Thallium Neurotoxicity: An Integrative Update

Abstract Ongoing investigation into the effects of thallium (Tl) on the central nervous system (CNS) yields new insights into the mechanisms underlying its toxicity. Tl is a heavy metal possessing specific chemical features that can induce severe acute and chronic intoxications in humans upon environmental, occupational, accidental, and intentional exposures, with adverse effects in all organs, and particularly the brain. It readily crosses the blood-brain barrier (BBB) and triggers a series of cellular, molecular, and biochemical events, leading to alterations at the central level that compromise cognitive and motor functions. Experimental studies have shown that Tl alters intracellular redox status to induce oxidative damage, mitochondrial dysfunction, apoptotic cell signaling, and major motor changes. In this review we update, in an integrative manner, the mechanisms of Tl toxicity at several functional levels. This state-of-the-art review compiles and discusses recent and past evidence to integrate a general toxic scheme to explain Tl’s neurotoxic effects, identifying effective therapeutic approaches against the neurological sequelae of Tl exposure. The review also describes the use of Tl in nanoparticles for several industrial and pharmacological processes, highlighting it as a potential source of human exposure. Combined, the evidence reviewed in this document led us to suggest an integrative mechanistic hypothesis on the toxic effects of Tl.

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Publication Details

Journal
Chemical Research in Toxicology
Published
2026-09-24
DOI
https://doi.org/10.1021/acs.chemrestox.6c00255
Primary Topic
Thallium and Germanium Studies
Type
article
Field-Weighted Citation Impact
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article

Thallium Neurotoxicity: An Integrative Update

Sonia Galván‐Arzate, Abel Santamarı́a, Jade Nava-Osorio, Laura Osorio‐Rico et al.
Chemical Research in Toxicology
Thallium and Germanium Studies
article

Thallium Neurotoxicity: An Integrative Update

Sonia Galván‐Arzate, Abel Santamarı́a, Jade Nava-Osorio, Laura Osorio‐Rico, Michael Aschner, Alexey A. Tinkov, Isaac Túnez, Tessy López-Goerne, Beatriz Ferrer, Dulce Gurgua, Mariana Juárez-Arellano, Airton da Cunha Martins, Alicia Lizetth Labastida-Carvajal, Jimena Martínez
article en

Abstract

Abstract Ongoing investigation into the effects of thallium (Tl) on the central nervous system (CNS) yields new insights into the mechanisms underlying its toxicity. Tl is a heavy metal possessing specific chemical features that can induce severe acute and chronic intoxications in humans upon environmental, occupational, accidental, and intentional exposures, with adverse effects in all organs, and particularly the brain. It readily crosses the blood-brain barrier (BBB) and triggers a series of cellular, molecular, and biochemical events, leading to alterations at the central level that compromise cognitive and motor functions. Experimental studies have shown that Tl alters intracellular redox status to induce oxidative damage, mitochondrial dysfunction, apoptotic cell signaling, and major motor changes. In this review we update, in an integrative manner, the mechanisms of Tl toxicity at several functional levels. This state-of-the-art review compiles and discusses recent and past evidence to integrate a general toxic scheme to explain Tl’s neurotoxic effects, identifying effective therapeutic approaches against the neurological sequelae of Tl exposure. The review also describes the use of Tl in nanoparticles for several industrial and pharmacological processes, highlighting it as a potential source of human exposure. Combined, the evidence reviewed in this document led us to suggest an integrative mechanistic hypothesis on the toxic effects of Tl.

Chemical Research in Toxicology
Albert Einstein College of Medicine (US), Sechenov University (RU), Yaroslavl State University (RU), Universidad Autónoma Metropolitana (MX), Instituto Maimónides de Investigación Biomédica de Córdoba (ES), Instituto de Neurologia Y Neurocirugia (CU), Instituto Nacional de Neurología y Neurocirugía (MX), University of Córdoba (ES), Cordoba University (US), Universidad Nacional Autónoma de México (MX)
Openalex Percentile: Top 23%
Thallium and Germanium Studies
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