Targeting signaling pathways in lymphoma: From molecular mechanisms to clinical breakthroughs
Shuqi Wang1, Yuran Qiu1, Weili Zhao1,2
1Shanghai Institute of Hematology, State Key Laboratory of Medical Genomics, National Research Center for Translational Medicine at Shanghai, Ruijin Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China.
Abstract:
The treatment paradigm for lymphoma, a highly heterogeneous group of hematologic malignancies, has been revolutionized by the development of therapies targeting oncogenic signaling pathways. This shift from conventional chemotherapy to precision medicine is driven by a deep molecular understanding of the pathways that govern lymphoma cell survival and proliferation. This review comprehensively surveys the landscape of these targeted therapies, from fundamental molecular mechanisms to clinical breakthroughs. We first dissect the molecular architecture of key oncogenic drivers, covering foundational survival networks such as the B-cell receptor, phosphatidylinositol 3-kinase /protein kinase B/mammalian target of rapamycin, Janus kinase/signal transducer and activator of transcription, and B-cell lymphoma 2 apoptosis pathways; critical regulatory processes like nuclear export controlled by exportin 1 and epigenetic patterns. For each therapeutic class, we discuss the clinical development of specific inhibitors and the challenge of acquired resistance. Furthermore, we examine emerging concepts in lymphoma, including the context-dependent role of the cyclic guanosine monophosphate-adenosine monophosphate synthase-stimulator of interferon genes pathway, to provide a comprehensive overview of the current therapeutic landscape. A central theme of this review is the integration of these targeted agents into clinical practice. We discuss how the successful targeting of oncogenic signaling pathways has enabled the development of effective chemotherapy-free regimens, which offer durable responses with reduced toxicity and improved quality of life. Although initially transformative for patients with indolent lymphomas or those unfit for intensive chemotherapy, this paradigm is now extending to aggressive lymphomas as well. Another pivotal advance is the use of molecular subtyping and predictive biomarkers to guide treatment. As powerfully demonstrated by recent clinical trials, aligning targeted agents with the specific signaling or epigenetic dependencies of a tumor subtype can significantly enhance the efficacy of standard immunochemotherapy backbones in both B-cell and T-cell lymphomas. Finally, we address the persistent challenges of acquired resistance and discuss future directions, including the development of next-generation agents such as proteolysis-targeting chimeras, the design of rational, synergistic combination strategies, and the leveraging of multiomics and artificial intelligence to decipher complex signaling networks. By continuing to translate molecular insights into clinical practice, the field is steadily moving toward the goal of achieving precision cures for patients with lymphoma.
Insights
Targeted therapies are revolutionizing lymphoma treatment by focusing on specific molecular pathways, leading to chemotherapy-free regimens with improved outcomes. This precision medicine approach offers durable responses and better quality of life for patients.
Area of Science:
- Hematologic Malignancies
- Oncology
- Molecular Biology
- Precision Medicine
Background:
- Lymphoma treatment has shifted from conventional chemotherapy to targeted therapies, driven by molecular understanding of cancer pathways.
- Key oncogenic signaling pathways in lymphoma include B-cell receptor, PI3K/AKT/mTOR, JAK/STAT, and BCL2 apoptosis pathways.
- Regulatory processes like nuclear export (Exportin 1) and epigenetics are also critical in lymphoma.
Purpose of the Study:
- To comprehensively review targeted therapies for lymphoma, covering molecular mechanisms, clinical development, and resistance.
- To discuss the integration of targeted agents into clinical practice, including chemotherapy-free regimens and biomarker-guided treatment.
- To explore emerging concepts and future directions in lymphoma therapy.
Main Methods:
- Review of fundamental molecular mechanisms of key oncogenic drivers in lymphoma.
- Analysis of clinical development and resistance patterns for various targeted therapeutic classes.
- Examination of emerging concepts and future directions, including next-generation agents and AI in deciphering signaling networks.
Main Results:
- Targeted therapies have enabled effective chemotherapy-free regimens for lymphoma, offering durable responses and reduced toxicity.
- Molecular subtyping and predictive biomarkers enhance treatment efficacy when aligning targeted agents with tumor-specific dependencies.
- The paradigm is extending from indolent to aggressive lymphomas, improving quality of life.
Conclusions:
- Targeted therapies represent a significant advance in lymphoma treatment, moving towards precision cures.
- Integration of molecular insights and biomarkers is crucial for optimizing treatment strategies.
- Addressing acquired resistance and developing novel combination strategies are key future directions.
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