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Assessment of the Metabolic Effects of Isocaloric 2:1 Intermittent Fasting in Mice
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Monitoring the Biological Impact and Therapeutic Potential of Intermittent Fasting in Oncology: Assessing Strategies
Maria Bendykowska1, Grażyna Gromadzka2
1Faculty of Medicine, Collegium Medicum, Cardinal Stefan Wyszynski University, Woycickiego Street 1/3, 01-938 Warsaw, Poland.
Abstract:
Background: Intermittent fasting (IF) is emerging as a promising non-pharmacological intervention in oncology, with the potential to modulate key biological processes including metabolic reprogramming, inflammation, autophagy, and immune function, particularly through the PI3K/AKT/mTOR pathway. However, translating IF into clinical practice requires robust tools to monitor its biological impact and therapeutic effectiveness. Objective: This narrative review aims to present and critically evaluate current diagnostic and monitoring strategies that can support the safe and effective integration of IF into oncological care. Methods: A comprehensive literature search was conducted across PubMed/Medline, Science Direct, Scopus, Wiley Online Library, and Google Scholar using a combination of free-text and MeSH terms related to intermittent fasting, oncology, biomarkers, immunophenotyping, metabolic pathways, gut microbiome, and diagnostic imaging. Results: Two principal categories of monitoring objectives were identified. The first-mechanistic monitoring-focuses on elucidating IF-induced biological effects, including modulation of insulin/IGF-1 signaling, oxidative stress reduction, autophagy activation, immune reprogramming, and microbiome alterations. Advanced research tools such as single-cell RNA sequencing, proteomics, metabolomics, and circulating tumor DNA (ctDNA) assays offer high-resolution insights but currently remain limited to preclinical or translational settings due to cost and complexity. The second-clinical response monitoring-assesses IF's impact on treatment outcomes, including chemotherapy and immunotherapy response, toxicity reduction, tumor dynamics, and maintenance of nutritional and functional status. This requires clinically validated, accessible, and interpretable diagnostic tools. Conclusions: A dual-layered monitoring framework that integrates both mechanistic insights and clinical applicability is essential for the personalized implementation of IF in oncology. Although preliminary findings are promising, large-scale randomized trials with standardized protocols are necessary to confirm the efficacy, safety, and feasibility of IF in routine oncological care. The integration of IF with modern diagnostics may ultimately contribute to a more individualized, biologically informed cancer treatment paradigm.
Insights
Intermittent fasting (IF) shows promise in cancer care by affecting metabolism and immunity. Effective clinical use requires integrated monitoring of biological effects and patient outcomes.
Area of Science:
- Oncology
- Nutritional Science
- Biomedical Research
Background:
- Intermittent fasting (IF) is a non-pharmacological approach in oncology, influencing metabolic reprogramming, inflammation, autophagy, and immune function via pathways like PI3K/AKT/mTOR.
- Clinical integration of IF necessitates robust monitoring tools for biological impact and therapeutic effectiveness.
Purpose of the Study:
- To review and evaluate current diagnostic and monitoring strategies for integrating IF into oncological care.
- To assess tools supporting the safe and effective use of IF in cancer treatment.
Main Methods:
- Comprehensive literature search across major scientific databases (PubMed, Scopus, etc.).
- Keywords included intermittent fasting, oncology, biomarkers, immunophenotyping, metabolic pathways, gut microbiome, and diagnostic imaging.
Main Results:
- Two monitoring categories identified: mechanistic (elucidating IF's biological effects) and clinical response (assessing IF's impact on outcomes).
- Mechanistic monitoring uses advanced tools (proteomics, metabolomics, ctDNA) currently limited to research settings.
- Clinical response monitoring requires validated, accessible tools for assessing treatment outcomes, toxicity, and patient status.
Conclusions:
- A dual-layered monitoring framework integrating mechanistic and clinical aspects is crucial for personalized IF in oncology.
- Large-scale trials with standardized protocols are needed to confirm IF's efficacy, safety, and feasibility in routine care.
- Integrating IF with diagnostics can advance individualized, biologically informed cancer treatment.
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