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Published on: November 12, 2019
A Novel Anti-CD47 Nanobody Tetramer for Cancer Therapy
Nataliya M Ratnikova1,2, Yulia Kravchenko1, Anna Ivanova1,3
1Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, Moscow 117997, Russia.
Abstract:
CD47 acts as a defense mechanism for tumor cells by sending a "don't eat me" signal via its bond with SIRPα. With CD47's overexpression linked to poor cancer outcomes, its pathway has become a target in cancer immunotherapy. Though monoclonal antibodies offer specificity, they have limitations like the large size and production costs. Nanobodies, due to their small size and unique properties, present a promising therapeutic alternative. In our study, a high-affinity anti-CD47 nanobody was engineered from an immunized alpaca. We isolated a specific VHH from the phage library, which has nanomolar affinity to SIRPα, and constructed a streptavidin-based tetramer. The efficacy of the nanobody and its derivative was evaluated using various assays. The new nanobody demonstrated higher affinity than the monoclonal anti-CD47 antibody, B6H12.2. The nanobody and its derivatives also stimulated substantial phagocytosis of tumor cell lines and induced apoptosis in U937 cells, a response confirmed in both in vitro and in vivo settings. Our results underscore the potential of the engineered anti-CD47 nanobody as a promising candidate for cancer immunotherapy. The derived nanobody could offer a more effective, cost-efficient alternative to conventional antibodies in disrupting the CD47-SIRPα axis, opening doors for its standalone or combinatorial therapeutic applications in oncology.
Insights
Engineered nanobodies targeting CD47 show promise for cancer immunotherapy. These small, high-affinity molecules effectively trigger tumor cell destruction and apoptosis, offering a cost-efficient alternative to traditional antibodies.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- CD47 is overexpressed in tumors, promoting immune evasion via SIRPα interaction.
- Conventional monoclonal antibodies targeting CD47 have limitations in size and cost.
- Nanobodies offer a potential therapeutic alternative due to their unique properties.
Purpose of the Study:
- To engineer and characterize a high-affinity nanobody targeting the CD47-SIRPα axis.
- To evaluate the therapeutic potential of the anti-CD47 nanobody and its derivatives in cancer models.
Main Methods:
- Isolation of a VHH nanobody from an immunized alpaca phage library.
- Construction of a streptavidin-based tetramer nanobody derivative.
- In vitro and in vivo assays to assess phagocytosis, apoptosis induction, and efficacy.
Main Results:
- Engineered nanobody exhibits nanomolar affinity for SIRPα, surpassing the affinity of B6H12.2 antibody.
- Nanobody and derivatives effectively stimulate tumor cell phagocytosis and induce apoptosis in U937 cells.
- Demonstrated efficacy in both in vitro and in vivo cancer models.
Conclusions:
- The engineered anti-CD47 nanobody is a potent candidate for cancer immunotherapy.
- Nanobody-based therapeutics offer a more effective and cost-efficient approach to disrupt the CD47-SIRPα pathway.
- Potential for standalone or combinatorial use in oncology treatments.
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