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L. Gearing

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Open access Aug 2026

Highly efficient derivation of functional human induced pluripotent stem cell-derived macrophages under serum-free conditions to study innate immune responses.

INTRODUCTION Macrophages are essential components of innate immunity, serving as a frontline defense against pathogens and maintaining tissue homeostasis. Human induced pluripotent stem cell (iPSC)-derived macrophages (iMacs) provide a powerful platform for studying human innate immunity and macrophage biology. Here, we describe a robust, reproducible, efficient serum-free and feeder-free protocol for generating functional iMacs and characterizing their innate immune properties. METHODS A 30-day monolayer culture system was utilized to continually generate hematopoietic progenitor cells (HPCs) from iPSCs starting on day 9, followed by macrophage differentiation over 21 days. Macrophage identity was assessed by flow cytometry, while functional assays evaluated phagocytosis and cytokine production, including interferons (IFNs). Transcriptomic profiling was performed by RNAseq across differentiation stages and following IFN stimulation. RESULTS The optimized protocol consistently yielded iMacs with >99% purity, expressing canonical macrophage markers including CD14, CD16, CD163, HLA-DR, and CD11b. iMacs demonstrated robust phagocytic capacity and cytokine production in response to microbial stimuli. RNA sequencing revealed distinct gene signatures during differentiation, highlighting key transitions from pluripotency to progenitors, then to mature macrophages. iMac transcriptomes aligned with tissue-resident macrophage profiles, supporting their relevance for modelling tissue-specific immunity. iMacs displayed differential interferon responses, with a strong response to type I IFNs. CONCLUSION This study establishes a highly efficient and robust protocol for generating functional human iPSC-derived macrophages, providing a versatile model for investigating innate immunity, host-pathogen interactions, and interferon signaling.

Hani Hosseini Far, Le Ying, L. Gearing et al. · 0 citations
Open access Aug 2026

Spatial Profiling Reveals Immune Escape Pathways and Therapeutic Vulnerabilities in Prostate Cancer Bone Metastases.

Prostate cancer (PCa) frequently metastasizes to bone, marking incurable disease. This progression is driven by an immunologically cold bone tumor microenvironment that fosters resistance to therapy. To define the mechanisms underlying this uniquely immunosuppressive niche, we applied spatial single cell analyses across primary tumors and metastatic sites. Bone metastases showed marked suppression of tumor-intrinsic type I interferon (IFN-I) signaling and loss of antigen presentation, features that were strongly associated with reduced bone metastasis-free survival. Tumor-intrinsic IFN-I expression correlated with memory T cell infiltration, whereas the bone myeloid compartment was enriched for protumor macrophages and showed reduced dendritic cell (DC) activation and antigen presentation. Digital spatial profiling of matched tumors revealed a broad loss of IFN-I-regulated immunostimulatory and checkpoint molecules. Notably, B7-H3, a putative negative regulator of IFN-I, was highly expressed in bone metastases and inversely associated with antigen presentation. These findings define bone-specific mechanisms of immune resistance and highlight therapeutic vulnerabilities that could inform precision therapeutic strategies for PCa.

Katie L. Owen, L. Gearing, B. Niranjan et al. · 0 citations