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Matschke, J.

Publications and source records attributed to Matschke, J..

3 recordsLinked to original sources

NSCLC patients with oligo-metastatic brain disease show an altered CD4 T-cells immune profile

BackgroundLung cancer is the leading cause of cancer-related deaths worldwide, with brain metastasis (BM) occurring in 40% of advanced non-small cell lung cancer (NSCLC) patients. In 15% of these patients, the brain is the only affected organ (oligo-metastasis), corresponding to improved prognosis compared to widespread disease. Thus far, it is unknown if the metastatic dissemination to the brain without systemic metastases is a consequence of the immune systems ability to control systemic tumor outgrowth. MethodsHere, we investigated the local and peripheral immune cell composition in NSCLC BM patients, and identified new immune patterns related to the occurrence of brain metastases either as oligo- or poly-metastatic disease. ResultsThe multi-parametric immune phenotyping of peripheral blood revealed a downregulation of KLRG1 in CD8+ T-cells and an increase in CD4+ TH17 cells and elevated IL-17 levels in the blood of all NSCLC BM patients compared to healthy individuals. In addition, BM patients CD4+ T cells showed less CD73 expression with reduced effector memory differentiation. Furthermore, we observed less intra-tumoral infiltration in tumor tissues and a distinctive CD4+ T-cell profile in oligo-synchronous BM, both in the tumor microenvironment and peripheral blood compared to poly-metastatic BM patients. Moreover, 5'-ectonucleotidase CD73 was significantly upregulated in CD4 and T-regulatory cells of oligo-synchronous BM. ConclusionsThese results indicate that oligo-synchronous BM exhibits a more pronounced alteration in the CD4 T-cell immune profile both locally at the tumor site and systemically. Key PointsO_LIBM patients exhibit a skewed systemic immune profile, characterized by downregulation of KLRG1 in CD8+ and induction of TH17/IL-17 axis and CD73 in CD4+ T-cells. C_LIO_LIOligo-synchronous BM displayed a distinct CD4+ T-cell profile in both TME and peripheral blood. C_LI Importance of the StudyThis study presents a novel insight into immune profiles of brain metastasis types in NSCLC patients. Examining tissues and PBMCs sheds light on the disease and uncovers unique immune responses within distinct brain metastasis patterns. This research offers valuable knowledge for improved understanding and identifying potential prognosis markers.

cancer biology↗

Microgliosis, astrogliosis and loss of aquaporin-4 polarity in frontal cortex of COVID-19 patients

The severe acute respiratory syndrome coronavirus type 2 (SARS-CoV-2), causing human coronavirus disease 2019 (COVID-19), not only affects the respiratory tract, but also impacts other organs including the brain. A considerable number of COVID-19 patients develop neuropsychiatric symptoms that may linger for weeks and months and contribute to "long-COVID". While the neurological symptoms of COVID-19 are well described, the cellular mechanisms of neurologic disorders attributed to the infection are still enigmatic. Here, we studied the effect of an infection with SARS-CoV-2 on the structure and expression of marker proteins of astrocytes and microglial cells in the frontal cortex of patients who died from COVID-19 in comparison to non-COVID-19 controls. Most of COVID-19 patients had microglial cells with retracted processes and rounded and enlarged cell bodies in both gray and white matter, as visualized by anti-Iba1 staining and confocal fluorescence microscopy. In addition, gray matter astrocytes in COVID-19 patients were frequently labeled by intense anti-GFAP staining, whereas in non-COVID-19 controls, most gray matter astrocytes expressed little GFAP. The most striking difference between astrocytes in COVID-19 patients and controls was found by anti-aquaporin-4 (AQP4) staining. In COVID-19 patients, a large number of gray matter astrocytes showed an increase in AQP4. In addition, AQP4 polarity was lost and AQP4 covered the entire cell, including the cell body and all cell processes, while in controls, AQP4 immunostaining was mainly detected in endfeet around blood vessels and did not visualize the cell body. In summary, our data suggest neuroinflammation upon SARS-CoV-2 infection including microgliosis and astrogliosis, including loss of AQP4 polarity.

neuroscience↗

Cleavage site-directed antibodies reveal the prion protein in humans is shed by ADAM10 at Y226 and associates with misfolded protein deposits in neurodegenerative diseases

Proteolytic cell surface release ( shedding) of the prion protein (PrP), a broadly expressed GPI-anchored glycoprotein, by the metalloprotease ADAM10 impacts on neurodegenerative and other diseases in animal and in vitro models. Recent studies employing the latter also suggest shed PrP (sPrP) to be a ligand in intercellular communication and critically involved in PrP-associated physiological tasks. Although expectedly an evolutionary conserved event, and while soluble forms of PrP are present in human tissues and body fluids, neither proteolytic PrP shedding and its cleavage site nor involvement of ADAM10 or the biological relevance of this process have been demonstrated for the human body thus far. In this study, cleavage site prediction and generation (plus detailed characterization) of sPrP-specific antibodies enabled us to identify PrP cleaved at tyrosin 226 as the physiological and strictly ADAM10-dependent shed form in humans. Using cell lines, neural stem cells and brain organoids, we show that shedding of human PrP can be stimulated by PrP-binding ligands without targeting the protease, which may open novel therapeutic perspectives. Site-specific antibodies directed against human sPrP also detect the shed form in brains of cattle, sheep and deer, hence in all most relevant species naturally affected by fatal and transmissible prion diseases. In human and animal prion diseases, but also in patients with Alzheimers disease, sPrP relocalizes from a physiological diffuse tissue pattern to intimately associate with extracellular aggregates of misfolded proteins characteristic for the respective pathological condition. Findings and research tools presented here will accelerate novel insight into the roles of PrP shedding (as a process) and sPrP (as a released factor) in neurodegeneration and beyond.

neuroscience↗