Label-free tomographic imaging of nanodiamonds in living cells

被引:8
|
作者
Ikliptikawati, Dini Kurnia [1 ,2 ]
Hazawa, Masaharu [1 ,2 ]
So, Frederick T-K [3 ]
Terada, Daiki [3 ]
Kobayashi, Akiko [1 ,2 ]
Segawa, Takuya F. [3 ,4 ]
Shirakawa, Masahiro [3 ]
Wong, Richard W. [1 ,2 ]
机构
[1] Kanazawa Univ, Sch Nat Syst, Coll Sci & Engn, Inst Frontier Sci Initiat, Kanazawa, Ishikawa 9201192, Japan
[2] Kanazawa Univ, WPI Nano Life Sci Inst, Kanazawa, Ishikawa 9201192, Japan
[3] Kyoto Univ, Grad Sch Engn, Dept Mol Engn, Nishikyo Ku, Kyoto 6158510, Japan
[4] Swiss Fed Inst Technol, Lab Solid State Phys, CH-8093 Zurich, Switzerland
关键词
Nanoparticles; Nanodiamonds; Refractive-index tomography; Optical diffraction tomography (ODT); In-cell imaging; Nitrogen-vacancy (NV) centers; FLUORESCENT NANODIAMONDS; NANOPARTICLES; DELIVERY;
D O I
10.1016/j.diamond.2021.108517
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Nanodiamonds have acknowledged growing attention due to their facile functionalization, stable fluorescence, low toxicity, and decent biocompatibility. However, despite advances applications of nanodiamonds in drug delivery, catalysis and bio-sensing, laser irradiation still limits long-time tracking of nanodiamonds in living cells due to phototoxicity. Here, using optical diffraction tomography, we performed quantitative morphological and biophysical analysis of living cells via endocytosis or electroporation of nanodiamonds (5 nm, 35 nm, and 100 nm) without the need for a fluorescence label. Optical diffraction tomography is an inexpensive and noninvasive microscopy technique, which images cells and subcellular structures as a function of their refractive index. The laser excitation power is much weaker than in the case of fluorescence microscopy, which reduces phototoxicity. Thanks to the very high refractive index of diamond, nanodiamonds in HeLa cells can be clearly discriminated from cellular structures using optical diffraction tomography. As an application, we show that aggregation and deaggregation of internalized nanodiamonds can be detected via changes in the refractive index distribution of the entire cell. Optical diffraction tomography successively images prevention of in-cell particle aggregation through polyglycerol coating of nanodiamonds. In the case of endocytosis, optical diffraction tomography shows deaggregation of nanodiamonds after a prolonged incubation time. Together, our findings implicate that refractive index measurements are a favorable tool to track nano diamonds, without a fluorescent label, inside living cells. This could be useful to study real-time therapeutic or metabolic activities in living cells using very weak laser irradiation. Finally, the elaborate creation of fluorescent defects in nanodiamonds becomes redundant.
引用
收藏
页数:8
相关论文
共 50 条
  • [21] Label-free quantitative imaging of conjunctival goblet cells
    Park, Noseong
    Jeon, Suil
    Kim, Seonghan
    Lee, Jungbin
    Ryu, Jin Suk
    Choi, Wan Jae
    Yoon, Chang Ho
    Joo, Chulmin
    Kim, Ki Hean
    OCULAR SURFACE, 2025, 36 : 156 - 163
  • [22] Label-free optical imaging of mitochondria in live cells
    Lasne, David
    Blab, Gerhard. A.
    De Giorgi, Francesca
    Ichas, Francois
    Lounis, Brahim
    Cognet, Laurent
    OPTICS EXPRESS, 2007, 15 (21) : 14184 - 14193
  • [23] Label-Free Imaging of Single Proteins Secreted from Living Cells via iSCAT Microscopy
    Gemeinhardt, Andre
    McDonald, Matthew P.
    Koenig, Katharina
    Aigner, Michael
    Mackensen, Andreas
    Sandoghdar, Vahid
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2018, (141):
  • [24] Direct high-resolution label-free imaging of cellular nanostructure dynamics in living cells
    Heo, Chaejeong
    Lee, Sohee
    Lee, Si Young
    Jeong, Mun Seok
    Lee, Young Hee
    Suh, Minah
    JOURNAL OF BIOMEDICAL OPTICS, 2013, 18 (06)
  • [25] Label-Free Imaging of Flap Endonuclease 1 in Living Cells by Assembling Original and Multifunctional Nanoprobe
    Wang, Chenchen
    Zhang, Duoduo
    Tang, Yunfei
    Wei, Wei
    Liu, Yong
    Liu, Songqin
    ACS APPLIED BIO MATERIALS, 2020, 3 (07): : 4573 - 4580
  • [26] It's free imaging - label-free, that is
    Marx, Vivien
    NATURE METHODS, 2019, 16 (12) : 1209 - 1212
  • [27] It’s free imaging — label-free, that is
    Vivien Marx
    Nature Methods, 2019, 16 : 1209 - 1212
  • [28] On-Chip Label-Free Sorting of Living and Dead Cells
    Wang, Guowei
    Li, Chengpan
    Miao, Chunguang
    Li, Shibo
    Qiu, Bensheng
    Ding, Weiping
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2023, 9 (09) : 5430 - 5440
  • [29] Trends in Label-Free Imaging
    Chu, Shi-Wei
    Fujita, Katsumasa
    Kemper, Bjoern
    Pavillon, Nicolas
    Smith, Nicholas I.
    OPTICS COMMUNICATIONS, 2018, 422 : 1 - 2
  • [30] Label-free molecular imaging
    Zhang, Junqi
    Li, Qi
    Fu, Rongxin
    Wang, Tongzhou
    Wang, Ruliang
    Huang, Guoliang
    THREE-DIMENSIONAL AND MULTIDIMENSIONAL MICROSCOPY: IMAGE ACQUISITION AND PROCESSING XXI, 2014, 8949