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NOD1 and NOD2 Are Potential Therapeutic Targets for Cancer Immunotherapy
1Department of Pharmacy, Affiliated Cancer Hospital of Zhengzhou University and Henan Cancer Hospital, Zhengzhou, Henan 450003, China.
Abstract:
The nucleotide oligomerization domain (NOD)-like receptors (NLRs) are a group of intracellular proteins that are essential for controlling the host's innate immune response. The cytosolic nucleotide binding oligomerization domains 1 and 2 receptors (NOD1 and NOD2) are the most widely investigated NLRs. As pattern recognition receptors (PRRs), NOD1 and NOD2 may recognize and bind endogenous damage associated molecular patterns (DAMPs) and external pathogenic associated molecular patterns (PAMPs), directing the activation of inflammatory caspases through engaging the adaptor protein RIP2, which further activates the NF-κB and mitogen-activated protein kinase (MAPK) signaling pathways, thereby mediating host innate immunity and regulating the adaptive immunity. Previous research has identified NOD1 and NOD2 as key players in inflammatory disease and host-microbial defense. Despite numerous studies claiming that NOD1 and NOD2 are linked to tumorigenesis and tumor development, it is still unclear whether NOD1 and NOD2 act as cancer's friends or foes. In this review, we focus on concluding the current research progress on the role of NOD1 and NOD2 in a variety of cancers and discussing the potential reasons for the contradicting role of NOD1 and NOD2 in cancers. This review may help better understand the role of NOD1 and NOD2 in cancer and shed light on NOD1 and NOD2 as potential therapeutic targets for tumor immunotherapy.
Insights
Nucleotide oligomerization domain receptors (NOD1 and NOD2) are crucial for innate immunity. Their dual role in cancer remains unclear, necessitating further research for potential immunotherapy targets.
Area of Science:
- Immunology
- Molecular Biology
- Oncology
Background:
- Nucleotide oligomerization domain (NOD)-like receptors (NLRs) are intracellular proteins critical for innate immunity.
- NOD1 and NOD2, key NLRs, function as pattern recognition receptors (PRRs), detecting damage- and pathogen-associated molecular patterns.
- NOD1 and NOD2 signaling via RIP2 activates NF-κB and MAPK pathways, influencing inflammation, immunity, and host defense.
Purpose of the Study:
- To review current research on NOD1 and NOD2 roles in various cancers.
- To discuss conflicting findings regarding NOD1 and NOD2 involvement in tumorigenesis.
- To explore NOD1 and NOD2 as potential therapeutic targets in cancer immunotherapy.
Main Methods:
- Literature review of studies on NOD1 and NOD2 in cancer.
- Analysis of conflicting roles in tumorigenesis and tumor development.
- Synthesis of current research progress and future directions.
Main Results:
- NOD1 and NOD2 are implicated in tumorigenesis, but their roles are contradictory.
- Evidence suggests both tumor-promoting and tumor-suppressing functions.
- Understanding these dual roles is crucial for therapeutic strategies.
Conclusions:
- The precise role of NOD1 and NOD2 in cancer remains ambiguous.
- Further investigation is needed to elucidate their complex functions in different cancer types.
- NOD1 and NOD2 may represent promising targets for novel cancer immunotherapies.
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