A microfluidic thyroid-liver platform to assess chemical safety in humans.

3D HepaRG spheroids endocrine disruption hepatic phase I and II enzymes new approach methodologies (NAMs) organs-on-a-chip

Journal

ALTEX
ISSN: 1868-8551
Titre abrégé: ALTEX
Pays: Germany
ID NLM: 100953980

Informations de publication

Date de publication:
2023
Historique:
received: 26 08 2021
accepted: 13 04 2022
entrez: 10 5 2022
pubmed: 11 5 2022
medline: 20 1 2023
Statut: ppublish

Résumé

Thyroid hormones (THs) are crucial regulators of human metabolism and early development. During the safety assessment of plant protection products, the human relevance of chemically induced TH perturbations observed in test animals remains uncertain. European regulatory authorities request follow-up in vitro studies to elucidate human-relevant interferences on thyroid gland function or TH catabolism through hepatic enzyme induction. However, human in vitro assays based on single molecular initiating events poorly reflect the complex TH biology and related liver-thyroid axis. To address this complexity, we present human three-dimensional thyroid and liver organoids with key functions of TH metabolism. The thyroid model resembles in vivo-like follicular architecture and a TSH-dependent triiodothyronine synthesis over 21 days, which is inhibited by methimazole. The HepaRG-based liver model, secreting the critical TH-binding proteins albumin and thyroxine-binding globulin, emulates an active TH catabolism via the formation of glucuronidated and sulfated thyroxine (gT4/sT4). Activation of the nuclear receptors PXR and AHR was demonstrated via the induction of specific CYP isoenzymes by rifampicin, pregnenolone-16α-carbonitrile, and β-naphthoflavone. However, this nuclear receptor activation, assumed to regulate UDP-glucuronosyltransferases and sulfotransferases, appeared to have no effect on gT4 and sT4 formation in this human-derived hepatic cell line model. Finally, established single-tissue models were successfully co-cultured in a perfused two-organ chip for 21 days. In conclusion, this model presents a first step towards a complex multimodular human platform that will help to identify both direct and indirect thyroid disruptors that are relevant from a human safety perspective.

Identifiants

pubmed: 35536601
doi: 10.14573/altex.2108261
doi:

Substances chimiques

Thyroid Hormones 0
Receptors, Cytoplasmic and Nuclear 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

61-82

Auteurs

Julia Kühnlenz (J)

CropScience Division, Toxicology, Bayer S.A.S., Lyon, France.
TissUse GmbH, Berlin, Germany.

Diana Karwelat (D)

Pharmaceuticals Division, Investigational Toxicology, Bayer AG, Berlin, Germany.

Thomas Steger-Hartmann (T)

Pharmaceuticals Division, Investigational Toxicology, Bayer AG, Berlin, Germany.

Marian Raschke (M)

Pharmaceuticals Division, Investigational Toxicology, Bayer AG, Berlin, Germany.

Sophie Bauer (S)

TissUse GmbH, Berlin, Germany.

Özlem Vural (Ö)

Pharmaceuticals Division, Investigational Toxicology, Bayer AG, Berlin, Germany.
Medical Biotechnology, Institute for Biotechnology, Technische Universität Berlin, Berlin, Germany.

Uwe Marx (U)

TissUse GmbH, Berlin, Germany.

Helen Tinwell (H)

CropScience Division, Toxicology, Bayer S.A.S., Lyon, France.

Remi Bars (R)

CropScience Division, Toxicology, Bayer S.A.S., Lyon, France.

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Classifications MeSH