Therapeutic response differences between 2D and 3D tumor models of magnetic hyperthermia

被引:18
|
作者
Gupta, Ruby [1 ]
Sharma, Deepika [1 ]
机构
[1] Inst Nano Sci & Technol, Sect 81, Mohali 140306, Punjab, India
来源
NANOSCALE ADVANCES | 2021年 / 3卷 / 13期
关键词
BLOOD-BRAIN-BARRIER; IRON-OXIDE NANOPARTICLES; IN-VITRO HYPERTHERMIA; HEAT-SHOCK PROTEINS; ON-A-CHIP; EXTRACELLULAR-MATRIX; CELL-CULTURE; HEAT-SHOCK-PROTEIN-70; HSP70; SPHEROID CULTURE; ANIMAL-MODELS;
D O I
10.1039/d1na00224d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Magnetic hyperthermia-based cancer therapy (MHCT) has surfaced as one of the promising techniques for inaccessible solid tumors. It involves generation of localized heat in the tumor tissues on application of an alternating magnetic field in the presence of magnetic nanoparticles (MNPs). Unfortunately, lack of precise temperature and adequate MNP distribution at the tumor site under in vivo conditions has limited its application in the biomedical field. Evaluation of in vitro tumor models is an alternative for in vivo models. However, generally used in vitro two-dimensional (2D) models cannot mimic all the characteristics of a patient's tumor and hence, fail to establish or address the experimental variables and concerns. Considering that three-dimensional (3D) models have emerged as the best possible state to replicate the in vivo conditions successfully in the laboratory for most cell types, it is possible to conduct MHCT studies with higher clinical relevance for the analysis of the selection of magnetic parameters, MNP distribution, heat dissipation, action and acquired thermotolerance in cancer cells. In this review, various forms of 3D cultures have been considered and the successful implication of MHCT on them has been summarized, which includes tumor spheroids, and cultures grown in scaffolds, cell culture inserts and microfluidic devices. This review aims to summarize the contrast between 2D and 3D in vitro tumor models for pre-clinical MHCT studies. Furthermore, we have collated and discussed the usefulness, suitability, pros and cons of these tumor models. Even though numerous cell culture models have been established, further investigations on the new pre-clinical models and selection of best fit model for successful MHCT applications are still necessary to confer a better understanding for researchers.
引用
收藏
页码:3663 / 3680
页数:19
相关论文
共 50 条
  • [11] Magnetic structures of 2D and 3D nanoparticles
    Levy, J. -C. S.
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2015, 373 : 2 - 5
  • [12] 2D and 3D turbulent magnetic reconnection
    Lazarian, A.
    Kowal, G.
    Vishniac, E.
    Kulpa-Dube, K.
    Otmianowska-Mazur, K.
    HIGHLIGHTS OF ASTRONOMY, VOL 15, 2010, 15 : 434 - +
  • [13] Magnetic fields in 2D and 3D sphere
    Cabrerizo, Jose L.
    JOURNAL OF NONLINEAR MATHEMATICAL PHYSICS, 2013, 20 (03) : 440 - 450
  • [14] Understanding differences between combinations of 2D and 3D input and output devices for 3D data visualization
    Wang, Xiyao
    Besancon, Lonni
    Ammi, Mehdi
    Isenberg, Tobias
    INTERNATIONAL JOURNAL OF HUMAN-COMPUTER STUDIES, 2022, 163
  • [15] Understanding differences between combinations of 2D and 3D input and output devices for 3D data visualization
    Wang, Xiyao
    Besançon, Lonni
    Ammi, Mehdi
    Isenberg, Tobias
    International Journal of Human Computer Studies, 2022, 163
  • [16] Autofluorescence imaging captures heterogeneous drug response differences between 2D and 3D breast cancer cultures
    Cannon, T. M.
    Shah, A. T.
    Skala, M. C.
    BIOMEDICAL OPTICS EXPRESS, 2017, 8 (03): : 1911 - 1925
  • [17] On the transition between 2D and 3D dunes
    Venditti, JG
    Church, M
    Bennett, SJ
    SEDIMENTOLOGY, 2005, 52 (06) : 1343 - 1359
  • [18] Distance metric between 3D models and 2D images for recognition and classification
    Basri, R
    Weinshall, D
    IEEE TRANSACTIONS ON PATTERN ANALYSIS AND MACHINE INTELLIGENCE, 1996, 18 (04) : 465 - 470
  • [19] Development of 2D Cell Strain and 3D Tumor Spheroid Models for Precision Medicine
    Pauli, Chantal
    Kossai, Myriam
    Pauwels, Jonathan
    Steklov, Nikolai
    Rao, Rema
    Sboner, Andrea
    Hennrick, Kenneth
    Robinson, Brian
    Mosquera, Juan Miguel
    Beltran, Himisha
    Rubin, Mark
    LABORATORY INVESTIGATION, 2015, 95 : 522A - 522A
  • [20] Development of 2D Cell Strain and 3D Tumor Spheroid Models for Precision Medicine
    Pauli, Chantal
    Kossai, Myriam
    Pauwels, Jonathan
    Steklov, Nikolai
    Rao, Rema
    Sboner, Andrea
    Hennrick, Kenneth
    Robinson, Brian
    Mosquera, Juan Miguel
    Beltran, Himisha
    Rubin, Mark
    MODERN PATHOLOGY, 2015, 28 : 522A - 522A