A safe haven for cancer cells: tumor plus stroma control by DYRK1B
Miriam Ems1, Anna Brichkina2, Matthias Lauth3
1Department of Gastroenterology, Endocrinology and Metabolism, Center for Tumor and Immune Biology, Philipps University Marburg, Marburg, Germany.
Abstract:
The development of resistance remains one of the biggest challenges in clinical cancer patient care and it comprises all treatment modalities from chemotherapy to targeted or immune therapy. In solid malignancies, drug resistance is the result of adaptive processes occurring in cancer cells or the surrounding tumor microenvironment (TME). Future therapy attempts will therefore benefit from targeting both, tumor and stroma compartments and drug targets which affect both sides will be highly appreciated. In this review, we describe a seemingly paradoxical oncogenic mediator with this potential: The dual-specificity tyrosine-phosphorylation regulated kinase 1B (DYRK1B). DYRK1B promotes proliferative quiescence and yet is overexpressed or amplified in many hyperproliferative malignancies including ovarian cancer and pancreatic cancer. In particular the latter disease is a paradigmatic example for a therapy-recalcitrant and highly stroma-rich cancer entity. Here, recent evidence suggests that DYRK1B exerts its oncogenic features by installing a protective niche for cancer cells by directly affecting cancer cells but also the TME. Specifically, DYRK1B not only fosters cell-intrinsic processes like cell survival, chemoresistance, and disease recurrence, but it also upregulates TME and cancer cell-protective innate immune checkpoints and down-modulates anti-tumoral macrophage functionality. In this article, we outline the well-established cell-autonomous roles of DYRK1B and extend its importance to the TME and the control of the tumor immune stroma. In summary, DYRK1B appears as a single novel key player creating a safe haven for cancer cells by acting cell-intrinsically and-extrinsically, leading to the promotion of cancer cell survival, chemoresistance, and relapse. Thus, DYRK1B appears as an attractive drug target for future therapeutic approaches.
Insights
Dual-specificity tyrosine-phosphorylation regulated kinase 1B (DYRK1B) drives cancer resistance by protecting tumor cells and the tumor microenvironment (TME). Targeting DYRK1B offers a novel therapeutic strategy for overcoming treatment resistance in solid malignancies.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Drug resistance is a major challenge in cancer care, impacting all treatment modalities.
- Resistance arises from adaptive processes in cancer cells and the tumor microenvironment (TME).
- Targeting both tumor and stromal compartments is crucial for future cancer therapies.
Purpose of the Study:
- To review the role of dual-specificity tyrosine-phosphorylation regulated kinase 1B (DYRK1B) as an oncogenic mediator.
- To highlight DYRK1B's potential in overcoming cancer drug resistance.
- To explore DYRK1B's impact on both cancer cells and the TME.
Main Methods:
- Literature review of DYRK1B's function in solid malignancies.
- Analysis of DYRK1B's cell-autonomous and TME-related oncogenic activities.
- Examination of DYRK1B's role in immune checkpoint regulation and macrophage function.
Main Results:
- DYRK1B is overexpressed in hyperproliferative malignancies like ovarian and pancreatic cancers.
- DYRK1B promotes cancer cell survival, chemoresistance, and disease recurrence.
- DYRK1B modulates the TME by upregulating immune checkpoints and down-regulating anti-tumoral macrophages.
Conclusions:
- DYRK1B acts as a key mediator creating a protective niche for cancer cells.
- DYRK1B influences both intrinsic cancer cell processes and extrinsic TME functions.
- DYRK1B represents an attractive therapeutic target for enhancing cancer treatment efficacy.
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