scholarly journals An Ixodes scapularis Protein Disulfide Isomerase Contributes to Borrelia burgdorferi Colonization of the Vector

2020 ◽  
Vol 88 (12) ◽  
Author(s):  
Yongguo Cao ◽  
Connor Rosen ◽  
Gunjan Arora ◽  
Akash Gupta ◽  
Carmen J. Booth ◽  
...  

ABSTRACT Borrelia burgdorferi causes Lyme disease, the most common tick-transmitted illness in North America. When Ixodes scapularis feed on an infected vertebrate host, spirochetes enter the tick gut along with the bloodmeal and colonize the vector. Here, we show that a secreted tick protein, I. scapularis protein disulfide isomerase A3 (IsPDIA3), enhances B. burgdorferi colonization of the tick gut. I. scapularis ticks in which ispdiA3 has been knocked down using RNA interference have decreased spirochete colonization of the tick gut after engorging on B. burgdorferi-infected mice. Moreover, administration of IsPDIA3 antiserum to B. burgdorferi-infected mice reduced the ability of spirochetes to colonize the tick when feeding on these animals. We show that IsPDIA3 modulates inflammatory responses at the tick bite site, potentially facilitating spirochete survival at the vector-host interface as it exits the vertebrate host to enter the tick gut. These data provide functional insights into the complex interactions between B. burgdorferi and its arthropod vector and suggest additional targets to interfere with the spirochete life cycle.

mBio ◽  
2012 ◽  
Vol 3 (2) ◽  
Author(s):  
Seung-Hyun Cho ◽  
Derek Parsonage ◽  
Casey Thurston ◽  
Rachel J. Dutton ◽  
Leslie B. Poole ◽  
...  

ABSTRACTTheEscherichia colimembrane protein DsbD functions as an electron hub that dispatches electrons received from the cytoplasmic thioredoxin system to periplasmic oxidoreductases involved in protein disulfide isomerization, cytochromecbiogenesis, and sulfenic acid reduction. Here, we describe a new class of DsbD proteins, named ScsB, whose members are found in proteobacteria andChlamydia. ScsB has a domain organization similar to that of DsbD, but its amino-terminal domain differs significantly. In DsbD, this domain directly interacts with substrates to reduce them, which suggests that ScsB acts on a different array of substrates. UsingCaulobacter crescentusas a model organism, we searched for the substrates of ScsB. We discovered that ScsB provides electrons to the first peroxide reduction pathway identified in the bacterial cell envelope. The reduction pathway comprises a thioredoxin-like protein, TlpA, and a peroxiredoxin, PprX. We show that PprX is a thiol-dependent peroxidase that efficiently reduces both hydrogen peroxide and organic peroxides. Moreover, we identified two additional proteins that depend on ScsB for reduction, a peroxiredoxin-like protein, PrxL, and a novel protein disulfide isomerase, ScsC. Altogether, our results reveal that the array of proteins involved in reductive pathways in the oxidative cell envelope is significantly broader than was previously thought. Moreover, the identification of a new periplasmic peroxiredoxin indicates that in some bacteria, it is important to directly scavenge peroxides in the cell envelope even before they reach the cytoplasm.IMPORTANCEPeroxides are reactive oxygen species (ROS) that damage cellular components such as lipids, proteins, and nucleic acids. The presence of protection mechanisms against ROS is essential for cell survival. Bacteria express cytoplasmic catalases and thiol-dependent peroxidases to directly scavenge harmful peroxides. We report the identification of a peroxide reduction pathway active in the periplasm ofCaulobacter crescentus, which reveals that, in some bacteria, it is important to directly scavenge peroxides in the cell envelope even before they reach the cytoplasm. The electrons required for peroxide reduction are delivered to this pathway by ScsB, a new type of membrane electron transporter. We also identified two additional likely ScsB substrates, including a novel protein disulfide isomerase. Our results reveal that the array of proteins involved in reductive pathways in the oxidative environment of the cell envelope is significantly broader than was previously thought.


Blood ◽  
2012 ◽  
Vol 120 (21) ◽  
pp. 1034-1034
Author(s):  
Daphne Diaz ◽  
Gregory N. Prado ◽  
Patricia Neuman ◽  
Adriana Nieva ◽  
Manuel Torres-Grajales ◽  
...  

