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1.
Biotechnol Prog ; 37(1): e3069, 2021 01.
Artigo em Inglês | MEDLINE | ID: mdl-32829524

RESUMO

Human in vitro hepatic models generate faster drug toxicity data with higher human predictability compared to animal models. However, for long-term studies, current models require the use of serum and 3D architecture, limiting their utility. Maintaining a functional long-term human in vitro hepatic culture that avoids complex structures and serum would improve the value of such systems for preclinical studies. This would also enable a more straightforward integration with current multi-organ devices to study human systemic toxicity to generate an alternative model to chronic animal evaluations. A human primary hepatocyte culture system was characterized for 28 days in 2D and serum-free defined conditions. Under the studied conditions, human primary hepatocytes maintained their characteristic morphology, hepatic markers and functions for 28 days. The acute and chronic administration of known drugs validated the sensitivity of the system for drug testing. This human 2D model represents a realistic system to evaluate hepatic function for long-term drug studies, without the need of animal serum, confounding variable in most models, and with less complexity and resultant cost compared to most 3D models. The defined culture conditions can easily be integrated into complex multi-organ in vitro models for studying systemic effects driven by the liver function for long-term evaluations.


Assuntos
Antineoplásicos/farmacologia , Meios de Cultura Livres de Soro/farmacologia , Citocromo P-450 CYP1A1/metabolismo , Citocromo P-450 CYP3A/metabolismo , Hepatócitos/efeitos dos fármacos , Avaliação Pré-Clínica de Medicamentos , Hepatócitos/enzimologia , Humanos , Técnicas In Vitro
2.
Adv Funct Mater ; 29(8)2019 Feb 21.
Artigo em Inglês | MEDLINE | ID: mdl-35586798

RESUMO

The goal of human-on-a-chip systems is to capture multi-organ complexity and predict the human response to compounds within physiologically relevant platforms. The generation and characterization of such systems is currently a focal point of research given the long-standing inadequacies of conventional techniques for predicting human outcome. Functional systems can measure and quantify key cellular mechanisms that correlate with the physiological status of a tissue, and can be used to evaluate therapeutic challenges utilizing many of the same endpoints used in animal experiments or clinical trials. Culturing multiple organ compartments in a platform creates a more physiologic environment (organ-organ communication). Here is reported a human 4-organ system composed of heart, liver, skeletal muscle and nervous system modules that maintains cellular viability and function over 28 days in serum-free conditions using a pumpless system. The integration of non-invasive electrical evaluation of neurons and cardiac cells and mechanical determination of cardiac and skeletal muscle contraction allows the monitoring of cellular function especially for chronic toxicity studies in vitro. The 28 day period is the minimum timeframe for animal studies to evaluate repeat dose toxicity. This technology could be a relevant alternative to animal testing by monitoring multi-organ function upon long term chemical exposure.

3.
Biomaterials ; 182: 176-190, 2018 11.
Artigo em Inglês | MEDLINE | ID: mdl-30130706

RESUMO

Regulation of cosmetic testing and poor predictivity of preclinical drug studies has spurred efforts to develop new methods for systemic toxicity. Current in vitro assays do not fully represent physiology, often lacking xenobiotic metabolism. Functional human multi-organ systems containing iPSC derived cardiomyocytes and primary hepatocytes were maintained under flow using a low-volume pumpless system in a serum-free medium. The functional readouts for contractile force and electrical conductivity enabled the non-invasive study of cardiac function. The presence of the hepatocytes in the system induced cardiotoxic effects from cyclophosphamide and reduced them for terfenadine due to drug metabolism, as expected from each compound's pharmacology. A computational fluid dynamics simulation enabled the prediction of terfenadine-fexofenadine pharmacokinetics, which was validated by HPLC-MS. This in vitro platform recapitulates primary aspects of the in vivo crosstalk between heart and liver and enables pharmacological studies, involving both organs in a single in vitro platform. The system enables non-invasive readouts of cardiotoxicity of drugs and their metabolites. Hepatotoxicity can also be evaluated by biomarker analysis and change in metabolic function. Integration of metabolic function in toxicology models can improve adverse effects prediction in preclinical studies and this system could also be used for chronic studies as well.


Assuntos
Ciclofosfamida/toxicidade , Hepatócitos/efeitos dos fármacos , Antagonistas não Sedativos dos Receptores H1 da Histamina/toxicidade , Imunossupressores/toxicidade , Dispositivos Lab-On-A-Chip , Miócitos Cardíacos/efeitos dos fármacos , Terfenadina/toxicidade , Cardiotoxicidade/etiologia , Linhagem Celular , Células Cultivadas , Técnicas de Cocultura/instrumentação , Ciclofosfamida/metabolismo , Avaliação Pré-Clínica de Medicamentos/instrumentação , Desenho de Equipamento , Hepatócitos/citologia , Hepatócitos/metabolismo , Antagonistas não Sedativos dos Receptores H1 da Histamina/metabolismo , Humanos , Imunossupressores/metabolismo , Células-Tronco Pluripotentes Induzidas/citologia , Células-Tronco Pluripotentes Induzidas/efeitos dos fármacos , Células-Tronco Pluripotentes Induzidas/metabolismo , Miócitos Cardíacos/citologia , Miócitos Cardíacos/metabolismo , Terfenadina/metabolismo
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