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A CRISPR Screen Reveals Resistance Mechanisms to CD3-Bispecific Antibody Therapy
Si-Qi Liu1, Alyssa Grantham1, Casey Landry1
1Novartis Institutes for BioMedical Research, Cambridge, Massachusetts.
Abstract:
CD3-bispecific antibodies represent an important therapeutic strategy in oncology. These molecules work by redirecting cytotoxic T cells to antigen-bearing tumor cells. Although CD3-bispecific antibodies have been developed for several clinical indications, cases of cancer-derived resistance are an emerging limitation to the more generalized application of these molecules. Here, we devised whole-genome CRISPR screens to identify cancer resistance mechanisms to CD3-bispecific antibodies across multiple targets and cancer types. By validating the screen hits, we found that deficiency in IFNγ signaling has a prominent role in cancer resistance. IFNγ functioned by stimulating the expression of T-cell killing-related molecules in a cell type-specific manner. By assessing resistance to the clinical CD3-bispecific antibody flotetuzumab, we identified core fucosylation as a critical pathway to regulate flotetuzumab binding to the CD123 antigen. Disruption of this pathway resulted in significant resistance to flotetuzumab treatment. Proper fucosylation of CD123 was required for its normal biological functions. In order to treat the resistance associated with fucosylation loss, flotetuzumab in combination with an alternative targeting CD3-bispecific antibody demonstrated superior efficacy. Together, our study reveals multiple mechanisms that can be targeted to enhance the clinical potential of current and future T-cell-engaging CD3-bispecific antibody therapies.
Insights
Cancer resistance to CD3-bispecific antibodies can be overcome by understanding IFNγ signaling pathways and core fucosylation. Targeting these mechanisms enhances T-cell engaging therapies for improved oncology treatment outcomes.
Area of Science:
- Oncology
- Immunotherapy
- Cancer Biology
Background:
- CD3-bispecific antibodies redirect cytotoxic T cells to tumors, offering a promising cancer therapy.
- Cancer-derived resistance limits the broad application of these T-cell engaging therapies.
Purpose of the Study:
- To identify cancer resistance mechanisms against CD3-bispecific antibodies.
- To explore strategies for overcoming resistance to enhance therapeutic efficacy.
Main Methods:
- Utilized whole-genome CRISPR screens across multiple cancer types and targets.
- Validated screen hits, focusing on IFNγ signaling and CD123 antigen properties.
- Assessed resistance to flotetuzumab and investigated the role of core fucosylation.
Main Results:
- Deficiency in Interferon-gamma (IFNγ) signaling emerged as a key resistance mechanism.
- Core fucosylation of the CD123 antigen critically regulates flotetuzumab binding and efficacy.
- Loss of proper fucosylation led to significant resistance, while combination therapy showed improved outcomes.
Conclusions:
- IFNγ signaling and core fucosylation are crucial targets for overcoming resistance to CD3-bispecific antibodies.
- Understanding these mechanisms can guide the development of more effective T-cell engaging immunotherapies.
- Combination strategies involving alternative CD3-bispecific antibodies show potential for treating resistant cancers.

