bioRxiv Science⌕ Search

Biology subjects

Krohn, J. B.

Publications and source records attributed to Krohn, J. B..

2 recordsLinked to original sources

Internally twin-Strep tagged CD63 for rapid and efficient isolation of engineered extracellular vesicles encapsulating functional proteins

Extracellular vesicles (EVs) are important mediators of intercellular communication. Achieving high purity of intact engineered EVs through separation from the overwhelming background of unmodified vesicles and cellular or serum-derived contaminants remains a major challenge, yet is critical for fundamental studies of EV biology and EV-based therapeutics. To address this unmet need, we applied structure-guided engineering to canonical EV tetraspanins. Focusing on CD63 and CD9, we identified sites for internal insertion of the twin-Strep tag via flexible linkers into unstructured regions of their large extracellular loops. This design retains functional properties of the scaffolds while providing a robust molecular handle enabling rapid, efficient, and selective antibody-free affinity-based isolation of intact EVs using advanced Strep technology. Fusing proteins of interest (POIs) to the C-terminus of these scaffolds, either directly or via a photoactivatable protein, allowed POI loading into the lumen of twin-Strep tagged EVs with optional optogenetic control of POI release. Proteomic analysis confirmed the high purity of captured engineered EVs with >96% of contaminants removed, enabling sensitive detection of numerous EV-associated proteins. We also report the efficient removal of contaminating virus particles resembling EVs in size and density. Purified engineered EVs successfully delivered an encapsulated fluorescent reporter into target cells, bypassing dye labeling commonly used to track EVs. We demonstrate endosomal escape of the reporter, facilitated by EV decoration with vesicular stomatitis virus glycoprotein, and cytoplasmic release upon optogenetic activation. Our toolbox may serve as a broadly applicable strategy for the efficient production of intact and highly pure engineered EVs to support potential fundamental or translational EV studies.

molecular biology↗

CXCL4-induced PBMCs Modulate Vascular Extracellular Matrix through Wnt5a-dependent Release of Calcific Extracellular Vesicles and Matrix Metalloproteinase-7

BackgroundMacrophage heterogeneity plays an increasing role in the study of vascular inflammatory responses. The CXCL4-induced monocyte/macrophage phenotype has previously been implicated with atherosclerotic plaque destabilization, a key process preceding plaque rupture. Monocyte-derived macrophages were found to exhibit a unique transcriptome in the presence of CXCL4 characterized by upregulation of S100A8 and MMP7. However, the mechanisms involved in CXCL4-induced monocyte-mediated vascular inflammation are unknown. MethodsSingle-cell RNA sequencing data were examined for CXCL4-dependent gene expression signatures in plaque macrophages. Human PBMCs were differentiated with CXCL4 and subsequently characterized in terms of osteogenic gene and protein expression signatures and calcific extracellular vesicle release. Association of the CXCL4-induced phenotype with the Wnt pathway was investigated, and CXCL4-induced PBMC-derived EV were analyzed for their potential to elicit an inflammatory response in vSMC. In-vitro findings were verified histologically in calcified human carotid artery plaques. ResultsIn human plaque macrophages, single-cell sequencing revealed a CXCL4-susceptible subpopulation bearing a distinct proinflammatory gene expression profile. CXCL4-differentiated PBMCs exhibited a marked induction of S100A8, MMP7 and osteogenic marker transcription concomitant with augmented release of calcific EVs enriched with MMP7, S100A8 and alkaline phosphatase. Under osteogenic conditions, increased overt calcification of the extracellular matrix was observed in vitro. Analysis of inflammatory pathway activation identified the paracrine Wnt5a-CaMKII signaling axis to be causally linked to the CXCL4-induced osteogenic PBMC phenotype, S100A8 and MMP7 enrichment as well as calcific potential of secreted EV. Additionally, CXCL4-polarized PBMC-derived EV differentially stimulated osteogenic/inflammatory genotype transition in vSMC. In human carotid artery plaques, occurrence of CXCL4-induced mononuclear cells coincided with Wnt5a-CaMKII pathway activation and progressive plaque calcification. ConclusionsThis study introduces a novel mechanism driving monocyte/macrophage-mediated extracellular matrix remodeling in calcific inflammatory responses through Wnt5a-CaMKII-activated secretion of MMP7+S100A8+ calcifying EV by CXCL4-induced pro-inflammatory monocytes. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=119 SRC="FIGDIR/small/540832v1_ufig1.gif" ALT="Figure 1"> View larger version (31K): org.highwire.dtl.DTLVardef@1f81c66org.highwire.dtl.DTLVardef@107be9org.highwire.dtl.DTLVardef@37042forg.highwire.dtl.DTLVardef@1f3b0f3_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