Targeting CD300f to enhance hematopoietic stem cell transplantation in acute myeloid leukemia
BLOOD ADVANCES
Authors: Abadir, Edward; Silveira, Pablo A.; Gasiorowski, Robin E.; Ramesh, Murari; Romano, Adelina; Mekkawy, Ahmed H.; Lo, Tsun-Ho; Kabani, Karieshma; Sutherland, Sarah; Pietersz, Geoffrey A.; Ho, P. Joy; Bryant, Christian E.; Larsen, Stephen R.; Clark, Georgina J.
Abstract
Allogeneic hematopoietic stem cell transplantation (allo-HSCT) significantly reduces the rate of relapse in acute myeloid leukemia (AML) but comes at the cost of significant treatment-related mortality. Despite the reduction in relapse overall, it remains common, especially in high-risk groups. The outcomes for patients who relapse after transplant remains very poor. A large proportion of the morbidity that prevents most patients from accessing allo-HSCT is due to toxic nonspecific conditioning agents that are required to remove recipient hematopoietic stem and progenitor cells (HSPCs), allowing for successful is donor engraftment. CD300f is expressed evenly across HSPC subtypes. CD300f has transcription and protein expression equivalent to CD33 on AML. We have developed an anti-CD300f antibody that efficiently internalizes into target cells. We have generated a highly potent anti-CD300f antibody-drug conjugate (ADC) with a pyrrolobenzodiazepine warhead that selectively depletes AML cell lines and colony forming units in vitro. The ADC synergizes with fiudarabine, making it a natural combination to use in a minimal toxicity conditioning regimen. Our ADC prolongs the survival of mice engrafted with human cell lines and depletes primary human AML engrafted with a single injection. In a humanized mouse model, a single injection of the ADC depletes CD34(+) HSPCs and CD34(+)CD38(-)CD90(+) hematopoietic stem cells. This work establishes an anti-CD300f ADC as an attractive potential therapeutic that, if validated in transplant models using a larger cohort of primary AML samples, will reduce relapse rate and toxicity for patients with AML undergoing allo-HSCT.
Repression of phagocytosis by human CD33 is not conserved with mouse CD33
COMMUNICATIONS BIOLOGY
Authors: Bhattacherjee, Abhishek; Rodrigues, Emily; Jung, Jaesoo; Luzentales-Simpson, Matthew; Enterina, Jhon R.; Galleguillos, Danny; St Laurent, Chris D.; Nakhaei-Nejad, Maryam; Fuchsberger, Felix F.; Streith, Laura; Wang, Qian; Kawasaki, Norihito; Duan, Shiteng; Bains, Arjun; Paulson, James C.; Rademacher, Christoph; Giuliani, Fabrizio; Sipione, Simonetta; Macauley, Matthew S.
Abstract
CD33 is an immunomodulatory receptor linked to Alzheimer's disease (AD) susceptibility via regulation of phagocytosis in microglia. Divergent features between human CD33 (hCD33) and murine CD33 (mCD33) include a unique transmembrane lysine in mCD33 and cytoplasmic tyrosine in hCD33. The functional consequences of these differences in restraining phagocytosis remains poorly understood. Using a new alpha mCD33 monoclonal antibody, we show that mCD33 is expressed at high levels on neutrophils and low levels on microglia. Notably, cell surface expression of mCD33 is entirely dependent on Dap12 due to an interaction with the transmembrane lysine in mCD33. In RAW264.7 cultured macrophages, BV-2 cultured microglia, primary neonatal and adult microglia, uptake of cargo - including aggregated A beta(1-42) - is not altered upon genetic ablation of mCD33. Alternatively, deletion of hCD33 in monocytic cell lines increased cargo uptake. Moreover, transgenic mice expressing hCD33 in the microglial cell lineage showed repressed cargo uptake in primary microglia. Therefore, mCD33 and hCD33 have divergent roles in regulating phagocytosis, highlighting the importance of studying hCD33 in AD susceptibility.