo-triple helices. We show that the new CHP, (GfO)9, tagged with a near-infrared fluorophore, enables in vivo imaging and semi-quantitative assessment of osteolytic bone lesions in mouse models of multiple myeloma. Compared to conventional techniques (e.g., micro-CT), CHP-based imaging is simple and versatile in vitro and in vivo. Therefore, we envision CHP's applications in broad biomedical contexts ranging from studies of ECM biology and drug efficiency to development of clinical molecular imaging.
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