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Biology subjects

Hayes, B. H.

Publications and source records attributed to Hayes, B. H..

2 recordsLinked to original sources

Titrating CD47 by mismatch CRISPRi reveals incomplete repression can eliminate IgG-opsonized tumors but CD47 heterogeneity limits induction of anti-tumor IgG

Phagocytic elimination of solid tumors is an attractive mechanism for immunotherapy - particularly because of the possible induction of anti-cancer immunity. The phagocytic potential of macrophages is limited, however, by the CD47-SIRP checkpoint, and how much CD47 disruption is needed for efficacy remains unclear, even when tumors are opsonized by a pro-phagocytic antibody. Here, CRISPR-interference (CRISPRi) is applied with a large set of sgRNAs to produce a broad range of CD47 knockdowns in B16F10 melanoma, which is generally found to be resistant to the heavily studied PD-1 blockade. Guided by 3D immuno-tumoroid results, we identify a critical CD47 density below which macrophage-mediated phagocytosis dominates proliferation in the presence of an otherwise ineffective pro-phagocytic antibody (anti-Tyrp1). Growing tumors and immuno-tumoroids generally show selection for CD47-positive cells, but some mice reject tumors having >97% mean repression of CD47 or even having 80% repression - unless mixed with 50% repressed cells. Interestingly, long-term survivors have de novo pro-phagocytic IgG antibodies that increase in titer with depth of repression and also with early accumulation of tumor macrophages. Given well-known limitations of antibody permeation into solid tumors, our studies set a benchmark for anti-CD47 blockade and suggest deep disruption favors acquired immunity.

cancer biology↗

Cooperative phagocytosis underlies macrophage immunotherapy of solid tumours and initiates a broad anti-tumour IgG response

Macrophages are abundant in solid tumours and typically associate with poor prognosis, but macrophage clusters in tumour nests have also been reported as beneficial even though dispersed macrophages would have more contacts with cancer cells. Here, by maximizing both phagocytic activity and macrophage numbers, we discover cooperative phagocytosis by low entropy clusters in rapidly growing engineered immuno-tumouroids. The results fit the calculus of proliferation-versus-engulfment, and rheological measurements and molecular perturbations provide a basis for understanding phagocytic disruption of a tumours cohesive forces in soft cellular phases. The perturbations underscore the utility of suppressing a macrophage checkpoint in combination with an otherwise ineffective tumour-opsonizing monoclonal antibody, and the approach translates in vivo to tumour elimination that durably protects mice from re-challenge and metastasis. Adoptive transfer of engineered macrophages increases the fraction of mice that eliminate tumours and potentially overcomes checkpoint blockade challenges in solid tumours like insufficient permeation of blocking antibodies and on-target, off-tumour binding. Finally, anti-cancer IgG induced in vivo are tumour-specific but multi-epitope and contribute to a phagocytic feedback that drives macrophage clustering in vitro. Given that solid tumours remain challenging for immunotherapies, durable anti-tumour responses here illustrate unexpected advantages in maximizing net phagocytic activity.

bioengineering↗