610 Medizin und Gesundheit
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Bacterial functional membrane microdomains (FMMs) are membrane platforms that resemble lipid rafts of eukaryotic cells in certain functional and structural aspects. Lipid rafts are nanometer-sized, dynamic clusters of proteins and lipids in eukaryotic cell membranes that serve as signaling hubs and assembling platforms. Yet, studying these structures can often be hampered by the complexity of a eukaryotic cell. Thus, the analogous structures of prokaryotes are an attractive model to study molecular traits of this type of membrane organization.
Similar to eukaryotic lipid rafts, the bacterial FMMs are comprised of polyisoprenoid lipids, scaffold proteins and a distinct set of membrane proteins, involved in signaling or secretion. Investigating bacterial FMMs not only contributes to the understanding of the physiological importance of FMMs in bacteria, but also helps to elucidate general principles of rafts beyond prokaryotes.
In this work, a bacterial model organism was used to investigate effects of synthetic overproduction of the raft scaffolding proteins on bacterial physiology. This overexpression causes an unusual stabilization of the FMM-harbored protease FtsH and therefore the proteolytic targets of FtsH are not correctly regulated. Developmental defects and aberrances in shape are the consequence, which in turn negatively affects cell physiology. These findings may be adapted to better understand lipid raft processes in humans, where flotillin upregulation is detected along with development of neurological diseases.
Moreover, it was aimed at understanding the FMM-proteome of the human pathogen Staphylococcus aureus. An in-depth quantitative mass-spectrometry analysis reveals adaption of the protein cargo during different conditions, while maintaining a distinct set of core FMM proteins. As a case study, the assembly of the type VII secretion system was shown to be dependent on FMM integrity and more specifically on the activity of the FMM-scaffold flotillin. This secretion system is important for the virulence of this pathogen and its secretion efficiency can be targeted by small molecules that inhibit flotillin activity. This opens new venues for non-conventional antimicrobial compounds to treat staphylococcal infections.
Spatially restricting cAMP production to discrete subcellular locations permits selective regulation of specific functional responses. But exactly where and how cAMP signaling is confined is not fully understood. Different receptors and adenylyl cyclase isoforms responsible for cAMP production are not uniformly distributed between lipid raft and non-lipid raft domains of the plasma membrane. We sought to determine the role that these membrane domains play in organizing cAMP responses in HEK293 cells. The freely diffusible FRET-based biosensor Epac2-camps was used to measure global cAMP responses, while versions of the probe targeted to lipid raft (Epac2-MyrPalm) and non-raft (Epac2-CAAX) domains were used to monitor local cAMP production near the plasma membrane. Disruption of lipid rafts by cholesterol depletion selectively altered cAMP responses produced by raft-associated receptors. The results indicate that receptors associated with lipid raft as well as non-lipid raft domains can contribute to global cAMP responses. In addition, basal cAMP activity was found to be significantly higher in non-raft domains. This was supported by the fact that pharmacologic inhibition of adenylyl cyclase activity reduced basal cAMP activity detected by Epac2-CAAX but not Epac2-MyrPalm or Epac2-camps. Responses detected by Epac2-CAAX were also more sensitive to direct stimulation of adenylyl cyclase activity, but less sensitive to inhibition of phosphodiesterase activity. Quantitative modeling was used to demonstrate that differences in adenylyl cyclase and phosphodiesterase activities are necessary but not sufficient to explain compartmentation of cAMP associated with different microdomains of the plasma membrane.
Die Aktivierung der T Zelle bedarf der spezifischen Interaktion zwischen T Zelle und Antigen-präsentierender Zelle unter Ausbildung einer engen Anlagerung beider Zellmembranen („immunologische Synapse“) für Rezeptoren-Interaktionen und konsekutive Signaltransduktion. In dreidimensionaler Kollagenmatrix zeigte sich ein stereotypes, dynamisches Muster bei der Interaktion zwischen CD45RO-positiven humanen T Zellen und antigenpräsentierenden dendritischen Zellen. i) Die Kontaktaufnahme wurde stets über das Leading edge der T Zelle initiiert. ii) Beim dynamischen Kontakt wanderte die T Zelle polarisiert, mit vielen Richtungsänderungen und mit reduzierter Geschwindigkeit auf der DC-Oberfläche, nur unterbrochen von kurzen Stopp- und Abrundungsphasen. Der Uropod der T Zelle stand während der dynamischen Kontakts in kontinuierlicher Verbindung zur DC. iii) Die Loslösung der T Zelle von der DC war ein aktiver Prozess, der durch Interaktion der Vorderfront der T Zelle zu benachbarten Kollagenfasern eingeleitet wurde, gefolgt von der Lösung des Zellkörpers und des Uropods. Alternativ wurden Kontakte durch Uropod-mediierte Retention der T Zelle auf der DC-Oberfläche verlängert. Zur dynamischen molekularen Charakterisierung der Kontaktfläche wurde eine Methode zur Darstellung von Lipid-Rafts an lebenden Zellen in der 3D ECM mit BTRITC etabliert. Die Ergebnisse zeigen ein neues 3-Schritt-Konzept dynamischer und produktiver Interaktionen zwischen T Zelle und DC in vitro. Die assymetrische Kontaktzone impliziert distinkte Funktionen von Vorderfront und Uropod der T Zelle und definiert eine neuartige dynamische Kontaktform für die Signalübertragung zwischen beweglichen Zellen.