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Sandholzer, M. T.

Publications and source records attributed to Sandholzer, M. T..

4 recordsLinked to original sources

alpha2,3-sialylation on human naive T cells restrains bispecific engager-mediated anti-tumor immunity

Aberrantly elevated cell-surface sialylation, or hypersialylation, is a common feature of human cancers and contributes to immune evasion. Sialidase-based therapies have therefore emerged as a strategy to disrupt this glyco-checkpoint. Although the immunosuppressive role of tumor-associated sialylation is well established, how sialylation on human T cells shapes anti-tumor responses remains poorly defined. Here, we identify surface sialoglycans on T cells, particularly 2,3-linked structures, as a cell-intrinsic restraint on human T cell activation, proliferation, and effector function. In vitro, enzymatic desialylation enhanced T cell activation, proliferation, cytokine production, and bispecific T cell engager (TCE)-mediated tumor-cell killing in healthy donor PBMC co-cultures. In ex vivo cultures of primary chronic lymphocytic leukemia (CLL) PBMCs, sialidase treatment combined with the CD20-directed TCE glofitamab enhanced cytotoxic effector transcriptional programming in autologous T cells. Single-cell RNA sequencing combined with lectin-based CITE-seq linked treatment-induced transcriptional states to lectin-defined cell-surface glycan signatures within the same single-cell dataset. This integrated analysis revealed that naive and, to a lesser extent, central memory T cells combined elevated baseline 2,3-sialylation signatures with the clearest transcriptional responses to glofitamab plus sialidase treatment. CD43 emerged as a major carrier of 2,3-linked sialoglycans, and its deletion attenuated sialidase-enhanced T cell activation. Together, these findings identify sialylation of the T cell surface as a subset-specific restraint on human TCE responses and provide a rationale for testing sialidase-TCE combinations designed to engage less-differentiated T cell populations. One-sentence summaryDesialylation enhances bispecific T cell engager responses by relieving a sialoglycan-dependent restraint in human T cells.

immunology↗

Local glycan engineering induces systemic antitumor immune reactions via antigen cross-presentation

Immune checkpoint inhibitors (ICI) have revolutionized cancer therapy, yet response rates remain suboptimal across many solid tumors, and resistance mechanisms, particularly those involving glycans, are not fully understood. Recent studies have identified sialic acid-containing glycans and their interactions with Siglec receptors on tumor-associated macrophages as an important contributor to immune suppression within the tumor microenvironment (TME). Targeting this sialic acid-Siglec axis by glycan engineering with sialidases and other glycosidases has shown therapeutic potential in preclinical models. However, safe and effective delivery of sialidases to tumors remains a challenge. Here, we present a novel approach using adeno-associated virus (AAV)-mediated therapy to deliver sialidases (AAVSia) and other glycosidases, including fucosidase, directly to the TME. Intratumoral administration of AAVSia in mouse models resulted in significant tumor growth reduction, enhanced survival, and robust systemic antitumor immunity through improved cross-presentation and dendritic cell activation. Furthermore, combining local sialidase expression with fucosidase treatment and classical PD-1 blockade allowed a synergistic effect, amplifying antitumor response. Our findings highlight the therapeutic promise of glycoengineering the TME using local delivery systems and support the development of combination strategies to overcome glycan-mediated resistance in cancer immunotherapy. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=129 SRC="FIGDIR/small/720097v1_ufig1.gif" ALT="Figure 1"> View larger version (34K): org.highwire.dtl.DTLVardef@dc9d72org.highwire.dtl.DTLVardef@1e4e455org.highwire.dtl.DTLVardef@4a8f93org.highwire.dtl.DTLVardef@11813a3_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗

Longitudinal profiling of tumor-reactive T cells during TIL therapy in metastatic melanoma

Adoptive cell therapy (ACT) with expanded autologous tumor-infiltrating lymphocytes (TILs) can induce durable responses in metastatic melanoma, yet many patients relapse. We profiled tumor-reactive T cell dynamics during TIL therapy using single-cell RNA and TCR sequencing from seven patients to elucidate underlying reasons. We found that tumor-reactive T cells preferentially expanded early during ex vivo TIL culture, transitioning from exhausted to reinvigorated effector states. Particularly, CD8+ exhausted T cells (Tex) and CD4+ follicular helper T cell (Tfh), but not CD4+ Tex, were efficiently reinvigorated. Further, we resolved the heterogeneity of tumor-reactive CD8+ and CD4+ subsets, defining unique signatures for their identification during TIL expansion. In addition, non-responders (NRs) exhibit increased levels of Type 17 T cells in TIL products, suggesting a potential association with resistance to therapy. After transfer, tumor-reactive clones rapidly extravasated and established a stem-like reservoir. However, in NRs, CD4+ regulatory T cells (Tregs) expanded de novo and tumor-reactive CD8+ T cells reacquired exhaustion markers, limiting their functionality. By contrast, responders (Rs) retained a pool of less differentiated, stem-like cells. Collectively, these data provide a comprehensive analysis of T cell fates during TIL-ACT providing the basis for new approaches to enhance therapeutic strategies.

immunology↗

Integrated single cell analysis identifies CD39+ tumor-associated NK cells with cytotoxic potential in lung cancer

Natural killer (NK) cell-targeting immunotherapies are emerging, yet the differentiation and functional states of tumor-infiltrating NK cells remain poorly understood. Using matched single-nucleus RNA and ATAC sequencing of non-small cell lung cancer (NSCLC) specimens, we resolved the transcriptional and epigenetic landscape of intratumoral NK cells. We identified two tumor-associated NK (taNK) cell subsets marked by ITGAE (CD103) and ITGA1 (CD49a) that display features of tissue residency and dysfunction while preserving cytotoxic function. Trajectory and regulon analyses revealed an inflammation-driven transition from early GZMK NKs toward an ENTPD1+ (CD39) effector state characterized by interferon-stimulated gene (ISG) programs. Functional profiling established CD39 taNK as the dominant cytotoxic NK cell population with superior killing capacity that is further potentiated by NKG2A blockade. This study offers mechanistic insights into NK cell differentiation in NSCLC and establishes CD39 taNK cells as a targetable effector population for immunotherapy. One sentence summaryMultiomic analysis identifies CD39+ tumor-associated NK cells as a cytotoxic effector state in NSCLC responsive to NKG2A blockade.

immunology↗