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Published on: May 22, 2018
A novel microfluidic device capable of maintaining functional thyroid carcinoma specimens ex vivo provides a new drug
Andrew Riley1, Victoria Green1, Ramsah Cheah1
1Faculty of Health Sciences, University of Hull, Kingston upon Hull, HU6 7RX, UK.
Background:
Though the management of malignancies has improved vastly in recent years, many treatment options lack the desired efficacy and fail to adequately augment patient morbidity and mortality. It is increasingly clear that patient response to therapy is unique to each individual, necessitating personalised, or 'precision' medical care. This demand extends to thyroid cancer; ~ 10% patients fail to respond to radioiodine treatment due to loss of phenotypic differentiation, exposing the patient to unnecessary ionising radiation, as well as delaying treatment with alternative therapies.
Methods:
Human thyroid tissue (n = 23, malignant and benign) was live-sliced (5 mm diameter × 350-500 microm thickness) then analysed or incorporated into a microfluidic culture device for 96 h (37 °C). Successful maintenance of tissue was verified by histological (H&E), flow cytometric propidium iodide or trypan blue uptake, immunohistochemical (Ki67 detection/ BrdU incorporation) and functional analysis (thyroxine [T4] output) in addition to analysis of culture effluent for the cell death markers lactate dehydrogenase (LDH) and dead-cell protease (DCP). Apoptosis was investigated by Terminal deoxynucleotidyl transferase dUTP nick end labelling (TUNEL). Differentiation was assessed by evaluation of thyroid transcription factor (TTF1) and sodium iodide symporter (NIS) expression (western blotting).
Results:
Maintenance of gross tissue architecture was observed. Analysis of dissociated primary thyroid cells using flow cytometry both prior to and post culture demonstrated no significant change in the proportion of viable cells. LDH and DCP release from on-chip thyroid tissue indicated that after an initial raised level of release, signifying cellular damage, detectable levels dropped markedly. A significant increase in apoptosis (p < 0.01) was observed after tissue was perfused with etoposide and JNK inhibitor, but not in control tissue incubated for the same time period. No significant difference in Ki-67 positivity or TTF1/NIS expression was detected between fresh and post-culture thyroid tissue samples, moreover BrdU positive nuclei indicated on-chip cellular proliferation. Cultured thyroid explants were functionally viable as determined by production of T4 throughout the culture period.
Conclusions:
The described microfluidic platform can maintain the viability of thyroid tissue slices ex vivo for a minimum of four days, providing a platform for the assessment of thyroid tissue radioiodine sensitivity/adjuvant therapies in real time.
Insights
This study presents a microfluidic platform that successfully maintains thyroid tissue viability for at least four days. This innovation allows for real-time assessment of radioiodine sensitivity and adjuvant therapies for thyroid cancer patients.
Area of Science:
- Oncology
- Biotechnology
- Tissue Engineering
Background:
- Personalized medicine is crucial for cancer treatment efficacy.
- 10% of thyroid cancer patients do not respond to radioiodine therapy.
- Loss of differentiation impacts treatment response and patient outcomes.
Purpose of the Study:
- To develop and validate a microfluidic platform for maintaining thyroid tissue viability ex vivo.
- To assess the potential of this platform for evaluating thyroid cancer treatment responses.
Main Methods:
- Human thyroid tissue slices were cultured in a microfluidic device for 96 hours.
- Tissue viability was assessed using histology, flow cytometry, and functional assays (T4 output).
- Apoptosis, proliferation, and differentiation markers (TTF1, NIS) were analyzed.
Main Results:
- The microfluidic platform maintained tissue architecture and cell viability.
- Functional viability was confirmed by thyroxine (T4) production.
- The platform demonstrated sensitivity to apoptosis-inducing agents and supported proliferation.
Conclusions:
- A microfluidic platform can sustain thyroid tissue viability ex vivo for at least four days.
- This platform enables real-time assessment of radioiodine sensitivity and adjuvant therapies.
- Facilitates personalized treatment strategies for thyroid cancer.
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