» Articles » PMID: 33780678

Development of Blood Brain Barrier Permeation Prediction Models for Organic and Inorganic Biocidal Active Substances

Overview
Journal Chemosphere
Date 2021 Mar 29
PMID 33780678
Citations 5
Authors
Affiliations
Soon will be listed here.
Abstract

Biocidal products are broadly used in homes and industries. However, the safety of biocidal active substances (BASs) is not yet fully understood. In particular, the neurotoxic action of BASs needs to be studied as diverse epidemiological studies have reported associations between exposure to BASs and neural diseases. In this study, we developed in silico models to predict the blood-brain barrier (BBB) permeation of organic and inorganic BASs. Due to a lack of BBB data for BASs, the chemical space of BASs and BBB dataset were compared in order to select BBB data that were structurally similar to BASs. In silico models to predict log-scaled BBB penetration were developed using support vector regression for organic BASs and multiple linear regression for inorganic BASs. The model for organic BASs was developed with 231 compounds (training set: 153 and test set: 78) and achieved good prediction accuracy on an external test set (R = 0.64), and the model outperformed the model for pharmaceuticals. The model for inorganic BASs was developed with 11 compounds (R = 0.51). Applicability domain (AD) analysis of the models clarified molecular structures reliably predicted by the models. Therefore, the models developed in this study can be used for predicting BBB permeable BASs in human. These models were developed according to the Quantitative Structure-Activity Relationship validation principles proposed by the Organization for Economic Cooperation and Development.

Citing Articles

Systematic Study of Steroid Drugs' Ability to Cross Biomembranes-The Possible Environmental Impact and Health Risks Associated with Exposure During Pregnancy.

Sobanska A, Orlikowska A, Famulska K, Bosnjak L, Bosiljevac D, Rasztawicka A Membranes (Basel). 2025; 15(1).

PMID: 39852245 PMC: 11766822. DOI: 10.3390/membranes15010004.


Copper pyrithione and zinc pyrithione induce cytotoxicity and neurotoxicity in neuronal/astrocytic co-cultured cells via oxidative stress.

Oh H, Kim W Sci Rep. 2023; 13(1):23060.

PMID: 38155222 PMC: 10754844. DOI: 10.1038/s41598-023-49740-8.


A machine learning-based quantitative model (LogBB_Pred) to predict the blood-brain barrier permeability (logBB value) of drug compounds.

Shaker B, Lee J, Lee Y, Yu M, Lee H, Lee E Bioinformatics. 2023; 39(10).

PMID: 37713469 PMC: 10560102. DOI: 10.1093/bioinformatics/btad577.


The validation of predictive potential via the system of self-consistent models: the simulation of blood-brain barrier permeation of organic compounds.

Toropova A, Toropov A, Roncaglioni A, Benfenati E, Leszczynska D, Leszczynski J J Mol Model. 2023; 29(7):218.

PMID: 37382683 DOI: 10.1007/s00894-023-05632-2.


Development of QSAR models to predict blood-brain barrier permeability.

Faramarzi S, Kim M, Volpe D, Cross K, Chakravarti S, Stavitskaya L Front Pharmacol. 2022; 13:1040838.

PMID: 36339562 PMC: 9633177. DOI: 10.3389/fphar.2022.1040838.