scholarly journals Spatial-temporal analysis of nanoparticles in live tumor spheroids impacted by cell origin and density

2021 ◽  
Author(s):  
Aria Ahmed-Cox ◽  
Elvis Pandzic ◽  
Stuart T Johnston ◽  
Celine Heu ◽  
John B McGhee ◽  
...  

Nanoparticles hold great preclinical promise in cancer therapy but continue to suffer attrition through clinical trials. Advanced, three dimensional (3D) cellular models such as tumor spheroids can recapitulate elements of the tumor environment and are considered the superior model to evaluate nanoparticle designs. However, there is an important need to better understand nanoparticle penetration kinetics and determine how different cell characteristics may influence this nanoparticle uptake. A key challenge with current approaches for measuring nanoparticle accumulation in spheroids is that they are often static, losing spatial and temporal information which may be necessary for effective nanoparticle evaluation in 3D cell models. To overcome this challenge, we developed an analysis platform, termed the Determination of Nanoparticle Uptake in Tumor Spheroids (DONUTS), which retains spatial and temporal information during quantification, enabling evaluation of nanoparticle uptake in 3D tumor spheroids. Outperforming linear profiling methods, DONUTS was able to measure silica nanoparticle uptake to 10 μm accuracy in both isotropic and irregularly shaped cancer cell spheroids. This was then extended to determine penetration kinetics, first by a forward-in-time, center-in-space model, and then by mathematical modelling, which enabled the direct evaluation of nanoparticle penetration kinetics in different spheroid models. Nanoparticle uptake was shown to inversely relate to particle size and varied depending on the cell type, cell stiffness and density of the spheroid model. The automated analysis method we have developed can be applied to live spheroids in situ, for the advanced evaluation of nanoparticles as delivery agents in cancer therapy.

ACS Nano ◽  
2011 ◽  
Vol 5 (6) ◽  
pp. 4434-4447 ◽  
Author(s):  
Huan Meng ◽  
Sui Yang ◽  
Zongxi Li ◽  
Tian Xia ◽  
Justin Chen ◽  
...  

2005 ◽  
Vol 10 (7) ◽  
pp. 705-714 ◽  
Author(s):  
P. Bartholomä ◽  
Impidjati ◽  
A. Reininger-Mack ◽  
Zhihong Zhang ◽  
H. Thielecke ◽  
...  

One major problem in cancer therapy is the immortality of tumor cells showing an active telomerase, which is responsible for the elongation of the telomeres after each cellular division and the knocking down of apoptotic suppressors. A further phenomenon occurring during cancer therapies is the problem of multicellular resistance. To develop therapeutic anticancer approaches inducing cellular apoptosis, gene-modified biological in vitro systems were established and evaluated for drug screening in a capillary system for a real-time, impedimertic monitoring. Multicellular spheroids of the human breast cancer cell line T-47D clone 11 were transfected with 1) antisense caspase-3 cDNA expression vectors for knocking down the main cell death molecule and 2) sense Bcl-xl cDNA expression vectors for overexpressing the apoptotic suppressor, resulting in more aggressive tumor models. These gene-modified tumor spheroids less sensitive for apoptosis were developed for screening drugs such as methotrexate in tumor spheroid–based biosensor systems via impedance spectroscopy. In this report, it is demonstrated that this could successfully exhibit that this real-time monitoring system with tumor spheroids positioned in a capillary system with a 4-electrode configuration is the most efficient high-content screening module for impedimetric measurements of physiological alterations during gene modification and drug application.


2017 ◽  
Vol 53 (71) ◽  
pp. 9878-9881 ◽  
Author(s):  
Jiangping Liu ◽  
Chengzhi Jin ◽  
Bo Yuan ◽  
Yu Chen ◽  
Xingguo Liu ◽  
...  

A series of DCA-Ir(iii) co-drug complexes were demonstrated to act in synergy by sensitizing cancer cell for PDT to achieve cancer-specifically enhanced two-photon PDT in the hypoxic muticellular tumor spheroids.


2015 ◽  
Vol 6 ◽  
Author(s):  
Jessica Hoppstädter ◽  
Michelle Seif ◽  
Anna Dembek ◽  
Christian Cavelius ◽  
Hanno Huwer ◽  
...  

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