TY - JOUR
T1 - Low-Cytotoxic Gold-Coated Silver Nanoflowers for Intracellular pH Sensing
AU - Zhang, Qiang
AU - Wen, Han
AU - Watanabe, Kiri
AU - Kotani, Ibuki
AU - Ricci, Monica
AU - Fortuni, Beatrice
AU - Dao, Anh Thi Ngoc
AU - Masuhara, Akito
AU - Hirai, Kenji
AU - Kasai, Hitoshi
AU - Inose, Tomoko
AU - Uji-I, Hiroshi
N1 - Funding Information:
This work was funded by JSPS Kakenhi (JP19KK0136 to T.I., JP18H01948 to K.H., JP17H03003 to H.U., JP19K15388 to A.T.N.D., and JP19H02785 to H.K.); Iketani Science and Technology Foundation and Nakatani Foundation to T.I.; and the Research Program for CORE lab of “Five-star Alliance” in “NJRC Mater. & Dev.” to A.M., T.I, and H.K. The Research Foundation–Flanders (FWO, G0D4519N and G081916N), the KU Leuven Research Fund (C14/15/053 and C14/19/079), and FWO scholarship to B.F. and M.R. (12X1419N and 1S33117N, respectively) are acknowledged. This collaborative work was supported by the JSPS “Core-to-Core Program, A. Advanced Research Networks” and “Network Joint Research Center for Materials and Devices.” Q.Z. acknowledges the China Scholarship Council (CSC) for the doctoral scholarship, Advanced Research Networks, and the Photo-excitonix Project in Hokkaido University. We would like to thank Dr. Hideyuki Mitomo at Hokkaido University for his kind assistance in the dynamic light scattering measurements.
Funding Information:
JSPS Kakenhi (JP19KK0136, JP17H03003, JP18H01948, JP19K15388, and JP19H02785) Iketani Science and Technology Foundation Nakatani Foundation The Research Foundation–Flanders (FWO, G0D4519N and G081916N) The Research Foundation–Flanders scholarship (12X1419N) JSPS ‘Core-to-Core Program, A. Advanced Research Networks’ “Network Joint Research Center for Materials and Devices”
Publisher Copyright:
© 2020 American Chemical Society.
PY - 2020/8/28
Y1 - 2020/8/28
N2 - Intracellular pH affects many biological processes such as apoptosis, proliferation, endocytosis, and multidrug resistance. In view of this, highly sensitive pH sensing in live cells is essential for understanding biological dynamics. Although surface enhanced Raman scattering (SERS) using noble metal nanoparticles functionalized with acidic ligands has been proposed for highly sensitive intracellular pH sensing, the dependence of SERS pH sensitivity on nanoparticle morphology has been overlooked. The apparent dissociation constant (pKa) of acid ligands is known to be sensitive to nanoparticle curvature. Thus, nanoparticle morphology should reflect SERS pH sensitivity. Here, we compared pKa behaviors and SERS pH sensitivities of nearly spherical isotropic and flowerlike anisotropic gold-coated silver nanoparticles (AuAgNPs and AuAgNFs, respectively). We found that the NPs with higher curvature such as AuAgNFs show a narrower pH-sensitive range (pH 5-8) compared to the nearly spherical nanoparticles, providing higher sensitivity to the pH range. Taking advantage of the narrow pH range of AuAgNFs, pH changes are successfully monitored as a function of time in cells treated with and without anticancer drugs, respectively. The results indicate that the pH-sensitive range of SERS-sensing can be tailored by controlling nanoparticle morphology. This tunability is a crucial requirement for pH-sensing applications in various biological systems.
AB - Intracellular pH affects many biological processes such as apoptosis, proliferation, endocytosis, and multidrug resistance. In view of this, highly sensitive pH sensing in live cells is essential for understanding biological dynamics. Although surface enhanced Raman scattering (SERS) using noble metal nanoparticles functionalized with acidic ligands has been proposed for highly sensitive intracellular pH sensing, the dependence of SERS pH sensitivity on nanoparticle morphology has been overlooked. The apparent dissociation constant (pKa) of acid ligands is known to be sensitive to nanoparticle curvature. Thus, nanoparticle morphology should reflect SERS pH sensitivity. Here, we compared pKa behaviors and SERS pH sensitivities of nearly spherical isotropic and flowerlike anisotropic gold-coated silver nanoparticles (AuAgNPs and AuAgNFs, respectively). We found that the NPs with higher curvature such as AuAgNFs show a narrower pH-sensitive range (pH 5-8) compared to the nearly spherical nanoparticles, providing higher sensitivity to the pH range. Taking advantage of the narrow pH range of AuAgNFs, pH changes are successfully monitored as a function of time in cells treated with and without anticancer drugs, respectively. The results indicate that the pH-sensitive range of SERS-sensing can be tailored by controlling nanoparticle morphology. This tunability is a crucial requirement for pH-sensing applications in various biological systems.
KW - cytotoxicity
KW - intracellular pH sensing
KW - nanoflower
KW - on-demand
KW - surface-enhanced Raman scattering
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U2 - 10.1021/acsanm.0c01278
DO - 10.1021/acsanm.0c01278
M3 - Article
AN - SCOPUS:85092235996
SN - 2574-0970
VL - 3
SP - 7643
EP - 7650
JO - ACS Applied Nano Materials
JF - ACS Applied Nano Materials
IS - 8
ER -