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Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Novel Anti-Trop2 Nanobodies Disrupt Receptor Dimerization and Inhibit Tumor Cell Growth
Junwen Deng1,2, Zhongmin Geng1,2, Linli Luan3
1The Affiliated Hospital of Qingdao University, Qingdao University, Qingdao 266071, China.
Abstract:
Background: Trop2 (trophoblast cell-surface antigen 2) is overexpressed in multiple malignancies and is closely associated with poor prognosis, thus positioning it as a promising target for pan-cancer therapies. Despite the approval of Trop2-targeted antibody-drug conjugates (ADCs), challenges such as side effects, drug resistance, and limited efficacy persist. Recent studies have shown that the dimeric forms of Trop2 are crucial for its oncogenic functions, and the binding epitopes of existing Trop2-targeted drugs lie distant from the dimerization interface, potentially limiting their antitumor efficacy. Method: A well-established synthetic nanobody library was screened against Trop2-ECD. The identified nanobodies were extensively characterized, including their binding specificity and affinity, as well as their bioactivities in antigen-antibody endocytosis, cell proliferation, and the inhibition of Trop2 dimer assembly. Finally, ELISA based epitope analysis and AlphaFold 3 were employed to elucidate the binding modes of the nanobodies. Results: We identified two nanobodies, N14 and N152, which demonstrated high affinity and specificity for Trop2. Cell-based assays confirmed that N14 and N152 can facilitate receptor internalization and inhibit growth in Trop2-positive tumor cells. Epitope analysis uncovered that N14 and N152 are capable of binding with all three subdomains of Trop2-ECD and effectively disrupt Trop2 dimerization. Predictive modeling suggests that N14 and N152 likely target the epitopes at the interface of Trop2 cis-dimerization. The binding modality and mechanism of action demonstrated by N14 and N152 are unique among Trop2-targeted antibodies. Conclusions: we identified two novel nanobodies, N14 and N152, that specifically bind to Trop2. Importantly, these nanobodies exhibit significant anti-tumor efficacy and distinctive binding patterns, underscoring their potential as innovative Trop2-targeted therapeutics.
Insights
Two novel nanobodies, N14 and N152, were developed to target Trop2 (trophoblast cell-surface antigen 2), a protein overexpressed in many cancers. These nanobodies disrupt Trop2 dimerization and show significant anti-tumor efficacy, offering a promising new therapeutic approach.
Area of Science:
- Biochemistry
- Immunology
- Oncology
Background:
- Trophoblast cell-surface antigen 2 (Trop2) is a promising pan-cancer therapeutic target due to its overexpression in multiple malignancies and association with poor prognosis.
- Current Trop2-targeted therapies, such as antibody-drug conjugates (ADCs), face challenges including side effects, drug resistance, and limited efficacy.
- The dimeric forms of Trop2 are critical for oncogenic functions, and existing drug epitopes are distant from the dimerization interface, potentially hindering efficacy.
Purpose of the Study:
- To identify and characterize novel nanobodies targeting Trop2.
- To investigate the potential of these nanobodies in disrupting Trop2 dimerization and inhibiting tumor growth.
- To elucidate the unique binding modes and mechanisms of action of newly identified Trop2-targeting nanobodies.
Main Methods:
- Screening of a synthetic nanobody library against Trop2 extracellular domain (Trop2-ECD).
- Characterization of nanobody binding specificity, affinity, and bioactivity, including antigen-antibody endocytosis and cell proliferation inhibition.
- Epitope analysis using ELISA and predictive modeling with AlphaFold 3 to determine binding sites and mechanisms.
Main Results:
- Two high-affinity, specific nanobodies, N14 and N152, were identified.
- N14 and N152 demonstrated effective Trop2 internalization and inhibited proliferation in Trop2-positive tumor cells.
- Epitope mapping revealed that N14 and N152 bind to all Trop2-ECD subdomains and disrupt Trop2 dimerization, likely targeting the cis-dimerization interface.
Conclusions:
- Novel nanobodies N14 and N152 specifically bind to Trop2 with unique epitope targeting.
- These nanobodies exhibit significant anti-tumor efficacy by disrupting Trop2 dimerization.
- N14 and N152 represent innovative Trop2-targeted therapeutics with potential for improved pan-cancer treatment outcomes.
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