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Molecular alterations and targeted therapy in pancreatic ductal adenocarcinoma
Yunzhen Qian1,2,3,4, Yitao Gong1,2,3, Zhiyao Fan1,2,3
1Department of Pancreatic Surgery, Fudan University Shanghai Cancer Center, NO.270 DongAn Road, Shanghai, 200032, China.
Abstract:
Pancreatic ductal adenocarcinoma (PDAC) is a malignancy characterized by a poor prognosis and high mortality rate. Genetic mutations and altered molecular pathways serve as targets in precise therapy. Using next-generation sequencing (NGS), these aberrant alterations can be identified and used to develop strategies that will selectively kill cancerous cells in patients with PDAC. The realization of targeted therapies in patients with PDAC may be summarized by three approaches. First, because oncogenes play a pivotal role in tumorigenesis, inhibition of dysregulated oncogenes is a promising method (Table 3). Numerous researchers are developing strategies to target oncogenes, such as KRAS, NRG1, and NTRK and related molecules, although most of the results are unsatisfactory. Accordingly, emerging strategies are being developed to target these oncogenes, including simultaneously inhibiting multiple molecules or pathways, modification of mutant residues by small molecules, and RNA interference. Second, researchers have attempted to reactivate inactivated tumour suppressors or modulate related molecules. TP53, CDKN2A and SMAD4 are three major tumour suppressors involved in PDAC. Advances have been achieved in clinical and preclinical trials of therapies targeting these three genes, and further investigations are warranted. The TGF-β-SMAD4 signalling pathway plays a dual role in PDAC tumorigenesis and participates in mediating tumour-stroma crosstalk and modulating the tumour microenvironment (TME); thus, molecular subtyping of pancreatic cancer according to the SMAD4 mutation status may be a promising precision oncology technique. Finally, genes such as KDM6A and BRCA have vital roles in maintaining the structural stability and physiological functions of normal chromosomes and are deficient in some patients with PDAC, thus serving as potential targets for correcting these deficiencies and precisely killing these aberrant tumour cells. Recent clinical trials, such as the POLO (Pancreas Cancer Olaparib Ongoing) trial, have reported encouraging outcomes. In addition to genetic event-guided treatment, immunotherapies such as chimeric antigen receptor T cells (CAR-T), antibody-drug conjugates, and immune checkpoint inhibitors also exhibit the potential to target tumours precisely, although the clinical value of immunotherapies as treatments for PDAC is still limited. In this review, we focus on recent preclinical and clinical advances in therapies targeting aberrant genes and pathways and predict the future trend of precision oncology for PDAC.
Insights
Precision oncology for pancreatic cancer targets genetic mutations. Strategies include inhibiting oncogenes, reactivating tumor suppressors, and correcting gene deficiencies, with emerging immunotherapies showing promise.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Pancreatic ductal adenocarcinoma (PDAC) has a poor prognosis and high mortality.
- Genetic mutations and altered molecular pathways are key drivers of PDAC.
- Next-generation sequencing (NGS) enables identification of these alterations for targeted therapy development.
Purpose of the Study:
- To review recent preclinical and clinical advances in precision oncology for PDAC.
- To explore targeted therapies focusing on aberrant genes and pathways.
- To predict future trends in precision medicine for PDAC.
Main Methods:
- Review of recent preclinical and clinical studies on PDAC targeted therapies.
- Analysis of strategies targeting oncogenes (e.g., KRAS, NRG1, NTRK).
- Investigation of approaches targeting tumor suppressors (e.g., TP53, CDKN2A, SMAD4) and DNA repair genes (e.g., KDM6A, BRCA).
- Evaluation of emerging immunotherapies (e.g., CAR-T, immune checkpoint inhibitors).
Main Results:
- Targeting oncogenes shows some promise, with ongoing development of novel strategies like simultaneous inhibition and RNA interference.
- Advances in targeting tumor suppressors like TP53, CDKN2A, and SMAD4 are evident in clinical and preclinical trials.
- PARP inhibitors (e.g., Olaparib) show encouraging outcomes in trials like POLO for PDAC.
- Immunotherapies demonstrate potential but have limited clinical value in PDAC currently.
Conclusions:
- Precision oncology for PDAC involves targeting oncogenes, tumor suppressors, and DNA repair pathways.
- Molecular subtyping based on mutations like SMAD4 may enhance treatment strategies.
- Continued research into gene-targeted therapies and immunotherapies is crucial for improving PDAC patient outcomes.
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