Search PubMedSearch

SEARCH · Search PubMed

Results for “Neurodevelopmental toxicity”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

7 recordsLinked to original sources

Neurodevelopmental toxicity of 2-(Methylthio)benzothiazole (MTBT) in zebrafish: Insights into PTGS2- associated dysregulation of the neuroactive ligand-receptor interaction pathway.

2-(Methylthio)benzothiazole (MTBT), an important derivative of benzothiazoles, has extensive applications in industrial processes, pharmaceuticals, and environmental monitoring. It can enter aquatic environments through surface runoff and has been detected at relatively high concentrations in various environmental systems. However, studies investigating the aquatic toxicity of MTBT remain limited. In this study, zebrafish embryos were exposed to MTBT at concentrations of 0, 10, 100, and 1000 μg/L for 144 h to evaluate its developmental and neurotoxic effects. MTBT exposure significantly reduced the survival rate, hatching rate, spontaneous movement, and body length of zebrafish larvae. MTBT also impaired locomotor behavior, reduced fluorescence of Tg(huc:eGFP) larvae in the central nervous system and inhibited motor neuron axonal development. Protein-protein interaction network and Kyoto Encyclopedia of Genes and Genomes pathway enrichment analyses indicated that MTBT-induced neurotoxicity may be associated with disruption of the neuroactive ligand-receptor interaction pathway. Further validation experiments revealed that MTBT induced oxidative stress, inflammation, and apoptosis, suggesting that these adverse effects may underlie its neurodevelopmental toxicity. Collectively, these findings provide biological evidence that MTBT induces neurodevelopmental toxicity in zebrafish larvae and suggest that dysregulation of the PTGS2-related neuroactive ligand-receptor interaction pathway may be involved in this process.

2-(Methylthio)benzothiazole (MTBT)

DDX3X overexpression in mice can cause rapid tissue-specific toxicity and mortality.

DEAD-Box Helicase 3 X-Linked (DDX3X) is a ubiquitously expressed RNA helicase with diverse cellular roles implicated in a neurodevelopmental disorder called DDX3X syndrome. Although DDX3X is a leading genetic cause of intellectual disability in females, there is no treatment. While gene supplementation is a plausible therapeutic strategy, previous studies suggest DDX3X is carefully regulated and dose sensitive. To understand the consequences of overexpressing DDX3X with unregulated adeno-associated virus-mediated gene supplementation, we generated a vector driving strong ubiquitous DDX3X expression and administered it through a direct cerebrospinal fluid injection in newborn mice. Mice injected with a high dose died within 1 week from myocardial degeneration. Increased expression of stress response markers together with elevated apoptotic signaling in the heart suggested activation of stress-induced apoptotic pathways. Incidental findings included excess lipid accumulation, most prominent in the liver, and other liver injury. The innate immune system was also highly activated in the heart and liver. Interestingly, the brain was overall unaffected. The results suggest that DDX3X overexpression can cause rapid transgene-driven, tissue-specific toxicity, underscoring the need for tight DDX3X gene dosage control. These findings illustrate the possibility for improper transgene expression to drive severe toxicity including death within days following administration.

Animals

Hemizygous loss-of-function variants of EIF1AX are associated with a syndromic neurodevelopmental disorder.

Pathogenic variants of genes encoding initiation factors can cause neurological diseases, including neurodevelopmental disorders and brain abnormalities. The eukaryotic translation initiation factor 1 A, X-linked (EIF1AX) is a gene located at Xp22.12 that plays an important role in the regulation of translation initiation. Here, we identified de novo hemizygous EIF1AX variants in male individuals with neurodevelopmental disorders and explored their possible involvement in these neurological disorders. We performed trio-based exome or whole genome sequencing in four families. The pathogenicity of EIF1AX variants was evaluated using a molecular dynamic simulation and transgenic Drosophila models. We identified four de novo hemizygous EIF1AX variants in four male individuals with variable neurodevelopmental delay, dysmorphic features, behavioral problems, ophthalmological abnormalities, and structural abnormalities in the brain. One variant was predicted to cause a splicing alteration, and minigene analysis confirmed exon skipping leading to the generation of a premature termination codon. In transgenic Drosophila harboring wild-type (WT) EIF1AX or the three other EIF1AX missense variants, overexpression of WT and the p.(Asn17Asp) variant caused structural abnormalities in the compound eye, whereas the p.(Lys64Glu) and p.(Asp90Gly) variants significantly reduced these eye abnormalities. In addition, WT overexpression resulted in significant axonal toxicity in the Drosophila optic nerve, causing a significant reduction in the number of axons, whereas all mutants showed only a mild reduction in axonal number. Our findings indicated that all variants resulted in different degrees of EIF1AX loss-of-function. Overall, EIF1AX is a novel gene for which loss-of-function variants appear to produce syndromic neurodevelopmental disorders in males.

Humans

Smith-Lemli-Opitz syndrome: Clinical, biochemical, and genetic insights with emerging treatment opportunities.

