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Czabala, P.

Publications and source records attributed to Czabala, P..

3 recordsLinked to original sources

Multi-compartment immune and tumor cell reprogramming by IFNa2 overcomes colon cancer immunotherapy resistance

Approximately 85-90% of colorectal cancers (CRC) are microsatellite stable and resist immune checkpoint inhibitors (ICI). The recent success of intismeran, a lipid nanoparticle (LNP)-delivered mRNA encoding patient-specific tumor antigens, enhances pembrolizumab responses, showing that LNP-delivered nucleic acids can render ICI-resistant tumors responsive by supplying what the tumor microenvironment lacks. Because an IFN-responsive phenotype predicts CRC response to checkpoint blockade and tumor cell PD-L1 represses IFN-I, we asked whether delivering the missing cytokine, rather than antigen, achieves the same conversion. Here we show that PD-1 blockade failed even when initiated before tumor seeding, yet deleting tumor cell PD-L1 abolished colon cancer lung metastasis, implicating a tumor-intrinsic PD-L1 function that antibody blockade does not neutralize. An LNP-encapsulated IFN2-encoding nanoplasmid (LNP-IFN2) transfected tumor cells within lung metastases, converting them into a self-sustaining and tumor-restricted IFN2 source. LNP-IFN2 suppressed colon cancer lung metastasis in syngeneic and humanized mouse models and sensitized these ICI-resistant tumors to PD-1 blockade. Efficacy improved further with neutralization of co-induced IL6. scRNA-Seq revealed multi-compartment reprogramming: SPP1+ macrophages acquired apoptotic signatures as IFN-responsive monocytes replaced them, progenitor-exhausted T cells exited quiescence and expanded, and tumor cells exited a high-cycling state, gained antigen presentation, and shifted away from cuproptosis resistance. The treated microenvironment transcriptionally recapitulated pembrolizumab-responder signatures, positioning LNP-IFN2 as an off-the-shelf nanomedicine for ICI-resistant CRC.

immunology↗

B cell-intrinsic IRF8 transcriptionally reprograms antigen presentation to sustain CD8⁺ T cell antitumor immunity

Interferon regulatory factor 8 (IRF8) is a master transcription factor of myeloid differentiation, but whether IRF8 intrinsically controls B cell function in tumors remains unknown. Using paired single-cell transcriptomic and chromatin accessibility profiling of tumors from wild-type and Irf8-deficient mice, we identify a B cell-intrinsic IRF8 axis regulating antigen presentation and sustaining anti-tumor CD8 T cell immunity. IRF8 establishes conserved chromatin accessibility programs across myeloid cells and plasmablasts centered on antigen processing and MHC class I presentation, but engages distinct motifs by lineage: myeloid cells preferentially utilize ISRE and ETS-composite elements, whereas plasmablasts are selectively enriched for EICE elements, reflecting B lineage-specific IRF8-IRF4 cooperation. Loss of IRF8 disrupts these programs, skews B cells toward plasmablast differentiation and reduces antigen presentation machinery. B cell depletion accelerated tumor growth, while CD40 agonism activated B cells, expanded T cells, and enhanced anti-tumor immunity. B cell-specific IRF8 deletion alone accelerated tumor growth, establishing a cell-intrinsic requirement independent of myeloid IRF8 function. The IRF8-regulated B cell signature was enriched in PD-1 blockade cancer patient responders, and plasmablast abundance correlated with response in pembrolizumab-treated cancer patients. These findings establish IRF8 as a lineage-adapted regulator of antigen presentation and define the IRF8-B cell axis as a determinant of anti-tumor immunity. HighlightsIRF8 establishes a conserved chromatin accessibility across tumor-infiltrating myeloid and B cells Myeloid cells engage ISRE motifs, whereas plasmablasts rely on EICE motifs as IRF8 lineage-specific cis-regulation IRF8 regulates an antigen presentation in B cells to sustain anti-tumor T cell immunity B cell-intrinsic IRF8 transcription signature predicts patient response to PD-1 blockade immunotherapy

immunology↗

Distinct and cooperative roles of host and tumor Osteopontin in colorectal cancer liver metastasis

Osteopontin (OPN) is a secreted phosphoprotein implicated in colorectal cancer liver metastasis (CRCLM), yet the distinct spatial contributions of host-and tumor-derived OPN in driving this disease remain unclear. Using a 2 x 2 genetic knockout mouse model targeting OPN in host and tumor compartments, combined with spatial transcriptomics, we investigated compartment-specific OPN functions in CRCLM. Tumor-derived OPN promotes tumor proliferation through MEK/ERK signaling. Host OPN licenses monocyte-to-macrophage differentiation, while tumor OPN polarizes macrophages towards an M2-like state. Both host and tumor OPN suppress T cells in the tumor microenvironment, whereas loss of host OPN reveals an interferon-driven, anti-tumor niche. Translational studies using OPN-blockade immunotherapy in syngeneic and patient-derived xenograft mouse models reduced tumor burden and enhanced T cell infiltration. Together, these findings redefine the OPN-myeloid paradigm in CRC and nominate OPN as a potential therapeutic target.

immunology↗