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Sapudom, J.

Publications and source records attributed to Sapudom, J..

3 recordsLinked to original sources

Mechano-mediated M2 macrophage polarization and immune suppression in stiffened tumor microenvironment

The tumor microenvironment (TME), which is composed of various cell types and the extracellular matrix (ECM), plays crucial roles in cancer progression and treatment outcomes. However, the impact of the mechanical properties of the ECM, specifically collagen fibril alignment and crosslinking, on macrophage behavior and polarization is less understood. To investigate this, we reconstituted 3D collagen matrices to mimic the physical characteristics of the TME. Our results demonstrated that stiffening the matrix through the alignment or crosslinking of collagen fibrils promotes macrophage polarization toward the anti-inflammatory M2 phenotype. This phenotype is characterized by increased expression of CD105 and CD206 and a distinct cytokine secretion profile. The increased stiffness and aligned fibrils activate mechanotransduction pathways, notably integrin {beta}1 and PI3K signaling, leading to increased IL-4 secretion, which acts in an autocrine manner to further promote M2 polarization. Interestingly, these stiffened microenvironments also suppressed the proinflammatory response. In coculture experiments with breast cancer cell lines (MDA-MB-231 and MCF-7), macrophages within stiffened or aligned matrices significantly increased cancer cell proliferation and invasion. These findings suggest that the mechanical properties of the ECM, specifically its alignment and crosslinking, create a more favorable environment for tumor progression by modulating macrophage activity. Overall, our study underscores the critical role of ECM mechanics in shaping immune cell behavior within the TME, highlighting the potential for therapies that target ECM properties and macrophage polarization to inhibit cancer progression and enhance treatment efficacy.

bioengineering↗

Matrix fibril alignment and density modulate YAP-mediated T-cell immune suppression

T-cells navigate through various mechanical environments within the body, adapting their behavior in response to these cues. An altered extracellular matrix (ECM) characterized by increased density and enhanced fibril alignment, as observed in cancer tissues, can significantly impact essential T-cell functions critical for immune responses. In this study, we used 3D collagen matrices with controlled density and fibril alignment to investigate T-cell migration, activation, and proliferation. Our results revealed that dense and aligned collagen matrices suppress T-cell activation through enhanced YAP signaling. By inhibiting YAP signaling, we demonstrated that T-cell activation within these challenging microenvironments improved, suggesting potential strategies to enhance the efficacy of immunotherapy by modulating T-cell responses in dense and aligned ECMs. Overall, our study deepens our understanding of T-cell mechanobiology within 3D relevant cellular microenvironments and provides insights into countering ECM-induced T-cell immunosuppression in diseases such as cancer. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/585707v1_ufig1.gif" ALT="Figure 1"> View larger version (101K): org.highwire.dtl.DTLVardef@ccb840org.highwire.dtl.DTLVardef@5490eforg.highwire.dtl.DTLVardef@1f74d8borg.highwire.dtl.DTLVardef@103f739_HPS_FORMAT_FIGEXP M_FIG Dense and aligned extracellular matrices suppress T-cell activation via YAP signaling, affecting immunotherapy efficacy in diseases such as cancer. C_FIG

bioengineering↗

Tissue-bound hyaluronan molecular weight as a regulator of dendritic cell immune potency

Hyaluronic acid (HA) is a major glycosaminoglycan found in the extracellular matrix (ECM) and exhibits immunoregulatory properties depending on its molecular weight (MW). However, the impact of tissue bound HA on dendritic cell (DC) functions is not well understood due to the varying distribution of HA MW under different physiological and pathological conditions. To investigate DCs in defined biosystems, we used three-dimensional (3D) collagen matrices modified with HA of specific MW, while maintaining similar microstructure and HA levels. Using these matrices, we examined the influence of HA on cytokine binding and observed distinct properties depending on the presence and MW of HA, suggesting modulation of cytokine availability by the different MW of HA. Our studies on DC immune potency revealed that low molecular weight HA (LMW-HA; 8-15 kDa) enhances immature DC (iDC) differentiation and antigen uptake, while medium (MMW-HA; 500-750 kDa) and high molecular weight HA (HMW-HA; 1250-1500 kDa) increase cytokine secretion in matured DCs (mDCs). Interestingly, the modulation of DCs surface marker expression and cytokine secretion by different MW of HA appeared to be independent of CD44. However, we found that cytokine secretion of DCs was dependent on the CD44 receptor regardless of the presence or absence of HA in the matrix. Additionally, we observed reduced migratory capacity of iDCs and mDCs when cultured on MMW- and HMW-HA matrices, and this effect was dependent on CD44. In summary, our findings provide new insights into the MW-dependent effects of tissue-bound HA on DCs, opening avenues for the design of DC-modulating materials to enhance DC-based therapy.

bioengineering↗