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Peumus boldus (Boldo) Aqueous Extract Present Better Protective Effect than Boldine Against Manganese-Induced
Matheus Chimelo Bianchini1, Claudia Ortiz Alves Gularte1, Dandara Fidélis Escoto1
1Universidade Federal do Pampa, Campus Uruguaiana, BR-472 Km 7, Uruguaiana, RS, CEP 97500-970, Brazil.
Abstract:
The cellular, intracellular and molecular mechanism(s) underlying the toxicity of Mn are still incompletely understood, although several points concerning Mn neurotoxicity have been addressed. Importantly, oxidative changes have been reported to be involved in Mn-induced toxicity. As a consequence, antioxidants are expected to offer protection in Drosophila melanogaster exposed to this metal. So, in this study we evaluated the hypothesis that the aqueous extract of boldo (Peumus boldus), and its alkaloids boldine, could prevent/ameliorate behavioral and oxidative alterations induced by Mn in a D. melanogaster intoxication model. Adult wild-type flies were concomitantly exposed to Mn (3 mM) and boldo aqueous extract (5 mg/mL) or boldine (327.37 µg/mL) in the food during 9 days. Mn-fed flies had a worse performance in the negative geotaxis assay and in the open-field test, as well as a higher incidence of mortality and TBARS levels in head and body, when compared to control group. Boldo aqueous extract was found to reduce the mortality rate of the flies exposed to Mn. In turn, boldine was ineffective against Mn-induced mortality and significantly increases mortality per se. Additionally, Mn-induced locomotors dysfunction were fully ameliorated by boldo crude extract and only partially ameliorated by boldine. Likewise, boldo completely normalize head and body TBARS levels, whereas boldine only partially normalize in body. Finally, we found that flies treated with Mn presented significantly decrease in dopamine levels. Our results suggest that boldo crude extract can exert protective effect against Mn-induced toxicity in D. melanogaster, whereas boldine do not. Moreover, our data confirm the utility of this model to investigate potential therapeutic strategies on movement disorders, such as that caused by Mn.
Insights
Boldo extract, but not its alkaloid boldine, protected Drosophila melanogaster against manganese toxicity by reducing mortality and oxidative stress. This study highlights boldo
Area of Science:
- Neurotoxicology
- Oxidative Stress
- Pharmacology
Background:
- Manganese (Mn) neurotoxicity mechanisms are not fully understood, but oxidative damage is implicated.
- Antioxidants may protect against Mn-induced toxicity.
- Drosophila melanogaster serves as a model for studying neurotoxicity and potential treatments.
Purpose of the Study:
- To evaluate if boldo (Peumus boldus) aqueous extract or its alkaloid boldine can prevent/ameliorate Mn-induced behavioral and oxidative damage in Drosophila melanogaster.
- To investigate the protective effects of boldo extract and boldine against Mn toxicity in a fly model.
Main Methods:
- Adult wild-type Drosophila melanogaster were exposed to manganese (Mn) and either boldo aqueous extract or boldine for 9 days.
- Behavioral assays (negative geotaxis, open-field test), mortality rates, TBARS levels (oxidative stress marker), and dopamine levels were assessed.
- Comparison between Mn-exposed flies with and without boldo treatment.
Main Results:
- Mn exposure impaired fly performance, increased mortality, and elevated TBARS levels.
- Boldo aqueous extract reduced Mn-induced mortality and fully ameliorated behavioral deficits and TBARS levels.
- Boldine was ineffective against Mn-induced mortality, only partially improved behavior and TBARS, and decreased dopamine levels.
Conclusions:
- Boldo crude extract demonstrates a protective effect against manganese toxicity in Drosophila melanogaster.
- Boldine, a component of boldo, did not show protective effects and may even increase mortality.
- The Drosophila melanogaster model is useful for investigating therapeutic strategies for movement disorders caused by metal toxicity.

