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Updated: Aug 3, 2025

Real-Time Measurement of the Mitochondrial Bioenergetic Profile of Neutrophils
Published on: June 2, 2023
Inflammation, Mitochondria and Natural Compounds Together in the Circle of Trust
Salvatore Nesci1, Anna Spagnoletta2, Francesca Oppedisano3
1Department of Veterinary Medical Sciences, Alma Mater Studiorum-Università di Bologna, 40064 Ozzano Emilia, Italy.
Abstract:
Human diseases are characterized by the perpetuation of an inflammatory condition in which the levels of Reactive Oxygen Species (ROS) are quite high. Excessive ROS production leads to DNA damage, protein carbonylation and lipid peroxidation, conditions that lead to a worsening of inflammatory disorders. In particular, compromised mitochondria sustain a stressful condition in the cell, such that mitochondrial dysfunctions become pathogenic, causing human disorders related to inflammatory reactions. Indeed, the triggered inflammation loses its beneficial properties and turns harmful if dysregulation and dysfunctions are not addressed. Thus, reducing oxidative stress with ROS scavenger compounds has proven to be a successful approach to reducing inflammation. Among these, natural compounds, in particular, polyphenols, alkaloids and coenzyme Q10, thanks to their antioxidant properties, are capable of inhibiting the activation of NF-κB and the expression of target genes, including those involved in inflammation. Even more, clinical trials, and in vivo and in vitro studies have demonstrated the antioxidant and anti-inflammatory effects of phytosomes, which are capable of increasing the bioavailability and effectiveness of natural compounds, and have long been considered an effective non-pharmacological therapy. Therefore, in this review, we wanted to highlight the relationship between inflammation, altered mitochondrial oxidative activity in pathological conditions, and the beneficial effects of phytosomes. To this end, a PubMed literature search was conducted with a focus on various in vitro and in vivo studies and clinical trials from 2014 to 2022.
Insights
High Reactive Oxygen Species (ROS) levels drive inflammation and disease. Phytosomes, enhancing natural compounds, show promise in reducing oxidative stress and inflammation, offering a non-pharmacological therapy approach.
Area of Science:
- Biochemistry
- Cell Biology
- Pathology
Background:
- Human diseases often involve chronic inflammation and elevated Reactive Oxygen Species (ROS).
- Mitochondrial dysfunction exacerbates cellular stress and contributes to inflammatory disorders.
- Excessive ROS production causes cellular damage, worsening inflammatory conditions.
Purpose of the Study:
- To review the link between inflammation, mitochondrial oxidative stress, and the therapeutic potential of phytosomes.
- To highlight the role of natural compounds and their enhanced bioavailability via phytosomes in managing inflammatory diseases.
Main Methods:
- Literature search of PubMed database (2014-2022).
- Focus on in vitro, in vivo studies, and clinical trials.
- Analysis of antioxidant and anti-inflammatory mechanisms of natural compounds and phytosomes.
Main Results:
- Natural compounds (polyphenols, alkaloids, coenzyme Q10) possess antioxidant properties that can mitigate inflammation by inhibiting NF-κB activation.
- Phytosomes significantly enhance the bioavailability and efficacy of these natural compounds.
- Studies confirm the antioxidant and anti-inflammatory effects of phytosomes in various models.
Conclusions:
- Phytosomes represent a promising non-pharmacological strategy for managing inflammatory diseases by reducing oxidative stress.
- Targeting mitochondrial oxidative activity with phytosome-delivered compounds offers a therapeutic avenue.
- Further research supports phytosomes as effective agents in combating ROS-induced inflammatory conditions.
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