REVIEW article
Front. Toxicol.
Sec. Environmental Toxicology
Organ-specific apoptotic pathways induced by micro-and nanoplastics: a systematic review of in vitro toxicological evidence
- LM
Laura Maria Messina 1
- MC
Maria Concetta Scuto 2
- GL
Gabriella Lupo 1
- CM
Cinzia Maria Grazia Lombardo 1
- CL
Caterina Ledda 1
- AT
Angela Trovato-Salinaro 1
1. University of Catania, Catania, Italy
2. Universita degli Studi di Enna 'Kore', Enna, Italy
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Abstract
The widespread presence of micro-and nanoplastics (MNPs) in environmental matrices and consumer prod-ucts has raised increasing concern about their potential effects on human health. Due to their small size, persistence, and heterogeneous physicochemical properties, MNPs may interact with biological barriers, reach different cellular compartments, and trigger organ-specific toxic responses. Among the cellular events involved, apoptosis has emerged as a recurrent mechanism linking MNP exposure to tissue injury and functional impairment. This systematic review aimed to synthesize the available in vitro evidence on apoptosis-related toxicity induced by MNPs across different cell models and organoids, with particular attention to organ-specific patterns and underlying molecular pathways. Following a PECOS-based strategy and PRISMA guidance, a literature search was conducted in PubMed, Scopus, and Web of Science on 6 September 2024. Studies were screened using Rayyan, and 80 studies were included in the qualitative synthesis. Overall, the evidence indi-cates that MNP exposure induces cytotoxic effects in a wide range of cellular models representing the gastrointestinal tract, liver, lung, kidney, reproductive system, placenta, brain, cardiovascular system, skin, and blood-related compartments. Across these models, recurrent mechanisms included oxidative stress, mitochondrial dysfunction, loss of mitochondrial membrane potential, endoplasmic reticulum stress, calcium imbalance, activation of MAPK and PI3K/AKT-related signaling, dysregulation of Bcl-2 family proteins, caspase activation, and crosstalk with inflammatory, autophagic, and ferroptotic pathways. Particle size, surface chemistry, concentration, exposure time, and co-exposure with other contaminants influenced the magnitude and pattern of toxic responses. In conclusion, apoptosis represents a central mechanistic node in the organ-specific toxicity of MNPs in vitro. However, the translational relevance of current evidence remains limited by heterogeneity in particle characteristics, exposure conditions, and experimental models. Future studies should pri-oritize standardized protocols, environmentally relevant exposure scenarios, and advanced human-based mod-els to better define the implications of MNP exposure for human health.
Summary
Keywords
Apoptosis, Human health, In vitro toxicology, Microplastics, nanoplastics, Organ-specific toxicity, Oxidative Stress
Received
13 June 2026
Accepted
14 July 2026
Copyright
© 2026 Messina, Scuto, Lupo, Lombardo, Ledda and Trovato-Salinaro. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
*Correspondence: Caterina Ledda
Disclaimer
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