Structural surfaceomics reveals an AML-specific conformation of integrin β 2 as a CAR T cellular therapy target.
Kamal MandalGianina WicaksonoClinton YuJarrett J AdamsMichael R HoopmannWilliam C TempleAdila IzgutdinaBonell Patiño EscobarMaryna GorelikChristian H IhlingMatthew A NixAkul NaikWilliam H XieJuwita HübnerLisa A RollinsSandy M ReidEmilio RamosCorynn KasapVeronica SteriJuan Antonio Camara SerranoFernando SalangsangPaul PhojanakongMelanie McMillanVictor GavallosAndrew D LeavittAaron C LoganCliona M RooneyJustin EyquemAndrea SinzBenjamin S BraunElliot StieglitzCatherine C SmithRobert L MoritzSachdev S SidhuLan HuangArun P WiitaPublished in: Nature cancer (2023)
Safely expanding indications for cellular therapies has been challenging given a lack of highly cancer-specific surface markers. Here we explore the hypothesis that tumor cells express cancer-specific surface protein conformations that are invisible to standard target discovery pipelines evaluating gene or protein expression, and these conformations can be identified and immunotherapeutically targeted. We term this strategy integrating cross-linking mass spectrometry with glycoprotein surface capture 'structural surfaceomics'. As a proof of principle, we apply this technology to acute myeloid leukemia (AML), a hematologic malignancy with dismal outcomes and no known optimal immunotherapy target. We identify the activated conformation of integrin β 2 as a structurally defined, widely expressed AML-specific target. We develop and characterize recombinant antibodies to this protein conformation and show that chimeric antigen receptor T cells eliminate AML cells and patient-derived xenografts without notable toxicity toward normal hematopoietic cells. Our findings validate an AML conformation-specific target antigen and demonstrate a tool kit for applying these strategies more broadly.
Keyphrases
- acute myeloid leukemia
- allogeneic hematopoietic stem cell transplantation
- induced apoptosis
- mass spectrometry
- molecular dynamics simulations
- papillary thyroid
- oxidative stress
- acute lymphoblastic leukemia
- cell proliferation
- preterm infants
- stem cells
- dna methylation
- drug delivery
- endoplasmic reticulum stress
- high resolution
- cell migration
- insulin resistance
- mesenchymal stem cells
- skeletal muscle
- cell therapy
- pi k akt