0
Article Tier 2 Environmental Sources Human Health Effects Nanoplastics Sign in to save

Prenatal Exposure to Polystyrene Nanoparticles Induces Neuroinflammatory Dysregulation in the Adult Mouse Brain

Original title: 孕期暴露于聚苯乙烯纳米颗粒可诱发成年小鼠大脑神经免疫失调

AI summary Read the abstract

This study found that polystyrene nanoparticles preferentially accumulate in brain microglia and astrocytes in mice exposed during pregnancy, with divergent immune effects: nanoparticles amplified inflammatory responses in microglia but suppressed them in astrocytes, suggesting complex neuroinflammatory consequences.

Polymers
Body Systems
Models
Study Type In vivo

Microplastics have been detected in the brain, raising concerns regarding their neurological health impacts. However, the specific cellular targets and functional consequences of their accumulation remain understudied. This study explored the primary brain cell types that internalize polystyrene nanoparticles (PSNs) and investigated their immunological responses. Results showed that PSNs preferentially localized to primary microglia and astrocytes. Functional assays revealed divergent effects on lipopolysaccharide (LPS)-stimulated immune responses in the two cell types: PSNs potentiated LPS-induced activation of microglia, whereas they suppressed activation in astrocytes. Apoptotic responses were likewise cell-type specific, with PSN reducing apoptosis in microglia independently of LPS, but enhancing it in astrocytes. In vivo, adult mice exposed to both PSNs and LPS exhibited increased microglial numbers in the hippocampus compared to those receiving LPS alone. These findings demonstrate that PSNs disrupt the immune homeostasis of brain-resident glial cells through cell-type-specific mechanisms, highlighting a potential neurotoxic risk associated with nanoparticulate plastic exposure.

More Papers Like This

Article Tier 2

Neurotoxic effects of polystyrene nanoplastics on memory and microglial activation: Insights from in vivo and in vitro studies

AI summary Read the abstract

In a mouse study, tiny nanoplastics (30-50 nanometers) that were swallowed reached the brain and caused memory problems by activating the brain's immune cells, called microglia, which triggered inflammation. This is concerning because it shows that nanoplastics small enough to be found in everyday products like cosmetics could cross into the brain and impair cognitive function.

Article Tier 2

Neurotoxic potential of polystyrene nanoplastics in primary cells originating from mouse brain

AI summary Read the abstract

Researchers exposed three types of primary mouse brain cells to 100 nm polystyrene nanoplastics and found that neurons underwent apoptosis while astrocytes survived but developed reactive astrocytosis with elevated inflammatory markers, suggesting that neuronal vulnerability to nanoplastic accumulation may be amplified by astrocyte-driven neuroinflammation.

Article Tier 2

Adverse interactions of plastic nanoparticles with cultured primary microglial cells.

AI summary Read the abstract

Tiny plastic particles from broken-down polystyrene (a common plastic) can get absorbed into brain immune cells called microglia, causing stress damage and triggering inflammation, according to lab tests on these cells. This matters because microglia act as the brain's cleanup crew and first line of defense, so if microplastics cause them to malfunction, it could contribute to brain inflammation linked to neurological problems—though this study was done in isolated cells, not in living people, so more research is needed to know exactly what this means for human brain health.

Article Tier 2

Microglial phagocytosis of polystyrene microplastics results in immune alteration and apoptosis in vitro and in vivo

AI summary Read the abstract

Researchers found that polystyrene microplastics can cross the blood-brain barrier in mice after oral exposure and accumulate in brain tissue, where they are engulfed by microglia, the brain's immune cells. This engulfment triggered inflammatory responses and cell death in the microglia both in cell cultures and in living mice. The study suggests that microplastic exposure may affect brain immune function, with potential implications for neurological health.

Article Tier 2

Short-term PS-NP exposure in early adulthood induces neuronal damage in middle-aged mice via microglia-mediated neuroinflammation

AI summary Read the abstract

Researchers orally dosed young mice with polystyrene nanoplastics for one week and observed, ten months later, that particles persisted in brain tissue and drove microglial-mediated neuroinflammation, synapse loss, and cognitive impairment — with minocycline treatment confirming that microglial activation was the key driver of long-term neuronal damage.

Research digests by email

When a large batch of papers lands in the Atlas, we read through it and send a short write-up of what stood out.

Email me about

Share this paper