Abstract
Highlights
- We studied the toxic effects of different concentrations of NaF in H9c2 cells.
- NaF inhibited H9c2 cell proliferation and induced early apoptosis.
- Mitochondrial membrane potential decreased with increase in NaF.
- Caspase-3, caspase-9, and cytochrome c mRNA levels increased with increase in NaF.
- Fluoride induces apoptosis via activation of the mitochondrial pathway.
Numerous studies have shown that chronic excessive fluoride intake can adversely affect different organ systems. In particular, the cardiovascular system is susceptible to disruption by a high concentration of fluoride. The objectives of this study were to explore the mechanism of apoptosis by detecting the toxic effects of different concentrations of sodium fluoride (NaF) in H9c2 cells exposed for up to 96 h. NaF not only inhibited H9c2 cell proliferation but also induced apoptosis and morphological damage. With increasing NaF concentrations, early apoptosis of H9c2 cells was increased while the mitochondrial membrane potential was decreased. Compared with the control group, the mRNA levels of caspase-3, caspase-9, and cytochrome c all increased with increasing concentrations of NaF. In summary, these data suggest that apoptosis is involved in NaF-induced H9c2 cell toxicity and that activation of the mitochondrial pathway may occur.
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Preliminary screening of fluorine-stained osteoblastic apoptosis-related microRNA.
This article has been accepted for publication and undergone full peer review but has not been through the copy editing, typesetting, pagination and proofreading process, which may lead to differences between this version and the Version of Record. Please cite this article as doi: 10.1002/ar.24709. Endemic fluorosis is a chronic systemic
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The mitochondrial pathway is involved in sodium fluoride (NaF)-induced renal apoptosis in mice.
The objective of the present study was to explore the molecular mechanism of apoptosis induced by sodium fluoride (NaF) in the mouse kidney by using the methods of flow cytometry, quantitative real-time polymerase chain reaction (qRT-PCR), western blotting, and experimental pathology. 240 four-week-old ICR mice were randomly divided into 4
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Effects of chronic fluorosis on the brain.
Highlights Reviewing the mechanism of brain injury caused by chronic fluorosis is of great significance for protecting residents in fluorosis endemic areas. Abstract This article reviews the effects of chronic fluorosis on the brain and possible mechanisms. We used PubMed, Medline and Cochraine databases to collect data on fluorosis, brain injury,
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Environmental and Genetic Factors Influencing Kidney Toxicity.
The kidneys are a frequent target organ for toxicity from exposures to various environmental chemicals and agents. To understand the risk to human health from such exposures, it is important to consider both the underlying chemical and pathologic mechanisms and factors that may modify susceptibility to injury. Choices of exemplary
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Epigallocatechin gallate potentially attenuates fluoride induced oxidative stress mediated cardiotoxicity and dyslipidemia in rats
The present study was undertaken to evaluate the cardioprotective role of (-)-epigallocatechin-gallate (EGCG) against Fluoride (F) induced oxidative stress mediated cardiotoxicity in rats. The animals exposed to F as sodium Fluoride (NaF) (25mg/kg BW) for 4 weeks exhibited a significant increase in the levels of cardiac troponins T and I
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Factors which increase the risk for skeletal fluorosis
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Fluoride & Arterial Calcification
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Annapolis: Water Fluoridation Linked to Death of Dialysis Patient
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Unheeded Warnings: Government Health Authorities Ignore Fluoride Risk for Kidney Patients
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Fluoridated Water Causes Severe Dental Fluorosis in Children with Diabetes Insipidus
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