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Updated: Mar 3, 2026

Chemiluminescence-based Assays for Detection of Nitric Oxide and its Derivatives from Autoxidation and Nitrosated Compounds
Published on: February 16, 2022
The role of nitric oxide in inflammation, tumor microenvironment, and cancer therapy
Akhil Nair1, Harishkumar Madhyastha2, B C Revanasiddappa3
1Nitte (Deemed to Be University), Department of Pharmaceutics, NGSM Institute of Pharmaceutical Sciences (NGSMIPS), Mangalore, Karnataka, 575018, India.
Abstract:
Nitric oxide (NO) is a widespread signaling molecule which has far-reaching effects in cellular physiology and pathophysiology, especially in cancer biology. Its actions are concentration-dependent where low concentrations facilitate tumor development and high concentrations cause cytotoxicity. NO alters several cancer hallmarks, affecting the initiation, progression, immune evasion, and therapeutic responses of tumors via cGMP-dependent and -independent pathways. Various cell types in the tumor microenvironment (TME) produce NO in a concentration gradient creating a strong concentration gradient that forms the immune landscape. NO mediates immunosuppression through the regulation of tumor-associated macrophage, myeloid-derived suppressor cell, T cells, and natural killer cells. It also controls angiogenesis and normalization of the vasculature via the VEGF-NO axis. Moreover, NO effects epithelial-mesenchymal transition and metastasis concentration-dependently. Notably, NO exists in a complex interaction with gasotransmitters, and it interacts with hydrogen sulfide and carbon monoxide in crosstalk to control cancer biology. Therapeutic interventions that focus on NO e.g., NO donors, iNOS-inhibitors and nanodelivery systems have been promising in preclinical practice. Nevertheless, clinical translation is complicated by the fact that the concentrations of intratumoral NO have to be tightly controlled, safety issues exist, and there are not many biomarkers of patient stratification. Integration of NO-based therapies with immunotherapy and precision medicine approaches holds promise for enhancing treatment outcomes. Continued research spanning chemical, biological, and clinical domains is crucial for unlocking the full therapeutic potential of NO in cancer.
Insights
Nitric oxide (NO) concentration dictates its role in cancer, promoting growth at low levels and causing cell death at high levels. Controlling NO is key for effective cancer therapies.
Area of Science:
- Oncology
- Molecular Biology
- Immunology
Background:
- Nitric oxide (NO) is a crucial signaling molecule in cancer biology.
- NO's dual role is concentration-dependent, influencing tumor initiation, progression, and immune evasion.
- NO modulates the tumor microenvironment (TME) and interacts with other gasotransmitters.
Purpose of the Study:
- To elucidate the multifaceted roles of nitric oxide in cancer pathophysiology.
- To explore NO's impact on cancer hallmarks, immune evasion, angiogenesis, and metastasis.
- To review current and future therapeutic strategies involving NO in cancer treatment.
Main Methods:
- Literature review and synthesis of existing research on nitric oxide in cancer.
- Analysis of NO's concentration-dependent effects via cGMP-dependent and -independent pathways.
- Examination of NO's interactions within the tumor microenvironment and with other signaling molecules.
Main Results:
- Low NO concentrations promote tumor development, while high concentrations exhibit cytotoxicity.
- NO significantly influences immune suppression, angiogenesis (VEGF-NO axis), and epithelial-mesenchymal transition.
- NO crosstalks with hydrogen sulfide and carbon monoxide, impacting cancer biology.
Conclusions:
- Precise control of intratumoral NO concentrations is critical for therapeutic success.
- NO-based therapies, including donors and inhibitors, show preclinical promise but face clinical translation challenges.
- Integrating NO-based strategies with immunotherapy and precision medicine offers potential for improved cancer treatment outcomes.
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