Tissue Specific Fate of Nanomaterials by Advanced Analytical Imaging Techniques - A Review

被引:15
作者
Graham, Uschi M. [1 ,2 ]
Dozier, Alan K. [1 ]
Oberdorster, Gunter [3 ]
Yokel, Robert A. [2 ]
Molina, Ramon [4 ]
Brain, Joseph D. [4 ]
Pinto, Jayant M. [5 ]
Weuve, Jennifer [6 ]
Bennett, David A. [7 ]
机构
[1] NIOSH, Ctr Dis Control & Prevent, 5555 Ridge Ave, Cincinnati, OH 45213 USA
[2] Univ Kentucky, Pharmaceut Sci, 789 South Limestone, Lexington, KY 40506 USA
[3] Univ Rochester, Med Ctr, Sch Med & Dent, 601 Elmwood Ave, Rochester, NY 14642 USA
[4] Harvard TH Chan Sch Publ Hlth, 677 Huntington Ave, Boston, MA 02115 USA
[5] Univ Chicago Med, Dept Surg, 5841 S Maryland Ave, Chicago, IL 60637 USA
[6] Boston Univ, Sch Publ Hlth, Dept Epidemiol, 715 Albany St,Talbot Bldg,T3E & T4E, Boston, MA 02118 USA
[7] Rush Univ, Med Ctr, Dept Neurol Sci, 1725 W Harrison St,Suite 1118, Chicago, IL 60612 USA
基金
美国国家科学基金会; 美国国家卫生研究院; 美国国家环境保护局;
关键词
COGNITIVE DECLINE; AIR-POLLUTION; INTERLABORATORY EVALUATION; ENGINEERED NANOMATERIALS; OXIDATIVE STRESS; PROTEIN NANOCAGE; TERM EXPOSURE; CARBON-BLACK; NANOPARTICLES; MICROSCOPY;
D O I
10.1021/acs.chemrestox.0c00072
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
A variety of imaging and analytical methods have been developed to study nanoparticles in cells. Each has its benefits, limitations, and varying degrees of expense and difficulties in implementation. High-resolution analytical scanning transmission electron microscopy (HRSTEM) has the unique ability to image local cellular environments adjacent to a nanoparticle at near atomic resolution and apply analytical tools to these environments such as energy dispersive spectroscopy and electron energy loss spectroscopy. These tools can be used to analyze particle location, translocation and potential reformation, ion dispersion, and in vivo synthesis of second-generation nanoparticles. Such analyses can provide in depth understanding of tissue-particle interactions and effects that are caused by the environmental "invader" nanoparticles. Analytical imaging can also distinguish phases that form due to the transformation of "invader" nanoparticles in contrast to those that are triggered by a response mechanism, including the commonly observed iron biomineralization in the form of ferritin nanoparticles. The analyses can distinguish ion species, crystal phases, and valence of parent nanoparticles and reformed or in vivo synthesized phases throughout the tissue. This article will briefly review the plethora of methods that have been developed over the last 20 years with an emphasis on the state-of-the-art techniques used to image and analyze nanoparticles in cells and highlight the sample preparation necessary for biological thin section observation in a HRSTEM. Specific applications that provide visual and chemical mapping of the local cellular environments surrounding parent nanoparticles and second-generation phases are demonstrated, which will help to identify novel nanoparticle-produced adverse effects and their associated mechanisms.
引用
收藏
页码:1145 / 1162
页数:18
相关论文
共 88 条
  • [51] Exposure to carbon nanotube material: Aerosol release during the handling of unrefined single-walled carbon nanotube material
    Maynard, AD
    Baron, PA
    Foley, M
    Shvedova, AA
    Kisin, ER
    Castranova, V
    [J]. JOURNAL OF TOXICOLOGY AND ENVIRONMENTAL HEALTH-PART A-CURRENT ISSUES, 2004, 67 (01): : 87 - 107
  • [52] Extrapulmonary transport of MWCNT following inhalation exposure
    Mercer, Robert R.
    Scabilloni, James F.
    Hubbs, Ann F.
    Wang, Liying
    Battelli, Lori A.
    McKinney, Walter
    Castranova, Vincent
    Porter, Dale W.
    [J]. PARTICLE AND FIBRE TOXICOLOGY, 2013, 10
  • [53] Mielanczyk L., 2015, TRANSMISSION ELECT M, P193
  • [54] Synthesis of metal-doped nanoplastics and their utility to investigate fate and behaviour in complex environmental systems
    Mitrano, Denise M.
    Beltzung, Anna
    Frehland, Stefan
    Schmiedgruber, Michael
    Cingolani, Alberto
    Schmidt, Felix
    [J]. NATURE NANOTECHNOLOGY, 2019, 14 (04) : 362 - +
  • [55] Bioavailability, distribution and clearance of tracheally instilled, gavaged or injected cerium dioxide nanoparticles and ionic cerium
    Molina, Ramon M.
    Konduru, Nagarjun V.
    Jimenez, Renato J.
    Pyrgiotakis, Georgios
    Demokritou, Philip
    Wohlleben, Wendel
    Brain, Joseph D.
    [J]. ENVIRONMENTAL SCIENCE-NANO, 2014, 1 (06) : 561 - 573
  • [56] Visualization and quantitative analysis of nanoparticles in the respiratory tract by transmission electron microscopy
    Mühlfeld C.
    Rothen-Rutishauser B.
    Vanhecke D.
    Blank F.
    Gehr P.
    Ochs M.
    [J]. Particle and Fibre Toxicology, 4 (1)
  • [57] The electronic structure at the atomic scale of ultrathin gate oxides
    Muller, DA
    Sorsch, T
    Moccio, S
    Baumann, FH
    Evans-Lutterodt, K
    Timp, G
    [J]. NATURE, 1999, 399 (6738) : 758 - 761
  • [58] Nagashima K, 2011, METHODS MOL BIOL, V697, P83, DOI 10.1007/978-1-60327-198-1_8
  • [59] Toxic potential of materials at the nanolevel
    Nel, A
    Xia, T
    Mädler, L
    Li, N
    [J]. SCIENCE, 2006, 311 (5761) : 622 - 627
  • [60] Oberdorster G., 2000, ACUTE PULMONARY EFFE, P1