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Gold-iron oxide nanoparticle: A unique multimodal theranostic approach for thrombosis AITranslate

Sriwijaya University; Griffith University; the University of Queensland; Griffith University; Griffith University;Translational Research Institute; the University of Queensland; Griffith University; La Trobe University; La Trobe University; Monash University; the University of Queensland
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Publisher: Elsevier
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Abstract AITranslate

Highlights • Gold-iron oxide hybrid nanoparticles with absorbence in the near-infrared range showing excellent thrombolysis capability. • The hybrid nanoparticles enabling multi-modal imaging of thrombus via magnetic resonance imaging, photoacoustic imaging and fluorescence imaging. • The nanoparticles exhibiting excellent biocompatibility in vitro and in vivo. Thrombosis is a major concern worldwide as thrombosis-related deaths are attributed to one in five deaths globally. Establishing a clot-targeting theranostic particle for diagnosis and treatment of thrombosis related diseases is crucial to provide rapid life-saving intervention. Herein, we developed activated platelet targeted gold-iron oxide nanoparticles (AuIONP) as a robust and powerful probe facilitating triple imaging modalities, including magnetic resonance imaging (MRI), photoacoustic imaging (PAI), and fluorescence imaging (FLI). Additionally, the antibody tagged AuIONP was utilised to facilitate photothermal thrombolysis, stimulated by the exposure to near-infrared (NIR) laser at 808 nm. In vivo observation of the targeted AuIONP showed a significant increase in MRI T2*-weighted contrast and up to 3-fold more prominent photoacoustic signal and fluorescence intensity compared to the non-targeted group. Upon exposure to NIR laser at 1.5 W/cm2, the localised temperature increase at the clot was observed in the targeted AuIONP treated group, facilitating a significantly higher reduction of thrombus area compared to the non-targeted treated group. Our work offers an innovative theranostic probe with excellent triple modality imaging and thrombolysis. Graphical abstract Download : Download high-res image (206KB) Download : Download full-size image

KeyWords AITranslate

Thrombosis Gold nanoparticle Iron oxide nanoparticle Photoacoustic Imaging Magnetic resonance imaging Photothermal therapy
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Basic Information:

DOI:https://doi.org/10.1016/j.apmt.2023.101750

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Citation Information:

Highlights • Gold-iron oxide hybrid nanoparticles with absorbence in the near-infrared range showing excellent thrombolysis capability. • The hybrid nanoparticles enabling multi-modal imaging of thrombus via magnetic resonance imaging, photoacoustic imaging and fluorescence imaging. • The nanoparticles exhibiting excellent biocompatibility in vitro and in vivo. Thrombosis is a major concern worldwide as thrombosis-related deaths are attributed to one in five deaths globally. Establishing a clot-targeting theranostic particle for diagnosis and treatment of thrombosis related diseases is crucial to provide rapid life-saving intervention. Herein, we developed activated platelet targeted gold-iron oxide nanoparticles (AuIONP) as a robust and powerful probe facilitating triple imaging modalities, including magnetic resonance imaging (MRI), photoacoustic imaging (PAI), and fluorescence imaging (FLI). Additionally, the antibody tagged AuIONP was utilised to facilitate photothermal thrombolysis, stimulated by the exposure to near-infrared (NIR) laser at 808 nm. In vivo observation of the targeted AuIONP showed a significant increase in MRI T2*-weighted contrast and up to 3-fold more prominent photoacoustic signal and fluorescence intensity compared to the non-targeted group. Upon exposure to NIR laser at 1.5 W/cm2, the localised temperature increase at the clot was observed in the targeted AuIONP treated group, facilitating a significantly higher reduction of thrombus area compared to the non-targeted treated group. Our work offers an innovative theranostic probe with excellent triple modality imaging and thrombolysis. Graphical abstract Download : Download high-res image (206KB) Download : Download full-size image

quote

GB/T 7714-2015 [1] Najma Annuria Fithri, Yuao Wu, Gary Cowin, et al. Applied Materials Today, 2023(31). DOI:10.1016/j.apmt.2023.101750.
MLA [1] Najma Annuria Fithri, et al., Applied Materials Today, no. 31, 2023, https://doi.org/10.1016/j.apmt.2023.101750.
APA [1] Najma Annuria Fithri, Yuao Wu, Gary Cowin, Fahima Akther, Huong D.N. Tran, Brian Tse, Nicholas Westra van Holthe, Shehzahdi S. Moonshi, Karlheinz Peter, Xiaowei Wang, Nghia P. Truong, & Hang Thu Ta. (2023). Applied Materials Today(31). https://doi.org/10.1016/j.apmt.2023.101750
IEEE [1] Najma Annuria Fithri, Yuao Wu, Gary Cowin, Fahima Akther, Huong D.N. Tran, Brian Tse, Nicholas Westra van Holthe, Shehzahdi S. Moonshi, Karlheinz Peter, Xiaowei Wang, Nghia P. Truong, and Hang Thu Ta, Applied Materials Today, no. 31, 2023, doi: 10.1016/j.apmt.2023.101750. keywords: {Thrombosis;Gold nanoparticle;Iron oxide nanoparticle;Photoacoustic Imaging;Magnetic resonance imaging;Photothermal therapy}