TY - JOUR
T1 - Novel theranostic nanoplatform for complete mice tumor elimination via MR imaging-guided acid-enhanced photothermo-/chemo-therapy
AU - Li, Bei
AU - Tang, Jie
AU - Chen, Weiyu
AU - Hao, Guanyu
AU - Kurniawan, Nyoman
AU - Gu, Zi
AU - Xu, Zhi Ping
N1 - Funding Information:
The authors acknowledge financial supports the National Health and Medical Research Council of Australia (NHMRC) Early Career Fellowship ( APP1073591 ) and Australian Research Council (ARC) Discovery Project ( DP170104643 ). B. L. gratefully acknowledges the Australian Government Research Training Program Scholarship (RTP) . The authors also appreciate facilities and the technical assistance of the Australian Microscopy & Microanalysis Research Facility at the Centre for Microscopy and Microanalysis (CMM), Australian National Fabrication Facility (Qld Node) and Centre of Advance Imaging, The University of Queensland. The XANES and EXAFS experiments were conducted in 1W1B beamline of Beijing Synchrotron Radiation Facility (BSRF).
Funding Information:
The authors acknowledge financial supports the National Health and Medical Research Council of Australia (NHMRC) Early Career Fellowship (APP1073591) and Australian Research Council (ARC) Discovery Project (DP170104643). B. L. gratefully acknowledges the Australian Government Research Training Program Scholarship (RTP). The authors also appreciate facilities and the technical assistance of the Australian Microscopy & Microanalysis Research Facility at the Centre for Microscopy and Microanalysis (CMM), Australian National Fabrication Facility (Qld Node) and Centre of Advance Imaging, The University of Queensland. The XANES and EXAFS experiments were conducted in 1W1B beamline of Beijing Synchrotron Radiation Facility (BSRF).
Publisher Copyright:
© 2018 Elsevier Ltd
PY - 2018/9
Y1 - 2018/9
N2 - Non-invasive imaging-guided tumor therapy requires new-generation bio-nanomaterials to sensitively respond to the unique tumor microenvironment for precise diagnosis and efficient treatment. Here, we report such a theranostic nanoplatform by engineering defect-rich multifunctional Cu-doped layered double hydroxide (Cu-LDH) nanoparticles, which integrates pH-sensitive T1-magnetic resonance imaging (MRI), acid-enhanced photothermal therapy and heat-facilitated chemotherapy. As characterized with EXAFS and XPS, smaller Cu-LDH nanoparticles possess a considerable amount of defects around Cu cations, an advantageous microstructure that enables a high photothermal conversion of 808 nm NIR laser (53.1%). The exposure of Cu–OH octahedra on the LDH surface makes the photothermal conversion significantly acid-enhanced (53.1% at pH 7.0 vs. 81.9% at pH 5.0). This Cu peculiar microstructure also makes T1-MRI very pH-sensitive, a desirable guide for subsequent tumor photothermal therapy. Combined photothermal therapy and chemotherapy lead to nearly complete elimination of tumor tissues in vivo with a low injection dose of agents. Therefore, this novel defect-rich Cu-LDH nanoplatform is one of promising tumor-specific nanotheranostic agents for non-invasive imaging-guided combinational therapy.
AB - Non-invasive imaging-guided tumor therapy requires new-generation bio-nanomaterials to sensitively respond to the unique tumor microenvironment for precise diagnosis and efficient treatment. Here, we report such a theranostic nanoplatform by engineering defect-rich multifunctional Cu-doped layered double hydroxide (Cu-LDH) nanoparticles, which integrates pH-sensitive T1-magnetic resonance imaging (MRI), acid-enhanced photothermal therapy and heat-facilitated chemotherapy. As characterized with EXAFS and XPS, smaller Cu-LDH nanoparticles possess a considerable amount of defects around Cu cations, an advantageous microstructure that enables a high photothermal conversion of 808 nm NIR laser (53.1%). The exposure of Cu–OH octahedra on the LDH surface makes the photothermal conversion significantly acid-enhanced (53.1% at pH 7.0 vs. 81.9% at pH 5.0). This Cu peculiar microstructure also makes T1-MRI very pH-sensitive, a desirable guide for subsequent tumor photothermal therapy. Combined photothermal therapy and chemotherapy lead to nearly complete elimination of tumor tissues in vivo with a low injection dose of agents. Therefore, this novel defect-rich Cu-LDH nanoplatform is one of promising tumor-specific nanotheranostic agents for non-invasive imaging-guided combinational therapy.
KW - Acid-enhanced photothermal therapy
KW - Cu-layered double hydroxides
KW - pH-sensitive theranostic agents
KW - T–weighted MRI contrast agents
KW - Tumor microenvironment
UR - https://www.scopus.com/pages/publications/85049351908
U2 - 10.1016/j.biomaterials.2018.05.055
DO - 10.1016/j.biomaterials.2018.05.055
M3 - Article
C2 - 29883915
AN - SCOPUS:85049351908
SN - 0142-9612
VL - 177
SP - 40
EP - 51
JO - Biomaterials
JF - Biomaterials
ER -