| Literature DB >> 34305607 |
Yuanying Yang1,2, Shanshan Wei1,2, Bikui Zhang1,2, Wenqun Li1,2.
Abstract
Humans are unconsciously exposed to environmental toxins including heavy metals as well as various pesticides, which have deleterious effects on human health. Accumulating studies pointed out that exposure to environmental toxins was associated with various cardiopathologic effects. This review summarizes the main mechanisms of cardiotoxicity induced by environmental toxins (cadmium, arsenic and pesticides) and discusses the potential preventive effects of natural products. These findings will provide a theoretical basis and novel agents for the prevention and treatment of environmental toxins-induced cardiotoxicity. Furthermore, the limitations of current studies, future needs and priorities are discussed.Entities:
Keywords: arsenic; cadmium; cardiotoxicity; environmental toxins; natural products; pesticides
Year: 2021 PMID: 34305607 PMCID: PMC8296636 DOI: 10.3389/fphar.2021.699193
Source DB: PubMed Journal: Front Pharmacol ISSN: 1663-9812 Impact factor: 5.810
FIGURE 1The cadmium exposure routes and protective mechanisms of natural products against cadmium-induced cardiotoxicity. CK-MB, creatine kinase-MB; LDH, Lactic dehydrogenase; SOD, Superoxide dismutase; CAT, catalase; GPx, Glutathione peroxidase; GST, Glutathione S-Transferase; GSH, glutathione; NF-кB, nuclear factor-кB; NO, nitric oxide; TNF-α, tumor necrosis factor-α; Nrf2, NF-E2-related factor 2; HO-1, heme oxygenase-1; MDA, Malondialdehyde.
FIGURE 2The arsenic exposure routes and protective mechanisms of natural products against arsenic-induced cardiotoxicity. AST, Aspartate transaminase; ALT, alanine aminotransferase; ROS, reactive oxygen species; IL-β, interleukin-β; eNOS, endothelial NOS; NOX2, NADPH oxidase two; NOX4, NADPH oxidase four; TSH, total sulfhydryl; NPSH, non-protein sulfhydryl; AMPK, adenosine monophosphate-activated protein kinase; GR, glutathione reductase.
FIGURE 3The pesticides exposure routes and protective mechanisms of natural products against pesticides-induced cardiotoxicity. LPO, Lipid Peroxide; TPI, troponin; 8-OhdG, 8-hydroxydeoxyguanosine; PON1, paraoxonase-1.
Protective effect of natural products against environmental toxins-induced cardiotoxicity.
| Environmental-toxins | Natural products | Structure or effective component | Model | Effect | Ref |
|---|---|---|---|---|---|
|
| Quercetin |
| Male albino rats | Attenuated oxidative stress mediated cardiotoxicity and dyslipidemia |
|
| Grape seed proanthocyanidins |
| Male Wistar rats | Inhibiting the membrane disturbances in cardiomyocytes, apoptotic pathway and inflammation |
| |
|
| Stem hydroalcoholic extract | Male Wistar rats | Inhibited oxidative damage, reduced heart histological alterations and decreased the activities of membrane bound ATPases |
| |
|
| Onion bulbs raw juice | Male SD rats | Reduced oxidative stress, histological damage and apoptosis |
| |
|
| Arjunolic acid |
| Male Swiss albino mice | Prevent cardiac oxidative impairment and maintain the normal ultra structure |
|
| (-)-Epigallocatechin-3-gallate |
| Male SD rats; H9c2 cells | Attenuated myocardial injury, oxidative damage and myocardial apoptosis |
| |
| Quercetin |
| Male SD rats | Ameliorated oxido-nitrosative stress and myocardial injury |
| |
| Silibinin |
| Male albino Wistar rats | Eliminated myocardial damages, facilitated the restoration of antioxidant status and normal histological architecture of cardiac tissue |
| |
| p-Coumaric acid |
| Male Wistar albino rats | Reduced myocardial oxidative stress and ameliorated cardiac damage |
| |
| Oleic acid |
| Male Swiss albino mice; H9c2 cells | Attenuated cardiac hypertrophy |
| |
| Ellagic acid |
| Male Wistar rats | Prevented histopathological alterations and reduced oxidative stress |
| |
|
| Aqueous extraction | Male Wistar albino rats | Ameliorated myocardial injury and reduced DNA fragmentation |
| |
|
| Dry water ethanol extract | Male Wistar albino rats | Reduced oxidative impairment and prevented hyperlipidemia and DNA fragmentation. |
| |
| Naringin |
| Male SD rats | Reduced ROS production and oxidative stress, scavenged free radicals, inhibited apoptosis and restored the respiratory chain Complexes |
| |
| Hesperidin |
| Male SD rats | Reduced oxidative stress and apoptosis, increased antioxidant enzyme activities, and prevented inflamma-tion |
| |
| Pesticides | Curcumin |
| Male albino rats | Ameliorated disturbed redox status and mitochondrial dysfunction |
|
| Lycopene |
| Male KunMing mice | Ameliorated cardiomyocyte ATPase function and ionic levels |
| |
| Sodium tanshinone IIA sulfate |
| SD rats | Inhibited apoptosis, myocardial damage and failure |
| |
|
| Methanolic pulp extract | H9c2 cells | Suppress changes in cell morphology, ROS production and ECM remodeling |
| |
| Crocin |
| Male albino rats/male Wistar rats | Alleviated oxidative stress and ameliorated myocardial injury/reduced lipid peroxidation and alleviated apoptosis | ( | |
| Propolis | Aqueous extract | Male albino rats | Restored antioxidant defense system disorder |
| |
| Pomegranate ( | Juice or peel methanol extract | Male albino rats | Attenuated myocardial injury and apoptosis |
| |
| Thymoquinone |
| Rats (detailed strain is not mentioned) | Decreased cardiotoxicity and improved cholinesterase activity |
| |
| Chrysin |
| Primary male Wistar rats cardiomyocytes; isolated mitochondria | Ameliorated oxidative stress and mitochondrial damages |
| |
| Apigenin |
| Primary male Wistar rats cardiomyocytes | Decreased cytotoxicity, oxidative, lysosomal and mitochondrial damages |
| |
|
| Ethanolic extract | Male wistar rats | Improve bradycardia, hypotension, and conduction disturbances |
| |
| Gallic acid |
| Male albino Wistar rats | Improved the status of enzymatic and non-enzymatic antioxidants and ameliorated myocardial damage |
| |
| Fenugreek ( | a polysaccharide extracted from fenugreek seeds | Male Wistar rats; H9c2 cells | Alleviated heart oxidative damage and genotoxicity |
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