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Performance of in silico models for mutagenicity prediction of food contact materials

Van Bossuyt, Melissa
Raitano, Giuseppa
Vanhaecke, Tamara
Benfenati, Emilio
Rogiers, Vera
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Abstract

In silico methodologies, such as (quantitative) structure-activity relationships ((Q)SARs), are

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available to predict a wide variety of toxicological properties and biological activities for

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structurally diverse substances. To obtain insights in the scientific value of these predictions,

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the capacity of the prediction models to generate (sufficiently) reliable results for a particular

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type of compounds needs to be evaluated. In the current study, performance parameters to

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predict the endpoint ‘bacterial mutagenicity’ were calculated for a battery of common

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(Q)SAR tools, namely Toxtree, Derek Nexus, VEGA Consensus and Sarah Nexus. Printed

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paper and board food contact material (FCM) constituents were chosen as study substances

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since many of these lack experimental data, making them an interesting group for in silico

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screening. Accuracy, sensitivity, specificity, positive predictivity, negative predictivity and

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Matthews correlation coefficient for the individual models and for the combination of VEGA

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Consensus and Sarah Nexus were determined and compared. Our results demonstrate that

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performance varies among the four models, but can be increased by applying a combination

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strategy. Furthermore, the importance of the applicability domain is illustrated. Limited

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performance to predict the mutagenic potential of substances that are new to the model (i.e.

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not included in the training set) is reported. In this context, the generally poor sensitivity for

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these new substances is also addressed.

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2018-03-20
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Peer reviewed scientific article
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Keywords
(Q)SAR, food contact materials, In silico, mutagenicity, VALIDATION
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