Smith-Lemli-Opitz syndrome (SLOS), also known as RSH syndrome, is an inborn error of cholesterol biosynthesis first described in 1964. Since then, significant advances have been made in understanding its pathophysiology, both during fetal development and postnatally. Cholesterol is a crucial lipid in the body, especially in the central nervous system, which accounts for nearly 25% of the body's total cholesterol. Cholesterol deficiency in SLOS can lead to congenital malformations and severe neurodevelopmental disabilities. The biochemical and genetic bases of SLOS have been elucidated. Reduced or absent 7-dehydrocholesterol reductase enzymatic activity results not only in cholesterol deficiency but also in accumulation of 7-dehydrocholesterol, 8-dehydrocholesterol, and toxic oxysterol metabolites, which contribute to the pathophysiology of SLOS and correlate variably with the severity of its clinical symptoms. Despite decades of research, the clinical recognition of SLOS remains challenging because of the condition's multisystemic nature and noteworthy phenotypic variability. This review provides an up-to-date summary of major research advances in the study of SLOS with a focus on clinical manifestations and biochemical and genetic findings, which, taken together, facilitate recognition and diagnostic confirmation. Additionally, we recap past and current efforts in therapeutic development and offer guidance for disease management.

Humans

Abnormal ClC-3/TMEM9-mediated endosomal ion transport in CLCN3-associated neurodevelopmental disease.

Endolysosomal abnormalities are particularly detrimental to the nervous system and have been implicated in neuropsychiatric disorders. Key regulators of the lysosomal and endosomal luminal ion homeostasis are CLC chloride/proton exchangers. We report 15 individuals carrying variants in CLCN3, encoding a ubiquitous endosomal 2Cl-/H+ exchanger, and provide updated clinical information for 5 previously reported individuals. Subjects displayed a broad spectrum of neuropsychiatric symptoms, including developmental delay, intellectual disability, and epilepsy. To reveal the pathogenic mechanism, we investigated ClC-3 variants-mediated ion transport and its regulation by the recently discovered inhibitory beta subunit TMEM9. 12/20 missense variants exhibited altered properties and fell into two classes: those affecting the region binding inhibitory TMEM9 carboxy-termini, and those that broaden the voltage range over which ClC-3 conducts ions. Surprisingly, the latter variants also attenuated TMEM9-mediated inhibition. Both classes produced a toxic gain-of-function, as evident from endolysosomal vacuolization by mutant ClC-3/TMEM9 overexpression. Our results expand the genetic and clinical spectrum of CLCN3-related disease, provide a solid basis for genetic counseling, and uncover an unexpected link between gating-associated conformational changes and inhibition by TMEM9.

Chloride Channels

Sex and tissue resolved co-expression networks reveal a female placental-brain axis protective against prenatal PCB exposure.

BACKGROUND: Neurodevelopmental disorders have a strong male bias that is poorly understood. The placenta provides molecular information about environmental interactions with genetics (including biological sex) that shape developmental processes in the brain. We investigate placental-brain transcriptional responses in an established mouse model of prenatal exposure to a human-relevant mixture of polychlorinated biphenyls (PCBs). RESULTS: To understand sex, tissue, and dosage effects in embryonic (E18) brain and placenta RNAseq data, we use weighted gene correlation network analysis (WGCNA) to create gene networks that could be compared across sex or tissue. WGCNA reveals that expression within most correlated gene networks is significantly and strongly associated with PCB exposure, but frequently in opposite directions between male-female and placenta-brain comparisons. In WGCNA and differentially expressed gene analyses, more transcriptional changes are observed in male brain than placenta, but the reverse is seen in females. Furthermore, female X-inactive specific transcript (Xist) levels correlate with sex-specific and non-monotonic PCB dose response, suggesting an X-linked protective epigenetic mechanism. The transcriptomic effects of low-dose PCB exposure are significantly opposed by dietary folic acid supplementation across both sexes but are strongest in female placentas. PCB and folic acid interacting gene networks are enriched in metabolic pathways involved in energy usage and translation, with female-specific protective effects enriched in PPAR, thermogenesis, glycerolipid, and O-glycan biosynthesis, as opposed to toxicant responses in male brain. CONCLUSIONS: A female protective effect in response to prenatal PCB exposure appears to be mediated by dose-dependent sex differences in transcriptional modulation of placental metabolic pathways.

Female

Firemaster 550 differentially alters gene expression underlying synaptic function in amygdala of prairie voles after gestational or lactational exposure.

Neurodevelopmental disorders often share similar behavioral diagnostic criteria including socioemotional and cognitive deficits. The prairie vole is a uniquely suitable model to study these deficits because they demonstrate strong social affiliation, bi-parental care, and partner attachment. Previously, we have shown that developmental exposure to the flame-retardant mixture Firemaster 550 (FM 550) impairs socioemotional behavior in the prairie vole and alters underlying neuroanatomy and function. However, the mechanisms for impaired pair bonding in males and increased anxiety in females remain unknown, along with the specific critical window(s) of vulnerability. Herein, we exposed prairie vole dams to FM 550 during gestation or lactation, and performed bulk RNA-seq on the amygdala, a hub of socioemotional processing, in their adult offspring. Two mathematically orthogonal methods were utilized for analysis, a linear statistical method and an ensemble machine learning method, incorporating sex as a biological variable. Gene ontology (GO) pathway analysis was performed following both and results compared to identify potential mechanisms of toxicity. GO results indicated consistent expression changes in the Synapse cellular component in all conditions, and implicated glutamatergic signaling specifically. Additionally, gestational exposure (GE) altered genes underlying modulation of synaptic transmission and neural development, while lactational exposure (LE) impacted genes underlying synaptic plasticity, axon guidance, and mitophagy. Machine learning identified disruption of endocrine system development, regulation of biosynthetic processes in GE animals, and suppression of various neuroinflammatory genes across multiple groups. Finally, we performed RNA expression analysis using Nanostring and demonstrated stronger correlation with the differentially expressed genes (DEG) of interest in females than males. Overall, this study demonstrates both the intersecting and distinct impacts of FM 550 exposure on amygdalar gene expression depending on sex and timing of exposure.

Animals