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Die zunehmende Antibiotikaresistenz vieler Krankheitserreger ist ein weltweites Problem, welches zu einem klinischen Bedarf an neuen antimikrobiellen Substanzen führt. Sphingolipide einschließlich Ceramide stellen eine vielfältige Gruppe strukturverwandter Lipide dar und bestehen aus einem Sphingosin-Grundgerüst, welches mit einer Fettsäure verbunden ist. Sowohl das Sphingosin-Grundgerüst allein als auch Sphingolipide zeigen eine antibakterielle Wirkung gegenüber einer Vielzahl pathogener Mikroorganismen. Die Intensität der Hemmung hängt von der Sphingolipidstruktur und dem Mikroorganismus ab. Neuere Studien konnten zeigen, dass Sphingosin, Ceramide und Ceramid-Analoga in N. meningitidis aufgenommen werden und eine bakteriostatische oder bakterizide Wirkung zeigen. Jedoch ist die antibakterielle Wirkungsweise noch nicht genau bekannt. Um mehr über den Wirkmechanismus zu erfahren haben wir die ultrastrukturellen Veränderungen von N. meningitidis nach Inkubation mit azido-funktionalisierten Sphingolipiden mit elektronenmikroskopischen Verfahren (transmissionselektronenmikroskopische und rasterelektronenmikroskopische Aufnahmen) untersucht. Mittels korrelativer Licht- und Elektronenmikroskopie (CLEM) konnten wir die azido-funktionalisierten Sphingolipide nach Aufnahme in N. meningitidis lokalisieren. Zum Anfärben der funktionalisierten Sphingolipide wurde die kupferfreie Azid-Alkin-Cyccloaddition verwendet.
Neisseria meningitidis (meningococcus) is a Gram-negative bacterium responsible for epidemic meningitis and sepsis worldwide. A critical step in the development of meningitis is the interaction of bacteria with cells forming the blood-cerebrospinal fluid barrier, which requires tight adhesion of the pathogen to highly specialized brain endothelial cells. Two endothelial receptors, CD147 and the β2-adrenergic receptor, have been found to be sequentially recruited by meningococci involving the interaction with type IV pilus. Despite the identification of cellular key players in bacterial adhesion the detailed mechanism of invasion is still poorly understood. Here, we investigated cellular dynamics and mobility of the type IV pilus receptor CD147 upon treatment with pili enriched fractions and specific antibodies directed against two extracellular Ig-like domains in living human brain microvascular endothelial cells. Modulation of CD147 mobility after ligand binding revealed by single-molecule tracking experiments demonstrates receptor activation and indicates plasma membrane rearrangements. Exploiting the binding of Shiga (STxB) and Cholera toxin B (CTxB) subunits to the two native plasma membrane sphingolipids globotriaosylceramide (Gb3) and raft-associated monosialotetrahexosylganglioside GM1, respectively, we investigated their involvement in bacterial invasion by super-resolution microscopy. Structured illumination microscopy (SIM) and direct stochastic optical reconstruction microscopy (dSTORM) unraveled accumulation and coating of meningococci with GM1 upon cellular uptake. Blocking of CTxB binding sites did not impair bacterial adhesion but dramatically reduced bacterial invasion efficiency. In addition, cell cycle arrest in G1 phase induced by serum starvation led to an overall increase of GM1 molecules in the plasma membrane and consequently also in bacterial invasion efficiency. Our results will help to understand downstream signaling events after initial type IV pilus-host cell interactions and thus have general impact on the development of new therapeutics targeting key molecules involved in infection.
A Comprehensive Review on the Interplay between Neisseria spp. and Host Sphingolipid Metabolites
(2021)
Sphingolipids represent a class of structural related lipids involved in membrane biology and various cellular processes including cell growth, apoptosis, inflammation and migration. Over the past decade, sphingolipids have become the focus of intensive studies regarding their involvement in infectious diseases. Pathogens can manipulate the sphingolipid metabolism resulting in cell membrane reorganization and receptor recruitment to facilitate their entry. They may recruit specific host sphingolipid metabolites to establish a favorable niche for intracellular survival and proliferation. In contrast, some sphingolipid metabolites can also act as a first line defense against bacteria based on their antimicrobial activity. In this review, we will focus on the strategies employed by pathogenic Neisseria spp. to modulate the sphingolipid metabolism and hijack the sphingolipid balance in the host to promote cellular colonization, invasion and intracellular survival. Novel techniques and innovative approaches will be highlighted that allow imaging of sphingolipid derivatives in the host cell as well as in the pathogen.