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Updated: Jan 19, 2026

An Anaerobic Biosensor Assay for the Detection of Mercury and Cadmium
Published on: December 17, 2018
Cadmium toxicity and its relationship with disturbances in the cytoskeleton, cell cycle and chromosome stability
Daniel Pizzaia1, Marina Lima Nogueira1, Mateus Mondin1
1Departamento de Genética, Escola Superior de Agricultura "Luiz de Queiroz", Universidade de São Paulo, Av. Pádua Dias, 11, Piracicaba, SP, 13418-900, Brazil.
Abstract:
This study aimed to investigate the mode of action of cadmium (Cd) toxicity at cell level, especially at early stages of plant exposure. Tomato seedlings were cultivated in growth media containing from 0.1 to 70 µM CdCl2 for 24 h. Mitotic index, chromosome abnormality, DNA integrity and organization of tubulin-based structures were assessed in root cells. As higher the Cd concentration in the growth media, higher was the DNA damage intensity and the occurrence of chromosomal abnormalities that included chromosome lost, bridges, stickiness, C-metaphase and polyploidy. The profile of chromosomal aberrations also varied with elevated Cd concentration, being observed increases in the frequency of chromosome stickiness. The mitotic index was reduced at the lowest Cd concentration, but such reduction was statistically similar to that detected at the highest concentration, suggesting that mitotic depression is a rapid outcome and, at same time, a Cd-induced effect that is limited at the first 24 h of direct root exposure to this metal. Under exposure to 20 µM CdCl2, heterogenous distribution of the spindle fibers, formation of two spindle complexes in both of the cell poles, absence of centrosome center, polarization of the spindle fibers during cell division, and non-uniform tubulin deposition in microtubule and phragmoplast were noticed. The results indicate that the tubulin-dependent components of cytoskeleton are Cd targets, and the sensitivity of tubulin-based structures to Cd exposure depends on cell cycle phase. Moreover, DNA damage intensity and chromosomal abnormality profile can be employed as markers of Cd toxicity level.
Insights
Cadmium (Cd) exposure rapidly damages plant DNA and disrupts cell division, affecting the cytoskeleton. DNA damage and chromosomal abnormalities serve as key indicators of cadmium toxicity levels in plants.
Area of Science:
- Plant Biology
- Environmental Toxicology
- Cell Biology
Background:
- Cadmium (Cd) is a toxic heavy metal with significant environmental impact.
- Understanding early cellular responses to Cd toxicity is crucial for plant health.
- Plant root cells are primary targets for heavy metal uptake and toxicity.
Purpose of the Study:
- To investigate the cellular mechanisms of cadmium toxicity in tomato seedlings.
- To assess early-stage cellular damage, including DNA integrity and cytoskeleton organization.
- To identify reliable biomarkers for cadmium exposure levels.
Main Methods:
- Tomato seedlings exposed to varying concentrations of cadmium chloride (CdCl2) for 24 hours.
- Assessment of mitotic index, chromosomal abnormalities, and DNA integrity in root cells.
- Analysis of tubulin-based cytoskeleton structures using microscopy.
Main Results:
- Increased Cd concentration led to higher DNA damage and chromosomal abnormalities (e.g., chromosome loss, bridges, polyploidy).
- Mitotic index decreased rapidly, indicating mitotic depression as an early Cd-induced effect.
- Cadmium exposure disrupted spindle fiber organization and tubulin deposition, affecting cell division.
Conclusions:
- Tubulin-dependent cytoskeleton components are primary targets of cadmium toxicity.
- Sensitivity of cellular structures to cadmium varies with the cell cycle phase.
- DNA damage and chromosomal aberration profiles are effective markers for quantifying cadmium toxicity.
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