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Setting the Stage for Next-generation Risk Assessment with Non-animal Approaches: the EU-ToxRisk Project Experience

Overview
Journal Arch Toxicol
Specialty Toxicology
Date 2020 Sep 5
PMID 32886186
Citations 18
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Abstract

In 2016, the European Commission launched the EU-ToxRisk research project to develop and promote animal-free approaches in toxicology. The 36 partners of this consortium used in vitro and in silico methods in the context of case studies (CSs). These CSs included both compounds with a highly defined target (e.g. mitochondrial respiratory chain inhibitors) as well as compounds with poorly defined molecular initiation events (e.g. short-chain branched carboxylic acids). The initial project focus was on developing a science-based strategy for read-across (RAx) as an animal-free approach in chemical risk assessment. Moreover, seamless incorporation of new approach method (NAM) data into this process (= NAM-enhanced RAx) was explored. Here, the EU-ToxRisk consortium has collated its scientific and regulatory learnings from this particular project objective. For all CSs, a mechanistic hypothesis (in the form of an adverse outcome pathway) guided the safety evaluation. ADME data were generated from NAMs and used for comprehensive physiological-based kinetic modelling. Quality assurance and data management were optimized in parallel. Scientific and Regulatory Advisory Boards played a vital role in assessing the practical applicability of the new approaches. In a next step, external stakeholders evaluated the usefulness of NAMs in the context of RAx CSs for regulatory acceptance. For instance, the CSs were included in the OECD CS portfolio for the Integrated Approach to Testing and Assessment project. Feedback from regulators and other stakeholders was collected at several stages. Future chemical safety science projects can draw from this experience to implement systems toxicology-guided, animal-free next-generation risk assessment.

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References
1.
Nyffeler J, Chovancova P, Dolde X, Holzer A, Purvanov V, Kindinger I . A structure-activity relationship linking non-planar PCBs to functional deficits of neural crest cells: new roles for connexins. Arch Toxicol. 2017; 92(3):1225-1247. DOI: 10.1007/s00204-017-2125-4. View

2.
Boon R, Kumar M, Tricot T, Elia I, Ordovas L, Jacobs F . Amino acid levels determine metabolism and CYP450 function of hepatocytes and hepatoma cell lines. Nat Commun. 2020; 11(1):1393. PMC: 7069944. DOI: 10.1038/s41467-020-15058-6. View

3.
Yang H, Niemeijer M, van de Water B, Beltman J . ATF6 Is a Critical Determinant of CHOP Dynamics during the Unfolded Protein Response. iScience. 2020; 23(2):100860. PMC: 7005498. DOI: 10.1016/j.isci.2020.100860. View

4.
Albrecht W, Kappenberg F, Brecklinghaus T, Stoeber R, Marchan R, Zhang M . Prediction of human drug-induced liver injury (DILI) in relation to oral doses and blood concentrations. Arch Toxicol. 2019; 93(6):1609-1637. DOI: 10.1007/s00204-019-02492-9. View

5.
Fredriksson L, Herpers B, Benedetti G, Matadin Q, Puigvert J, de Bont H . Diclofenac inhibits tumor necrosis factor-α-induced nuclear factor-κB activation causing synergistic hepatocyte apoptosis. Hepatology. 2011; 53(6):2027-41. DOI: 10.1002/hep.24314. View