Metal Ion/Tannic Acid Assembly as a Versatile Photothermal Platform in Engineering Multimodal Nanotheranostics for Advanced Applications.
basic_science · Level V
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- Record sourced from PubMed, PMID 29578680.
- Also identified by DOI 10.1021/acsnano.8b01456.
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Abstract
This study reports a family of photothermal materials, metal ion/tannic acid assemblies (MITAs). MITAs from Fe<sup>III</sup>, V<sup>III</sup>, and Ru<sup>III</sup> afford excellent photothermal efficiency (η ≈ 40%). Sharply differing from the currently existing photothermal agents, MITAs are highlighted by merits including green synthesis, facile incorporation of diagnostic metal ions, and particularly topology-independent adhesion. Owing to the adhesion nature of MITAs, various kinds of MITA-based nanoengineerings are readily available via the self-adhesion of MITAs onto diverse templates, enabling MITAs well suited as a photothermal platform for versatile combination with other therapy approaches and imaging techniques. As a proof of concept, polymeric/inorganic nanoparticle/nanovesicle-supported Fe<sup>III</sup>-tannic acid (Fe<sup>III</sup>TA) is fabricated. The photothermal effect is shown to be unaffected by the template origin and type and Fe<sup>III</sup>TA thickness on the templates. We validate the potency of nanovesicle-supported Fe<sup>III</sup>TA (PNV@Fe<sup>III</sup>TA) for tumor-specific photoactivated utilizations, including NIR photothermal therapy with complete tumor elimination, photothermal imaging (PTI), and photoacoustic imaging (PAI) in addition to T<sub>1</sub>-MRI imaging. PNV@Fe<sup>III</sup>TA can be simultaneously equipped with functionalities, including T<sub>2</sub>-MRI imaging by additionally doping Mn<sup>II</sup> and NIR fluorescence imaging by encapsulating a hydrophilic NIR fluoroprobe. MITA demonstrates unparalleled superiority as a photothermal platform in engineering multimodal theranostics for advanced applications.