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Lorentzen, L. G.

Publications and source records attributed to Lorentzen, L. G..

2 recordsLinked to original sources

Cleavage of the vascular matrix attracts glioblastoma cells to infiltrate the brain parenchyma

BackgroundGlioblastoma is a highly aggressive brain cancer and, unlike many other cancers types, the median survival for patients after treatment (14.6 months) has barely improved in the last 20 years. Infiltrative growth into the surrounding brain parenchyma facilitates tumor recurrence and ultimately the death of the patient - novel therapies targeting this process are desperately needed. Lysyl oxidase inhibition has been shown to decrease invasive growth in a variety of solid tumours and is a potential therapy for glioblastoma patients. MethodsGenes highly expressed in the mesenchymal subtype of glioblastoma were analyzed in a data set from the Cancer Genome Atlas and tissue microarrays. Two patient-derived human glioblastoma stem cell lines were used to assess the involvement of lysyl oxidase (LOX). The effect of LOX on infiltration was examined in an organotypic brain slice assay and in an orthotopic mouse model. Chemotactic assays, protease and cleavage arrays were used to assess the underlying mechanism behind LOX-mediated infiltration. The orthotopic model was used to evaluate potential clinical utility of targeting LOX in glioblastoma. ResultsLOX is overexpressed in the mesenchymal glioblastoma subtype and strongly associated with poor patient survival. LOX expression upregulates MMP7 expression, which subsequently cleaves the vascular matrix resulting in increased chemotaxis of glioblastoma cells. ConclusionsWe have uncovered a novel mechanism of glioblastoma infiltration and suggest that targeting LOX represent an effective therapeutic approach blocking glioblastoma infiltration. Importance of the studyThe ability of glioblastoma cells to infiltrate the surrounding normal brain tissue facilitates their evasion of current therapies, leading to tumor recurrence and ultimately the death of the patient. To improve targeted therapies for glioblastoma patients we need to understand the molecular mechanisms of glioblastoma cell infiltration and how cells interact with the unique microenvironment of the brain. We have identified a novel mechanism whereby tumor-derived LOX mediates chemotaxis of glioblastoma cells to the laminin rich perivascular niche, enabling infiltrative growth. Inhibiting this infiltrative pathway is a potential anti-invasive therapy that is desperately needed for glioblastoma patients.

cancer biology↗

N-Terminal proteomics reveals distinct protein degradation patterns in different types of human atherosclerotic plaques

BACKGROUNDDestabilization and rupture of atherosclerotic plaques is a major cause of acute atherosclerotic cardiovascular events, including heart attack, ischemic stroke and peripheral arterial disease. Plaque destabilization is associated with extracellular matrix (ECM) modification and remodelling involving protease activity. Enzymatic cleavage generates protein fragments with new ends (N-termini). We hypothesized that plaques susceptible to rupture would contain elevated levels of fragmented proteins with new N-termini. Identification of active proteases and their target proteins might allow categorization of plaque stability. METHODSPlaques from 21 patients who underwent carotid surgery due to symptomatic carotid artery stenosis were examined in an observational/cross-sectional study. The plaques were solubilized, digested, enriched for N-terminal fragments and analyzed by liquid chromatography-mass spectrometry. RESULTSThe above methodology detected 35349 peptides, with 19543 being N-terminal species; 6561 were subsequently identified and quantified. Multidimensional scaling analysis and hierarchical clustering indicate the presence of three distinct clusters, which correlate with gross macroscopic plaque morphology (soft, mixed, and hard), ultrasound classification (echolucent/echogenic) and presence of hemorrhage/ulceration. Major differences were identified in the complement of peptide fragments, consistent with alternative turnover and degradation pathways dependent on plaque type. Identified peptides include signal and pro-peptides from ECM synthesis/turnover, and many from protein fragmentation. Sequence analysis indicates the targeted proteins (including ECM species) and the proteases (including meprins, cathepsins, matrix metalloproteinases, elastase, kallikreins) involved in fragment generation. CONCLUSIONSThis study provides a large dataset of peptide fragments and proteases involved in plaque stability, mechanistic insights into remodelling, and possible biomarkers for improved atherosclerosis risk profiling. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=124 SRC="FIGDIR/small/594251v1_ufig1.gif" ALT="Figure 1"> View larger version (47K): org.highwire.dtl.DTLVardef@f5e62forg.highwire.dtl.DTLVardef@1db3b07org.highwire.dtl.DTLVardef@7fe3org.highwire.dtl.DTLVardef@cc1329_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