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Heritier, N.

Publications and source records attributed to Heritier, N..

2 recordsLinked to original sources

Neurotoxicity of Propylene Glycol Butyl Ether: Multiomic Evidence from Human BrainSpheres

Exposure to solvents may contribute to the development of neurodevelopmental and neurodegenerative diseases. Glycol ethers consist in a widely used class of organic solvents leading to workers and consumers exposure via many different applications. Ethylene glycol ethers are gradually being replaced by propylene glycol ethers thought to be less toxic. However, their neurotoxicity is not systematically assessed prior to placing them on the market. Therefore, this study investigated the potential neurotoxicity of propylene glycol butyl ether (PGBE) for which no official occupational limit has been established. To this aim, new approach methodologies have been used. Human induced pluripotent stem cells-derived BrainSpheres model was exposed to PGBE and to its main metabolite, 2-butoxypropanoic acid (2BPA). An integrative multiomic approach (transcriptomics, proteomics, metabolomics and lipidomics) was adopted to assess molecular alterations, derive benchmark concentrations and define potential mechanisms of action. PGBE was neurotoxic at occupationally relevant exposure concentrations. This was shown for the first time in human cells. And, although PGBE was more cytotoxic than 2BPA, both compounds showed very similar neurotoxicity. PGBE and 2BPA strongly affected the cell cycle, induced oxidative stress and perturbed energy and lipid metabolism. They also targeted specific nervous system processes, such as axon guidance and synapse organization. Finally, 2BPA may trigger ferroptosis by increased iron uptake. Our results show an urgent need for public health authorities to carefully assess the risk glycol ethers pose to humans, to properly protect the workers as well as individuals in the general population unknowingly exposed from indoor air contaminations.

pharmacology and toxicology↗

An optimized method to visualize lipid droplets in brain tissue demonstrates their substantial accumulation in aged brains

Lipid droplets (LDs) are cellular stores for lipids. These organelles have recently gained interest in neuroscience because they accumulate in various cell types in neurodegenerative diseases. However, their role under physiological conditions is still not fully understood. Classical LD staining methods, which use lipophilic dyes like BODIPY 493/503 (BD493) or antibodies against LD coat proteins, show very few LDs in healthy brain tissue. Our recently developed novel endogenous LD reporter mouse challenges this view. We have been able to detect numerous LDs in healthy brain tissue from both adult and developing mice without staining. To understand why classical staining and endogenous labeling yield different results, we thoroughly investigated the effects of tissue preparation and detergent used in LD detection. We found that BD493 works poorly in brain tissue, while other lipophilic dyes visualize many LDs. We also found that antibody-based LD detection depends on tissue pretreatment and detergent concentration but can reveal a similar number of LDs as observed with the endogenous LD reporter mouse. Taken together, we here present an optimized procedure for LD detection in brain tissue using commercially available dyes and antibodies. Using these methods, we demonstrate that LDs are numerous in healthy brain tissue and substantially accumulate in aged brains in various cell types, including neurons.

neuroscience↗