Prof. Dr. Andreas Schlitzer
Life & Medical Sciences Institute (LIMES)
aschlitz@uni-bonn.de View member: Prof. Dr. Andreas Schlitzer
Nature metabolism
Plastic pollution is an emerging yet understudied environmental risk to the immune system. Once ingested, microplastic and nanoplastic particles (MNPs) can translocate from the gut to internal organs, with macrophages serving as primary targets. Kupffer cells (KCs), the liver-resident macrophages, have a central role in immune surveillance and metabolism, yet their response to MNPs remains unclear. Here we identify KCs as the primary hepatic reservoir for MNPs in young male mice. Chronic plastic exposure over 12 weeks alters their transcriptional profile, impairs phagocytic function and is associated with metabolic dysregulation of hepatocytes. Microplastics, but not nanoplastics, reduce KC-mediated clearance of circulating cells. Under diet-induced obesity, microplastics exacerbate hepatic lipid accumulation, while nanoplastics alter systemic glucose metabolism and energy expenditure. These findings demonstrate that chronic MNP exposure disrupts macrophage function in a size-dependent manner, with subsequent distinct consequences for liver and systemic metabolism.
© 2026. The Author(s).
PMID: 42811166
Life & Medical Sciences Institute (LIMES)
aschlitz@uni-bonn.de View member: Prof. Dr. Andreas SchlitzerLife & Medical Sciences Institute (LIMES)
cthiele@uni-bonn.de View member: Prof. Dr. Christoph ThieleInstitute of Innate Immunity
Felix.Meissner@ukbonn.de View member: Prof. Dr. Felix MeissnerGerman Center for Neurodegenerative Diseases (DZNE)
martin.fuhrmann@dzne.de View member: Prof. Dr. Martin FuhrmannInstitute of Innate Immunity
dwachten@uni-bonn.de View member: Prof. Dr. Dagmar WachtenInstitute of Experimental Oncology
kthurley@uni-bonn.de View member: Prof. Dr. Kevin ThurleyLife & Medical Sciences Institute (LIMES)
elvira.mass@uni-bonn.de View member: Prof. Dr. Elvira Mass