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Transfer of Manipulated Tumor-associated Neutrophils into Tumor-Bearing Mice to Study their Angiogenic Potential In Vivo
Published on: July 20, 2019
Metabolomic profiling reveals grade-specific niacinamide accumulation and its therapeutic potential via
Shivani Jaiswal1, Vivek Mishra2, Srija Majumder1
1Amity Institute of Molecular Medicine and Stem Cell Research, Amity University Noida, Uttar Pradesh 201303, India.
Abstract:
Despite new therapies for cervical cancer, innovative strategies are essential to overcome drug resistance and high toxicity. The present study focuses on the metabolic profiling of cervical carcinoma using a non-targeted metabolomics approach using liquid chromatography-mass spectrometry. Our study identified over 70 metabolites in cervical tissue samples (both cancerous and adjacent normal) using HILIC and reversed-phase chromatography in the positive and negative ionization modes. Major metabolic alterations included changes in nicotinamide metabolism, ammonia recycling, amino acid metabolism and nucleotide metabolism, in a grade-dependent manner. Compared to normal tissue, HPV-positive tumors showed elevated nicotinamide metabolism, and phosphatidylethanolamine biosynthesis, whereas HPV-negative tumors showed enriched purine and pyrimidine metabolism. We validated our findings by analyzing transcriptomics datasets from the Gene Expression Omnibus database to understand the expression patterns of the underlying genes involved in the dysregulated pathways. We observed that nicotinamide metabolism exhibits significant effects in lower-grade cervical cancers and specific HPV genotypes. We treated cervical cancer cell lines with niacinamide (NAM), an amide form of niacin, to evaluate its therapeutic efficacy. NAM treatment modulated NAD+ metabolism, affecting key players such as CD38, PARP, NAMPT, and SIRT1, promoting apoptosis and inhibiting cell proliferation in cervical cancer cells. Importantly, HPV-positive SiHa cells showed elevated NAD+ metabolism relative to HPV-negative C33A cells, reflecting distinct metabolic adaptations that may influence tumor progression. The study highlights the metabolic shifts in cancer progression and provides insights into NAM's molecular mechanisms and therapeutic potential for precision medicine in cervical cancer.
Insights
This study reveals key metabolic changes in cervical cancer, particularly in nicotinamide metabolism. Niacinamide (NAM) shows therapeutic potential by targeting NAD+ metabolism, offering new avenues for cervical cancer precision medicine.
Area of Science:
- Oncology
- Metabolomics
- Biochemistry
Background:
- Cervical cancer requires novel therapeutic strategies to combat drug resistance and toxicity.
- Metabolic profiling offers a promising approach to understand cancer progression and identify therapeutic targets.
Purpose of the Study:
- To investigate metabolic alterations in cervical carcinoma using non-targeted metabolomics.
- To explore the therapeutic potential of niacinamide (NAM) in cervical cancer treatment.
Main Methods:
- Liquid chromatography-mass spectrometry (LC-MS) for non-targeted metabolomic profiling of cervical tissues.
- Analysis of transcriptomics datasets to correlate metabolic pathways with gene expression.
- In vitro treatment of cervical cancer cell lines with niacinamide (NAM).
Main Results:
- Identified over 70 metabolites with significant alterations in nicotinamide, ammonia recycling, amino acid, and nucleotide metabolism, varying by cancer grade.
- HPV-positive tumors exhibited elevated nicotinamide and phosphatidylethanolamine metabolism, while HPV-negative tumors showed enriched purine/pyrimidine metabolism.
- Niacinamide (NAM) treatment modulated NAD+ metabolism, induced apoptosis, and inhibited proliferation in cervical cancer cells, with distinct effects observed in HPV-positive vs. HPV-negative cell lines.
Conclusions:
- Metabolic profiling reveals distinct metabolic shifts during cervical cancer progression, influenced by HPV status and cancer grade.
- Niacinamide (NAM) demonstrates therapeutic potential by targeting NAD+ metabolism and impacting key regulatory proteins.
- These findings support the development of NAM-based precision medicine strategies for cervical cancer treatment.

