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A Three-Dimensional Spheroid Model to Investigate the Tumor-Stromal Interaction in Hepatocellular Carcinoma
Published on: September 30, 2021
Cyclooxygenases in hepatocellular carcinoma
Abstract:
Many epidemiological studies demonstrate that treatment with non-steroidal anti-inflammatory drugs (NSAIDs) reduce the incidence and mortality of certain malignancies, especially gastrointestinal cancer. The cyclooxygenase (COX) enzymes are well-known targets of NSAIDs. However, conventional NSAIDs non-selectively inhibit both the constitutive form COX-1, and the inducible form COX-2. Recent evidence indicates that COX-2 is an important molecular target for anticancer therapies. Its expression is undetectable in most normal tissues, and is highly induced by pro-inflammatory cytokines, mitogens, tumor promoters and growth factors. It is now well-established that COX-2 is chronically overexpressed in many premalignant, malignant, and metastastic cancers, including hepatocellular carcinoma (HCC). Overexpression of COX-2 in patients with HCC is generally higher in well-differentiated HCCs compared with less-differentiated HCCs or histologically normal liver, suggesting that COX-2 may be involved in the early stages of hepatocarcinogenesis, and increased expression of COX-2 in noncancerous liver tissue has been significantly associated with shorter disease-free survival in patients with HCC. In tumors, overexpression of COX-2 leads to an increase in prostaglandin (PG) levels, which affect many mechanisms involved in carcinogenesis, such as angiogenesis, inhibition of apoptosis, stimulation of cell growth as well as the invasiveness and metastatic potential of tumor cells. The availability of novel agents that selectively inhibit COX-2 (COXIB), has contributed to shedding light on the role of this molecule. Experimental studies on animal models of liver cancer have shown that NSAIDs, including both selective and non-selective COX-2 inhibitors, exert chemopreventive as well as therapeutic effects. However, the key mechanism by which COX-2 inhibitors affect HCC cell growth is as yet not fully understood. Increasing evidence suggests the involvement of molecular targets other than COX-2 in the anti-proliferative effects of COX-2 selective inhibitors. Therefore, COX-inhibitors may use both COX-2-dependent and COX-2-independent mechanisms to mediate their antitumor properties, although their relative contributions toward the in vivo effects remain less clear. Here we review the features of COX enzymes, the role of the expression of COX isoforms in hepatocarcinogenesis and the mechanisms by which they may contribute to HCC growth, the pharmacological properties of COX-2 selective inhibitors, the antitumor effects of COX inhibitors, and the rationale and feasibility of COX-2 inhibitors for the treatment of HCC.
Insights
Non-steroidal anti-inflammatory drugs (NSAIDs) targeting cyclooxygenase-2 (COX-2) show promise in preventing and treating liver cancer. Further research is needed to fully understand COX-2 inhibitor mechanisms in hepatocellular carcinoma (HCC).
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Epidemiological studies indicate non-steroidal anti-inflammatory drugs (NSAIDs) reduce incidence and mortality of certain cancers, particularly gastrointestinal cancer.
- Cyclooxygenase-2 (COX-2) is a key target for anticancer therapies, with its overexpression linked to various cancers, including hepatocellular carcinoma (HCC).
- COX-2 overexpression in HCC correlates with disease progression and may play a role in early hepatocarcinogenesis.
Discussion:
- Overexpressed COX-2 elevates prostaglandin levels, promoting angiogenesis, inhibiting apoptosis, stimulating cell growth, and enhancing tumor invasiveness and metastasis.
- Selective COX-2 inhibitors (COXIBs) demonstrate chemopreventive and therapeutic effects in preclinical liver cancer models.
- The precise mechanisms by which COX-2 inhibitors impact HCC cell growth are not fully elucidated, suggesting potential COX-2-independent pathways.
Key Insights:
- COX-2 is implicated in multiple stages of hepatocarcinogenesis and tumor progression.
- Both selective and non-selective COX-2 inhibitors exhibit antitumor effects in liver cancer models.
- COX-2 inhibitors may exert their effects through both COX-2-dependent and COX-2-independent mechanisms.
Outlook:
- Investigating the dual mechanisms of COX-2 inhibitors is crucial for optimizing HCC treatment strategies.
- Further research into COX-2-independent pathways could reveal novel therapeutic targets.
- Understanding the complex role of COX enzymes in hepatocarcinogenesis is essential for developing effective chemopreventive and therapeutic interventions.
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