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Mallick, B.

Publications and source records attributed to Mallick, B..

2 recordsLinked to original sources

Spatial immune ecosystems govern therapeutic response in HER2-low breast cancer

HER2 low breast cancer represents a clinically important but biologically heterogeneous disease state, and the spatial immune programs underlying therapeutic response remain poorly understood. Here, we used single-cell spatial transcriptomics to characterize HER2 low and HER2 high breast tumors and define microenvironmental features associated with treatment sensitivity and resistance. We identified diverse malignant, stromal, and immune compartments, with dendritic cells emerging as a highly remodeled population in HER2 low tumors. Focused analysis resolved distinct dendritic cell states, including homeostatic cDC2, IFN activated mature cDC, classical functional cDC2, plasmacytoid DC, and ITGAX positive monocyte derived DC populations. Spatial proximity analysis further revealed that resistant HER2 low tumors exhibited increased segregation of tumor epithelial cells from effector immune populations and enrichment of myeloid-rich immune niches, consistent with an immune-restricted spatial architecture. Independent TCGA BRCA validation confirmed the clinical relevance of these dendritic-cell states, with elevated homeostatic cDC2 signatures predicting poor survival, whereas inflammatory dendritic cell signatures were associated with favorable outcomes. Resistant HER2 low tumors were characterized by enrichment of homeostatic and classical cDCs, depletion of IFN-activated cDCs and pDCs, altered tumor myeloid T cell communication, and expansion of spatially organized resistant niches, whereas sensitive tumors retained immune-intermixed niches enriched for antigen presentation and effector immune interactions. Together, these findings demonstrate that therapeutic resistance in HER2 low breast cancer is driven by coordinated spatial remodeling of dendritic-cell states and immune architecture, identifying dendritic cell myeloid niche organization as a potential biomarker and therapeutic vulnerability.

cancer biology↗

Circadian rhythm disruption alters mammary gland morphology and accelerates cold aggressive tumorigenesis through a LILRB4-dependent pathway

Epidemiological studies have shown that circadian rhythm disruption (CRD) is associated with the risk of breast cancer. However, the role of CRD in mammary gland morphology and aggressive basal mammary tumorigenesis and the molecular mechanisms underlying CRD and cancer risk remain unknown. To investigate the effect of CRD on aggressive tumorigenesis, a genetically engineered mouse model that recapitulates the human basal type of breast cancer was used for this study. The effect of CRD on mammary gland morphology was investigated using wild-type mice model. The impact of CRD on the tumor microenvironment was investigated using the tumors from LD12:12 and CRD mice via scRNA seq. ScRNA seq was substantiated by multiplexing immunostaining, flow cytometry, and realtime PCR. The effect of LILRB4 immunotherapy on CRD-induced tumorigenesis was also investigated. Here we identified the impact of CRD on basal tumorigenesis and mammary gland morphology and identified the role of LILRB4 on CRD-induced lung metastasis. We found that chronic CRD disrupted mouse mammary gland morphology and increased tumor burden, and lung metastasis and induced an immunosuppressive tumor microenvironment by enhancing LILRB4a expression. Moreover, CRD increased the M2-macrophage and regulatory T-cell populations but decreased the M1-macrophage, and dendritic cell populations. Furthermore, targeted immunotherapy against LILRB4 reduced CRD-induced immunosuppressive microenvironment and lung metastasis. These findings identify and implicate LILRB4a as a link between CRD and aggressive mammary tumorigenesis. This study also establishes the potential role of the targeted LILRB4a immunotherapy as an inhibitor of CRD-induced lung metastasis.

cancer biology↗