Multi-organ system for the evaluation of efficacy and off-target toxicity of anticancer therapeutics.
Christopher W McAleerChristopher J LongDaniel ElbrechtTrevor SasserathL Richard BridgesJohn W RumseyCandace MartinMark SchnepperYing I WangFranz SchulerAdrian B RothChristoph FunkMichael L ShulerJames J HickmanPublished in: Science translational medicine (2020)
A pumpless, reconfigurable, multi-organ-on-a-chip system containing recirculating serum-free medium can be used to predict preclinical on-target efficacy, metabolic conversion, and measurement of off-target toxicity of drugs using functional biological microelectromechanical systems. In the first configuration of the system, primary human hepatocytes were cultured with two cancer-derived human bone marrow cell lines for antileukemia drug analysis in which diclofenac and imatinib demonstrated a cytostatic effect on bone marrow cancer proliferation. Liver viability was not affected by imatinib; however, diclofenac reduced liver viability by 30%. The second configuration housed a multidrug-resistant vulva cancer line, a non-multidrug-resistant breast cancer line, primary hepatocytes, and induced pluripotent stem cell-derived cardiomyocytes. Tamoxifen reduced viability of the breast cancer cells only after metabolite generation but did not affect the vulva cancer cells except when coadministered with verapamil, a permeability glycoprotein inhibitor. Both tamoxifen alone and coadministration with verapamil produced off-target cardiac effects as indicated by a reduction of contractile force, beat frequency, and conduction velocity but did not affect viability. These systems demonstrate the utility of a human cell-based in vitro culture system to evaluate both on-target efficacy and off-target toxicity for parent drugs and their metabolites; these systems can augment and reduce the use of animals and increase the efficiency of drug evaluations in preclinical studies.
Keyphrases
- endothelial cells
- bone marrow
- multidrug resistant
- papillary thyroid
- breast cancer cells
- high glucose
- mesenchymal stem cells
- squamous cell
- cell therapy
- induced pluripotent stem cells
- pluripotent stem cells
- drug resistant
- squamous cell carcinoma
- skeletal muscle
- drug induced
- signaling pathway
- blood pressure
- gram negative
- heart failure
- stem cells
- ms ms
- small molecule
- heart rate
- lymph node metastasis
- escherichia coli
- atrial fibrillation
- smooth muscle
- estrogen receptor
- positive breast cancer