Implementation of antibody-drug conjugates in HER2-positive solid cancers: Recent advances and future directions
Jiazheng Yu1, Mingyang Li1, Xiandong Liu1
1Department of Urology, Shengjing Hospital of China Medical University, Shenyang, Liaoning 110004, People's Republic of China.
Abstract:
In recent decades, there has been a surge in the approval of monoclonal antibodies for treating a wide range of hematological and solid malignancies. These antibodies exhibit exceptional precision in targeting the surface antigens of tumors, heralding a groundbreaking approach to cancer therapy. Nevertheless, monoclonal antibodies alone do not show sufficient lethality against cancerous cells compared to chemotherapy. Consequently, a new class of anti-tumor medications, known as antibody-drug conjugates (ADCs), has been developed to bridge the divide between monoclonal antibodies and cytotoxic drugs, enhancing their therapeutic potential. ADCs are chemically synthesized by binding tumor-targeting monoclonal antibodies with cytotoxic payloads through linkers that are susceptible to cleavage by intracellular proteases. They combined the accurate targeting of monoclonal antibodies with the potent efficacy of cytotoxic chemotherapy drugs while circumventing systemic toxicity and boasting superior lethality over standalone targeted drugs. The human epidermal growth factor receptor (HER) family, which encompasses HER1 (also known as EGFR), HER2, HER3, and HER4, plays a key role in regulating cellular proliferation, survival, differentiation, and migration. HER2 overexpression in various tumors is one of the most frequently targeted antigens for ADC therapy in HER2-positive cancers. HER2-directed ADCs have emerged as highly promising treatment modalities for patients with HER2-positive cancers. This review focuses on three approved anti-HER2 ADCs (T-DM1, DS-8201a, and RC48) and reviews ongoing clinical trials and failed trials based on anti-HER2 ADCs. Finally, we address the notable challenges linked to ADC development and underscore potential future avenues for tackling these hurdles.
Insights
Antibody-drug conjugates (ADCs) combine targeted monoclonal antibodies with potent chemotherapy drugs. This review examines anti-HER2 ADCs for HER2-positive cancers, discussing approved therapies, clinical trials, and development challenges.
Area of Science:
- Oncology
- Immunotherapy
- Pharmacology
Background:
- Monoclonal antibodies offer targeted cancer therapy but lack sufficient cell-killing power.
- Antibody-drug conjugates (ADCs) integrate monoclonal antibodies with cytotoxic drugs to enhance anti-tumor efficacy.
- The human epidermal growth factor receptor (HER) family, particularly HER2, is a key target in cancer therapy.
Purpose of the Study:
- To review approved anti-HER2 ADCs (T-DM1, DS-8201a, RC48).
- To analyze ongoing and failed clinical trials involving anti-HER2 ADCs.
- To discuss challenges and future directions in ADC development for HER2-positive cancers.
Main Methods:
- Literature review of approved anti-HER2 ADCs.
- Analysis of clinical trial data for anti-HER2 ADCs.
- Discussion of challenges and future prospects in ADC technology.
Main Results:
- Three anti-HER2 ADCs are approved, demonstrating promise in HER2-positive cancers.
- Numerous clinical trials are evaluating anti-HER2 ADCs, with varying success.
- ADC development faces challenges including linker stability, payload efficacy, and resistance mechanisms.
Conclusions:
- Anti-HER2 ADCs represent a significant advancement in treating HER2-positive malignancies.
- Continued research is crucial to overcome ADC development hurdles and optimize patient outcomes.
- Future strategies may involve novel linker chemistries, combination therapies, and overcoming drug resistance.
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