4.8 Article

Condensed Clustered Iron Oxides for Ultrahigh Photothermal Conversion and In Vivo Multimodal Imaging

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 25, 页码 29247-29256

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c00908

关键词

photothermal agents; iron oxides; condensed clusters; multimodal imaging; noncovalent functionalization

资金

  1. Ministry of Education, Youth and Sports of the Czech Republic [LM2018124]
  2. ERDF/ESF Nano4Future [CZ. 02.1.01/0.0/0.0/16_019/0000754]
  3. ERDF project Development of preapplied research in nanotechnology and biotechnology [CZ.02.1.01/0.0/0.0/17_048/0007323]
  4. Palacky University [IGA_PrF_2020_034]
  5. Ministry of Education, Youth and Sports of the Czech Republic.Czech-BioImaging [LM2018129]
  6. European Regional Development Fund [CZ.02.01./0.0./0.0./16_013/0001775]
  7. Alexander S. Onassis Public Benefit Foundation [G ZL 037-1/2015-2016]
  8. Hellenic Foundation for Research and Innovation (HFRI)
  9. General Secretariat for Research and Technology (GSRT), under the HFRI PhD Fellowship grant [33, MIS 80198]

向作者/读者索取更多资源

This study reports dramatically improved photothermal conversion of condensed clustered MIONs, achieving ultrahigh efficiency levels, surpassing existing photothermal agents, and demonstrating great potential for applications in the field of nanomedicine.
Magnetic iron oxide nanocrystals (MIONs) are established as potent theranostic nanoplatforms due to their biocompatibility and the multifunctionality of their spin-active atomic framework. Recent insights have also unveiled their attractive near-infrared photothermal properties, which are, however, limited by their low near-infrared absorbance, resulting in noncompetitive photothermal conversion efficiencies (PCEs). Herein, we report on the dramatically improved photothermal conversion of condensed clustered MIONs, reaching an ultrahigh PCE of 71% at 808 nm, surpassing the so-far MION-based photothermal agents and even benchmark near-infrared photothermal nanomaterials. Moreover, their surface passivation is achieved through a simple self-assembly process, securing high colloidal stability and structural integrity in complex biological media. The bifunctional polymeric canopy simultaneously provided binding sites for anchoring additional cargo, such as a strong near-infrared-absorbing and fluorescent dye, enabling in vivo optical and photoacoustic imaging in deep tissues, while the iron oxide core ensures detection by magnetic resonance imaging. In vitro studies also highlighted a synergy-amplified photothermal effect that significantly reduces the viability of A549 cancer cells upon 808 nm laser irradiation. Integration of such-previously elusive-photophysical properties with simple and cost-effective nanoengineering through self-assembly represents a significant step toward sophisticated nanotheranostics, with great potential in the field of nanomedicine.

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