PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 3, 2026Ecotoxicology and Environmental Safety1 citationsOpen Access

Mechanistic insights into osteotoxicity induced by early-life lead exposure: Evidence from metabolomics and network toxicology

View Full Paper
YCYing ChenHSHuanhuan ShenZWZixuan Wang

Key Points

  • This study aims to uncover the metabolic mechanisms behind osteotoxicity due to early-life lead exposure in rats.
  • Sprague-Dawley rats were exposed to lead acetate in drinking water for four weeks.
  • Bone mass and trabecular architecture were assessed using micro-computed tomography and histopathology.
  • Metabolic profiles were analyzed via untargeted liquid chromatography-mass spectrometry.
  • Metabolite interactions were examined through network toxicology.
  • Gene expression for PI3K-Akt and FoxO pathways was assessed using RT-qPCR.
  • Lead exposure caused progressive bone mass loss and trabecular rarefaction over time.
  • Significant disruption noted in glycerophospholipid and arachidonic acid metabolism pathways.
  • The log₂(PGD₂/TXB₂) ratio decreased in the high-dose group, indicating altered signaling.
  • Increased expression of Akt1 and Sod2 was observed in the high-dose group, supporting pathway involvement.

Abstract

Early-life lead (Pb) exposure is associated with long-term skeletal deficits, but the underlying metabolic mechanisms remain unclear. This study investigated chronic osteotoxicity and its mechanisms in Sprague-Dawley rats exposed to lead acetate (2 or 4 mmol/L) in drinking water for four weeks from postnatal day 28. Samples were collected at 2, 6, and 12 months of age. Bone mass and trabecular microarchitecture were assessed by micro-computed tomography and histopathology. Pb and calcium levels in blood and bone were quantified, and serum metabolic profiles were characterized using untargeted liquid chromatography-mass spectrometry. Metabolite-target-pathway interactions were analyzed through network toxicology. Results showed that Pb exposure caused time- and dose-dependent skeletal injury, characterized by progressive bone mass loss, trabecular rarefaction, and marrow vacuolization. Bone Pb exhibited a dynamic “deposition-remobilization” pattern, peaking after exposure, declining at 6 months, and rebounding at 12 months. Metabolomics identified glycerophospholipid and arachidonic acid (AA) metabolism as primarily perturbed pathways. The log₂(PGD₂/TXB₂) ratio was markedly reduced in the high-dose group at 12 months, indicating a shift toward pro-osteoclastic signaling. Network toxicology highlighted PI3K-Akt, FoxO, and HIF-1 pathways as potential downstream mediators of Pb-induced osteotoxicity, and femoral RT-qPCR showed increased Akt1 and Sod2 mRNA expression in the high-dose group, supporting PI3K-Akt/FoxO-related responses. Overall, early-life Pb exposure disrupts lipid homeostasis and the “glycerophospholipid-AA-eicosanoid” axis, uncoupling bone formation and resorption and leading to long-term bone loss. These findings provide novel mechanistic insights into Pb-induced osteotoxicity and suggest potential targets for early preventive interventions. ● Early-life Pb exposure caused progressive bone deterioration. ● Lipid metabolism disruption is linked to Pb-induced osteotoxicity. ● Glycerophospholipid and arachidonic acid metabolism were altered. ● PI3K-Akt/FoxO signaling was identified by network toxicology. ● RT-qPCR validated Akt1 and Sod2 upregulation.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e2e5a333a821460c48dhttps://doi.org/10.1016/j.ecoenv.2026.120088
Ask AI
Helpful
Bookmark
Share
View Full Paper