Hyuncheol Jung, Pascal Devant, Carter Ching, Mineto Ota, Emma Dann, Ronghui Zhu, Chandrima Modak, Ana Vasquez-Ibarra, Jennifer R Hamilton, Zachary Steinhart, Wayne Ngo, Luis Sandoval, Jae Hyung Jung, Jae Hyun J Lee, Da Xu, Meirui An, Esha Urs, Peixin Amy Chen, Vincent Allain, Takuya Tada, Luke A Gilbert, Brian R Shy, Jonathan K Pritchard, James K Nuñez, Nathaniel R Landau, David R Liu, Justin Eyquem, Jennifer A Doudna, Alexander Marson, Julia Carnevale
Primary human myeloid cells hold promise for immunotherapies, yet efficient, scalable technologies for engineering and screening in these cells remain limited. Here we present a virus-like particle (VLP)-based toolkit that delivers diverse CRISPR editing modalities to human monocytes, macrophages and dendritic cells with high efficiency while preserving viability and innate immune responsiveness. VLP-mediated delivery of ribonucleoproteins supports gene knockout, base editing and epigenetic silencing. Combined with adeno-associated virus-mediated donor delivery, this approach enables site-specific integration of large DNA sequences by homology-directed repair. We developed SLICeVLP, which pairs sgRNA delivery by VPX-lentivirus with Cas9 protein delivery by engineered VLPs, and used it for pooled loss-of-function and Perturb-seq screens in human macrophages. We uncovered regulators of tumor necrosis factor (TNF) and CD80 expression, converging on TNFAIP3 as a central regulator of inflammatory polarization. TNFAIP3 ablation drove a proinflammatory state resistant to suppressive repolarization and enhanced cytotoxicity in chimeric antigen receptor macrophages. This system enables unbiased functional genomics in primary human myeloid cells, with implications for myeloid cell therapy design.