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February 2, 2026Journal of Applied Toxicology0 citationsOpen Access

Corneal Structural and Response to Elevated CO 2 Concentrations in Occupational Environment: FTIR and Chemometric Evidence of Proteins and Lipids Remodeling

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SMSherif S. MahmoudSEShaimaa M. Elshibly

Key Points

  • The central aim is to explore how elevated CO2 levels in occupational environments affect corneal health.
  • Rats were exposed to 3%, 5%, and 10% CO2 concentrations for 8 hours daily over 30 days.
  • Fourier transform infrared (FTIR) spectroscopy was used to analyze corneal tissue.
  • Chemometric analysis was employed to interpret biochemical changes in proteins and lipids.
  • Significant changes in protein secondary structures were identified, notably a shift in the amide I band from 1650 to 1643 cm−1.
  • Alterations in lipid hydrocarbon chain vibrations indicated disruptions in membrane order and fluidity.
  • Modifications in phospholipids and nucleic acids suggested potential impacts on cellular stability.

Abstract

ABSTRACT This study investigates the effects of occupational carbon dioxide (CO 2 ) exposure on corneal tissue through Fourier transform infrared (FTIR) spectroscopy and chemometric analysis. Human activities have significantly increased atmospheric CO 2 levels, leading to potential health risks, particularly in confined environments such as mining, submarines, and enclosed workspaces. While CO 2 exposure is commonly associated with respiratory and cardiovascular effects, its impact on ocular health remains underexplored. Rats were exposed to three different CO 2 concentrations (3%, 5%, and 10%) in a controlled chamber for 8 h per day over a 30‐day period. Second derivative analysis of corneal FTIR spectra revealed significant alterations in protein secondary structures, lipid composition, and phosphate group alterations, indicating CO 2 ‐induced biochemical changes. Notably, exposure led to a shift in the amide I band from 1650 to 1643 cm −1 , suggesting a transition from α‐helix to random coil structures in corneal proteins, which compromises tissue integrity. Changes in lipid hydrocarbon chain vibrations and increased gauche rotamers indicated disruptions in membrane order and fluidity. Additionally, phospholipid and nucleic acid modifications were observed, potentially affecting cellular stability. The study provides valuable insights into corneal bio‐molecular alterations due to CO 2 exposure, contributing to a deeper understanding of environmental and occupational eye health risks.

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Cite This Study

Mahmoud et al. (2026) studied this question.

synapsesocial.com/papers/6980fe8ac1c9540dea810a84https://doi.org/10.1002/jat.70071
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