Journal Article10.1039/C7CS00793K
Peptide-based nanoprobes for molecular imaging and disease diagnostics
Pengcheng Zhang,Yonggang Cui,Caleb F. Anderson,Chunli Zhang,Yaping Li,Rongfu Wang,Honggang Cui,Honggang Cui +7 more
153
TL;DR: This review introduces strategies and approaches adopted for the identification of functional peptides in the context of molecular imaging and disease diagnostics, and focuses on the design and construction of PBNs capable of navigating through physiological barriers for targeted delivery and improved specificity and sensitivity in recognizing target biomolecules.
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Abstract: Pathological changes in a diseased site are often accompanied by abnormal activities of various biomolecules in and around the involved cells. Identifying the location and expression levels of these biomolecules could enable early-stage diagnosis of the related disease, the design of an appropriate treatment strategy, and the accurate assessment of the treatment outcomes. Over the past two decades, a great diversity of peptide-based nanoprobes (PBNs) have been developed, aiming to improve the in vitro and in vivo performances of water-soluble molecular probes through engineering of their primary chemical structures as well as the physicochemical properties of their resultant assemblies. In this review, we introduce strategies and approaches adopted for the identification of functional peptides in the context of molecular imaging and disease diagnostics, and then focus our discussion on the design and construction of PBNs capable of navigating through physiological barriers for targeted delivery and improved specificity and sensitivity in recognizing target biomolecules. We highlight the biological and structural roles that low-molecular-weight peptides play in PBN design and provide our perspectives on the future development of PBNs for clinical translation.
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Bio-inspired Surface Imobilization of Hyaluronic Acid on Mondisperse Magnetic Nano-crystals for Targeted Cancer Imaging
이유한,이해신,현택환,Philip B. Messersmith,박태관 +4 more
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Enzyme-Instructed Self-Assembly (EISA) and Hydrogelation of Peptides.
TL;DR: The unique properties and advantages of EISA in preparing biofunctional supramolecular nanomaterials and hydrogels from peptides are highlighted and it was also observed that EISA can kinetically control the peptide folding and morphology and cellular uptake behavior of supramolescular nanmaterials.
256
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