bioRxiv Science⌕ Search

Biology subjects

Marek, N.

Publications and source records attributed to Marek, N..

2 recordsLinked to original sources

Intratumoral expression of JAML on NK cells is controlled by tumor microenvironment and MHC class I interaction

Junctional adhesion molecule-like (JAML) is an adhesion molecule known to promote T cell activation and T cell-mediated tumor rejection. In the current study, we show that JAML expression is enriched on mouse intratumoral NK cells compared with splenic NK cells. JAML+ NK cells were associated with tissue residency and co-expressed the immune checkpoints PD-1 and LAG3. JAML expression could be induced on splenic NK cells by IL-2 and further enhanced by IL-21. JAML levels were inversely correlated with inhibitory signaling, as NK cells expressing self-recognizing Ly49 receptors had reduced JAML expression, suggesting regulation of JAML expression by MHC class I molecules. Interaction with the JAML ligand CXADR also reduced JAML surface expression, indicating that tumor-mediated membrane stripping may represent a mechanism of immunoediting. Although JAML RNA transcripts were detectable in human NK cells, JAML protein was found only intracellularly. Together, these findings identify the JAML-CXADR interaction as a potential regulatory pathway in NK cell-mediated killing of tumors.

immunology↗

Regulatory T cells modulate bone marrow stromal cell osteogenesis by activating ROCK-myosin axis and cell contractility

Bone regeneration depends not only on the intrinsic signaling in bone marrow-derived mesenchymal stromal cells (BMSC), but also on immune cell-derived cues. Regulatory T cells (Treg) are emerging as immune regulators of tissue repair, yet their direct impact on BMSC osteogenesis remains unexplored. Here, we showed that direct human BMSC-Treg co-culture induced more pronounced osteogenic gene expression and cytokine modulation in BMSC than indirect co-culture. This contact-dependent interaction temporally enhanced BMSC osteogenic gene expression, alkaline phosphatase activity and matrix mineralization by interacting with ROCK-myosin signaling pathway. Exploratory proteomic profiling further revealed enrichment of cytoskeletal, mechanosensitive and osteogenic regulators in BMSC after direct Treg co-culture. Pharmacological inhibition of cell contractility impaired osteogenesis yet Treg co-culture partially restored cytoskeletal integrity and differentiation. These findings identify novel mechanisms behind Treg as direct modulators of BMSC mechanobiology and osteogenesis, highlighting their therapeutic potential in bone regeneration.

cell biology↗