Physical, chemical and biological enhancement in X-ray nanochemistry

被引:16
|
作者
Guo, Ting [1 ]
机构
[1] Univ Calif Davis, Dept Chem, Davis, CA 95616 USA
基金
美国国家科学基金会;
关键词
NANOSCALE ENERGY DEPOSITION; GOLD NANOPARTICLES; DOSE ENHANCEMENT; STRAND BREAKS; DNA; NANOMATERIALS; MECHANISMS; SIMULATION; DEPENDENCE; GEOMETRY;
D O I
10.1039/c9cp03024g
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
X-ray nanochemistry studies how to use nanomaterials and particularly how to create new nanomaterials to increase the effects of X-rays such as chemical reactivity, damage to cells, tumor destruction, scintillation and more. The increase, also called enhancement, can be categorized into several groups, and the current categorization of enhancement follows a natural division of physical, chemical and biological enhancement based on how nanomaterials behave under X-ray irradiation. In physical enhancement, electrons released from atoms in the nanomaterials upon X-ray ionization interact with the nanomaterials and surrounding media to increase the effects. Scintillation also belongs to this category. Chemical enhancement results when reactive oxygen species (ROS) or reactive radical intermediates (RRI) produced in aqueous solutions under X-ray irradiation interact with the surface of catalytic nanomaterials to increase the effects. When the damage of cells is enhanced through biological pathways beyond the abovementioned physical or chemical enhancement due to the presence of nanomaterials under X-ray irradiation, the enhancement is called biological enhancement. Works supporting this systematic categorization, the reported values of these enhancements, and important aspects of the development of enhancement in the X-ray nanochemistry framework are given and discussed in this perspective.
引用
收藏
页码:15917 / 15931
页数:15
相关论文
共 50 条
  • [11] Current Status of Microfocus X-ray Sources for Chemical and Biological Crystallography
    Graf, Juergen
    Ott, Holger
    Stuerzer, Tobias
    Freisz, Severine
    Kleine, Andreas
    Wiesmann, Joerg
    Michaelsen, Carsten
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2016, 72 : S431 - S431
  • [12] The dependence of x-ray absorption spectra upon chemical and physical state
    Hanawalt, JD
    PHYSICAL REVIEW, 1931, 37 (06): : 715 - 726
  • [13] Present uses of x-ray I The physical characteristics of the x-ray
    Van Allen, HW
    BOSTON MEDICAL AND SURGICAL JOURNAL, 1916, 174 : 136 - 138
  • [14] A PHYSICAL MECHANISM OF SENSITIVITY ENHANCEMENT OF ORGANIC X-RAY DETECTORS WITH TUNGSTEN NANOPARTICLES
    Poskus, A.
    Dobuzinskas, R.
    Viliunas, M.
    Arlauskas, K.
    LITHUANIAN JOURNAL OF PHYSICS, 2020, 60 (02): : 96 - 112
  • [15] X-Ray Chemical Analysis
    Jun Kawai
    Analytical Sciences, 2004, 20 (9) : 1245 - 1245
  • [16] THE GEMINI-MONOCEROS X-RAY ENHANCEMENT - A GIANT X-RAY RING
    NOUSEK, JA
    COWIE, LL
    HU, E
    LINDBLAD, CJ
    GARMIRE, GP
    ASTROPHYSICAL JOURNAL, 1981, 248 (01): : 152 - &
  • [17] Vessels Enhancement in X-ray Angiograms
    Tache, Irina Andra
    2015 E-HEALTH AND BIOENGINEERING CONFERENCE (EHB), 2015,
  • [18] The enhancement principle in X-ray photographs
    Bragg, W
    NATURE, 1928, 121 : 327 - 329
  • [19] Resolution Enhancement for X-ray Images
    Zuo, Hongquan
    Zhang, Jun
    MEDICAL IMAGING 2017: IMAGE PROCESSING, 2017, 10133
  • [20] Seeing Ligands on Nanoclusters and in Their Assemblies by X-ray Crystallography: Atomically Precise Nanochemistry and Beyond
    Li, Yingwei
    Jin, Rongchao
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2020, 142 (32) : 13627 - 13644