Multi-lineage heart-chip models drug cardiotoxicity and enhances maturation of human stem cell-derived cardiovascular cells.
Maedeh MoznebAmelia JenkinsSamuel SancesStephany PohlmanMichael J WorkmanDylan WestBriana N OndatjeKareem El-GhazawiAmanda WoodburyVeronica J GarciaShachi PatelMadelyn ArztFelipe DezemAlexander H LaperleV Alexandra MoserRitchie HoNur YucerJasmine PlummerRobert J BarrettClive N SvendsenArun SharmaPublished in: Lab on a chip (2024)
Cardiovascular toxicity causes adverse drug reactions and may lead to drug removal from the pharmaceutical market. Cancer therapies can induce life-threatening cardiovascular side effects such as arrhythmias, muscle cell death, or vascular dysfunction. New technologies have enabled cardiotoxic compounds to be identified earlier in drug development. Human induced pluripotent stem cell (hiPSC)-derived cardiomyocytes (CMs) and vascular endothelial cells (ECs) can screen for drug-induced alterations in cardiovascular cell function and survival. However, most existing hiPSC models for cardiovascular drug toxicity utilize two-dimensional, immature cells grown in static culture. Improved in vitro models to mechanistically interrogate cardiotoxicity would utilize more adult-like, mature hiPSC-derived cells in an integrated system whereby toxic drugs and protective agents can flow between hiPSC-ECs that represent systemic vasculature and hiPSC-CMs that represent heart muscle (myocardium). Such models would be useful for testing the multi-lineage cardiotoxicities of chemotherapeutic drugs such as VEGFR2/PDGFR-inhibiting tyrosine kinase inhibitors (VPTKIs). Here, we develop a multi-lineage, fully-integrated, cardiovascular organ-chip that can enhance hiPSC-EC and hiPSC-CM functional and genetic maturity, model endothelial barrier permeability, and demonstrate long-term functional stability. This microfluidic organ-chip harbors hiPSC-CMs and hiPSC-ECs on separate channels that can be subjected to active fluid flow and rhythmic biomechanical stretch. We demonstrate the utility of this cardiovascular organ-chip as a predictive platform for evaluating multi-lineage VPTKI toxicity. This study may lead to the development of new modalities for the evaluation and prevention of cancer therapy-induced cardiotoxicity.
Keyphrases
- drug induced
- endothelial cells
- liver injury
- adverse drug
- high glucose
- high throughput
- stem cells
- induced apoptosis
- cell death
- cell cycle arrest
- oxidative stress
- single cell
- circulating tumor cells
- cancer therapy
- heart failure
- skeletal muscle
- emergency department
- diabetic rats
- drug delivery
- papillary thyroid
- atrial fibrillation
- signaling pathway
- squamous cell carcinoma
- electronic health record
- vascular endothelial growth factor
- endoplasmic reticulum stress
- dna methylation
- cell proliferation
- clinical evaluation
- label free
- cell fate