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Uchendu, C. G.

Publications and source records attributed to Uchendu, C. G..

2 recordsLinked to original sources

Homologues of the inner-membrane LPS transport proteins are required for sphingolipid transport in Caulobacter crescentus

Recent elucidation of the bacterial sphingolipid synthesis pathway has revealed that these lipids are produced by a range of taxonomically diverse species. In contrast to the biosynthetic pathways, the mechanism by which sphingolipids are transported from the inner membrane to the cell surface in Gram-negative bacteria remains a mystery. Here, we identify and characterize paralogs of the well-characterized lipopolysaccharide (LPS) inner membrane ABC transporter proteins encoded within the sphingolipid locus. Using Caulobacter crescentus as a model system, we analyzed three putative inner membrane proteins with homology to LptF, LptG, and LptC. Deletion of these genes was lethal, likely due to the accumulation of anionic sphingolipids in the inner membrane. We further show that the LptF and LptG homologues form a complex like their LPS counterparts and discover that they interact with the LPS ATPase LptB. Together, our data suggest that ceramide transport to the outer membrane is facilitated by an ABC transporter consisting of a sphingolipid-specific LptFG homolog coupled to the LPS LptB, supporting a model in which sphingolipid transport partially converges with the LPS transport system. Together, these findings reveal an unexpected evolutionary relationship between sphingolipid and lipopolysaccharide transport.

microbiology↗

Spatial organization of bacterial sphingolipid synthesis enzymes

Sphingolipids are produced by nearly all eukaryotes where they play significant roles in cellular processes such as cell growth, division, programmed cell death, angiogenesis, and inflammation. While it was previously believed that sphingolipids were quite rare among bacteria, bioinformatic analysis of the recently identified bacterial sphingolipid synthesis genes suggests that these lipids are likely to be produced by a wide range of microbial species. The sphingolipid synthesis pathway consists of three critical enzymes. Serine palmitoyltransferase catalyzes the condensation of serine with palmitoyl-CoA (or palmitoyl-acyl carrier protein), ceramide synthase adds the second acyl chain, and a reductase reduces the ketone present on the long-chain base. While there is general agreement regarding the identity of these bacterial enzymes, the precise mechanism and order of chemical reactions for microbial sphingolipid synthesis is more ambiguous. Two mechanisms have been proposed. First, the synthesis pathway may follow the well characterized eukaryotic pathway in which the long-chain base is reduced prior to the addition of the second acyl chain. Alternatively, our previous work suggests that addition of the second acyl chain precedes the reduction of the long-chain base. To distinguish between these two models, we investigated the subcellular localization of these three key enzymes. We found that serine palmitoyltransferase and ceramide synthase are localized to the cytoplasm whereas the ceramide reductase is in the periplasmic space. This is consistent with our previously proposed model wherein the second acyl chain is added in the cytoplasm prior to export to the periplasm where the lipid molecule is reduced.

microbiology↗