Minimal residual disease in cancer therapy--Small things make all the difference
Sohvi Blatter1, Sven Rottenberg2
1Institute of Animal Pathology, Vetsuisse Faculty, University of Bern, Laengassstrasse 122, 3012 Bern, Switzerland.
Abstract:
Minimal residual disease (MRD) is a major hurdle in the eradication of malignant tumors. Despite the high sensitivity of various cancers to treatment, some residual cancer cells persist and lead to tumor recurrence and treatment failure. Obvious reasons for residual disease include mechanisms of secondary therapy resistance, such as the presence of mutant cells that are insensitive to the drugs, or the presence of cells that become drug resistant due to activation of survival pathways. In addition to such unambiguous resistance modalities, several patients with relapsing tumors do not show refractory disease and respond again when the initial therapy is repeated. These cases cannot be explained by the selection of mutant tumor cells, and the precise mechanisms underlying this clinical drug resistance are ill-defined. In the current review, we put special emphasis on cell-intrinsic and -extrinsic mechanisms that may explain mechanisms of MRD that are independent of secondary therapy resistance. In particular, we show that studying genetically engineered mouse models (GEMMs), which highly resemble the disease in humans, provides a complementary approach to understand MRD. In these animal models, specific mechanisms of secondary resistance can be excluded by targeted genetic modifications. This allows a clear distinction between the selection of cells with stable secondary resistance and mechanisms that result in the survival of residual cells but do not provoke secondary drug resistance. Mechanisms that may explain the latter feature include special biochemical defense properties of cancer stem cells, metabolic peculiarities such as the dependence on autophagy, drug-tolerant persisting cells, intratumoral heterogeneity, secreted factors from the microenvironment, tumor vascularization patterns and immunosurveillance-related factors. We propose in the current review that a common feature of these various mechanisms is cancer cell dormancy. Therefore, dormant cancer cells appear to be an important target in the attempt to eradicate residual cancer cells, and eventually cure patients who repeatedly respond to anticancer therapy but lack complete tumor eradication.
Insights
Minimal residual disease (MRD) poses a significant challenge in cancer treatment, leading to recurrence. This review explores mechanisms of MRD beyond secondary therapy resistance, highlighting cancer cell dormancy as a key target for complete tumor eradication.
Area of Science:
- Oncology
- Cancer Biology
- Translational Medicine
Background:
- Minimal residual disease (MRD) is a critical factor in cancer treatment failure and tumor recurrence.
- Existing treatments often leave residual cancer cells, leading to relapse even in sensitive cancers.
- Mechanisms of secondary therapy resistance, like drug-insensitive mutants, explain some MRD, but not all cases.
Purpose of the Study:
- To investigate cell-intrinsic and -extrinsic mechanisms of MRD independent of secondary therapy resistance.
- To emphasize the role of genetically engineered mouse models (GEMMs) in dissecting MRD mechanisms.
- To identify common features underlying residual cancer cell survival without acquired drug resistance.
Main Methods:
- Review of existing literature on minimal residual disease.
- Analysis of genetically engineered mouse models (GEMMs) to exclude secondary resistance mechanisms.
- Identification of factors contributing to residual cancer cell survival, including cancer stem cell properties, metabolism, and microenvironment interactions.
Main Results:
- GEMMs allow differentiation between stable secondary resistance and other MRD mechanisms.
- Identified potential MRD mechanisms include cancer stem cell defense, autophagy dependence, drug-tolerant cells, heterogeneity, microenvironment factors, vascularization, and immunosurveillance.
- Cancer cell dormancy is proposed as a unifying feature of these MRD mechanisms.
Conclusions:
- Mechanisms beyond secondary therapy resistance are crucial for understanding MRD.
- Cancer cell dormancy represents a promising therapeutic target for eradicating residual disease.
- Targeting dormant cancer cells could improve outcomes for patients with relapsing tumors.
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