The nematode Caenorhabditis elegans has a cationic amphiphilic drug (CAD) defense system

Cationic Amphiphilic Drugs (CADs) severely disrupt lysosomal function, which leads to a cellular pathology in humans characterized by excess phospholipids called phospholipidosis. Through a forward genetic screen and mining of published datasets, we discovered that CADs induce the expression of the CYP-35B family of cytochrome P450s and the PGP-13 p-glycoprotein pump via the nuclear receptors NHR-70 and NHR-107 in the nematode C. elegans . A pgp-13 fluorescent reporter revealed hundreds of human drugs that up-regulate the CAD defense system in vivo. Chemoinformatic analyses indicate that the pgp-13 reporter may be useful in identifying CADs that have pathogenic potential in humans. Mutant analyses coupled to metabolomics and structural modeling show that the CYP-35Bs are necessary and sufficient for CAD metabolism, and that CYP-35B2 D311 is key in mediating electrostatic interactions with the positively charged CADs. We also show that CAD metabolites are effluxed via PGP-13 acting partially redundantly with PGP-14 and that an intact defense system is necessary to resist CAD-induced pathology. Finally, we demonstrate that bacteria that likely cohabitate with C. elegans in nature trigger the CAD defense system, providing a plausible explanation for why a pathway that protects against anthropogenic small molecules exists in nematodes.

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Publication Details

Journal
PLoS Biology
Published
2026-09-21
DOI
https://doi.org/10.1371/journal.pbio.3004006
Primary Topic
Lysosomal Storage Disorders Research
Type
article
Field-Weighted Citation Impact
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article

The nematode Caenorhabditis elegans has a cationic amphiphilic drug (CAD) defense system

Somayeh Pirhadi, Carolyn L. Cummins, Jiabao Liu, Levon Tokmakjian et al.
PLoS Biology
Lysosomal Storage Disorders Research
article

The nematode Caenorhabditis elegans has a cationic amphiphilic drug (CAD) defense system

Somayeh Pirhadi, Carolyn L. Cummins, Jiabao Liu, Levon Tokmakjian, Duhyun Han, Peter John Roy, Brittany Cooke, Andrew R. Burns, Marios Gavrielatos, Henry M. Krause, Kateryna Sihuta, Aanchal Aggarwal, Siyue Ren, David R. Koes, Yao Wang, Justin Nodwell
article en

Abstract

Cationic Amphiphilic Drugs (CADs) severely disrupt lysosomal function, which leads to a cellular pathology in humans characterized by excess phospholipids called phospholipidosis. Through a forward genetic screen and mining of published datasets, we discovered that CADs induce the expression of the CYP-35B family of cytochrome P450s and the PGP-13 p-glycoprotein pump via the nuclear receptors NHR-70 and NHR-107 in the nematode C. elegans . A pgp-13 fluorescent reporter revealed hundreds of human drugs that up-regulate the CAD defense system in vivo. Chemoinformatic analyses indicate that the pgp-13 reporter may be useful in identifying CADs that have pathogenic potential in humans. Mutant analyses coupled to metabolomics and structural modeling show that the CYP-35Bs are necessary and sufficient for CAD metabolism, and that CYP-35B2 D311 is key in mediating electrostatic interactions with the positively charged CADs. We also show that CAD metabolites are effluxed via PGP-13 acting partially redundantly with PGP-14 and that an intact defense system is necessary to resist CAD-induced pathology. Finally, we demonstrate that bacteria that likely cohabitate with C. elegans in nature trigger the CAD defense system, providing a plausible explanation for why a pathway that protects against anthropogenic small molecules exists in nematodes.

PLoS BiologyVol. 24(9)
University of Pittsburgh (US), University of Toronto (CA)
Openalex Percentile: Top 11%
Lysosomal Storage Disorders Research
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