Abstract Abstract 1034 There is growing evidence for an important role of aldosterone (ALDO) in inflammatory responses in addition to its well-described effects on sodium homeostasis via activation of the mineralocorticoid receptor (MR). We studied the effects of ALDO on activation of ex vivo human polymorphonuclear leukocytes (PMNC). We isolated untouched circulating human PMNC by immunomagnetic isolation following density gradient sedimentation with PolymorphPrep from otherwise healthy subjects. Flow cytometric analyses showed greater than 97% of PMNC were positive for myeloid-neutrophil markers, CD45, CD16 and CD66b. We show that PMNC express MR by western blot and RT-PCR analyses and when incubated with ALDO (10−9 −10−7 M) showed a dose-dependent rise in cytosolic Ca2+ that peaked within 2 min using FURA-2AM fluorescence. We then studied the effect of ALDO on PMNC degranulation following incubations with ALDO (10−9 −10−7 M) for 30 min and observed a significant increase in β–glucuronidase release (P<0.001, n=3) by established fluorescent detection methods, an event that was blocked by pre-incubation of cells with 1μM canrenoic acid (CA), an MR antagonist (P<0.04, n=3). PMA and N-Formyl-Methionyl-Leucyl-Phenylalanine (fMLP) were used as positive controls for PMNC activation. We then studied the effects of ALDO on HL-60, a human promyelocytic cell line, induced to differentiate into neutrophil-like cells by incubation for 5 days with 1.3% DMSO. We detected the presence of the mineralocorticoid receptor (MR), the receptor for ALDO, by western blot analyses and MR transcripts by quantitative RT-PCR using TaqMan detection probes in these cells and as reported in kidney and endothelial cells. Cells incubated with ALDO (10−8-10−7 M) showed a dose-dependent rise in cytosolic Ca2+ that peaked within 3 min using FURA-2AM fluorescence. To assess the degranulation response of these cells we quantified the in vitro release of myeloperoxidase (MPO) and observed that 10−8M ALDO was likewise associated with increased degranulation when compared to vehicle treated cells (AUC: 590±14 to 185±11, P<0.01, n=6). To characterize the mechanisms by which ALDO regulates the degranulation responses of these cells we studied the effects of Protein Disulfide Isomerase (PDI) on ALDO-stimulated cells. PDI catalyzes the oxidation or reduction of thiol/disulfide groups and modulates leukocyte function. Our results show that blockade of PDI, by bacitracin, led to a blunted ALDO-stimulated degranulation response in both cell types. Consistent with these observations, we show that in differentiated HL-60 cells, siRNA against PDI likewise led to reduced MPO responses (AUC: 590±14 to 290±13, P<0.01, n=6) that were associated with significantly reduced PDI mRNA levels but not with scrambled siRNA as determined by quantitative RT-PCR with ABI TaqMan detection probes and GAPDH and β2 microglobulin as endogenous controls (0.55 ± 0.02, ΔΔCT of PDI siRNA relative to scrambled transfected cells, P<0.01, n=6). These results suggest that ALDO stimulates MPO release. MPO has been shown to be one of the predominant granule proteins associated with Neutrophil Extracelullar Traps (NETs), extracellular structures that contain chromatin (DNA and histones) that can also trap microorganisms. We studied the effects of ALDO following digestion of the NETs by DNAse, and observed that 30–35% of the total cellular MPO was NET-associated. We also observed that incubation with 10−8 M ALDO led to increases in the oxidative-respiratory burst [superoxide production] (P<0.01, n=3), a responses that was blocked by pre-incubation of cells with 1 uM CA (P<0.03, n=3). Consistent with these results, we observed that ALDO likewise led to significant increases in the oxidative-respiratory burst in human PMNC (P<0.01, n=3). Thus our results suggest that activation of MR by ALDO leads to degranulation and NET production in neutrophils that may contribute to the inflammatory responses associated with MR activation in vivo. Furthermore, the association between degranulation and NET release implicates PDI as a novel regulator of MPO generated NET production. Disclosures: No relevant conflicts of interest to declare.


2011 ◽  
Vol 79 (8) ◽  
pp. 3273-3283 ◽  
Author(s):  
Syed Z. Sultan ◽  
Joshua E. Pitzer ◽  
Tristan Boquoi ◽  
Gerry Hobbs ◽  
Michael R. Miller ◽  
...  

ABSTRACTHD-GYP domain cyclic dimeric GMP (c-di-GMP) phosphodiesterases are implicated in motility and virulence in bacteria.Borrelia burgdorferipossesses a single set of c-di-GMP-metabolizing enzymes, including a putative HD-GYP domain protein, BB0374. Recently, we characterized the EAL domain phosphodiesterase PdeA. A mutation inpdeAresulted in cells that were defective in motility and virulence. Here we demonstrate that BB0374/PdeB specifically hydrolyzed c-di-GMP with aKmof 2.9 nM, confirming that it is a functional phosphodiesterase. Furthermore, by measuring phosphodiesterase enzyme activity in extracts from cells containing thepdeA pdeBdouble mutant, we demonstrate that no additional phosphodiesterases are present inB. burgdorferi.pdeBsingle mutant cells exhibit significantly increased flexing, indicating a role for c-di-GMP in motility. Constructing and analyzing apilZpdeBdouble mutant suggests that PilZ likely interacts with chemotaxis signaling. While virulence in needle-inoculated C3H/HeN mice did not appear to be altered significantly inpdeBmutant cells, these cells exhibited a reduced ability to survive inIxodes scapularisticks. Consequently, those ticks were unable to transmit the infection to naïve mice. All of these phenotypes were restored when the mutant was complemented. Identification of this role ofpdeBincreases our understanding of the c-di-GMP signaling network in motility regulation and the life cycle ofB. burgdorferi.


2012 ◽  
Vol 12 (1) ◽  
pp. 132-141 ◽  
Author(s):  
Kevin J. Schwartz ◽  
Ronald F. Peck ◽  
James D. Bangs

ABSTRACT Trypanosoma brucei protein disulfide isomerase 2 (TbPDI2) is a bloodstream stage-specific lumenal endoplasmic reticulum (ER) glycoprotein. ER localization is dependent on the TbPDI2 C-terminal tetrapeptide (KQDL) and is mediated by TbERD2, an orthologue of the yeast ER retrieval receptor. Consistent with this function, TbERD2 localizes prominently to ER exit sites, and RNA interference (RNAi) knockdown results in specific secretion of a surrogate ER retention reporter, BiPN:KQDL. TbPDI2 is highly N-glycosylated and is reactive with tomato lectin, suggesting the presence of poly- N -acetyllactosamine modifications, which are common on lyso/endosomal proteins in trypanosomes but are inconsistent with ER localization. However, TbPDI2 is reactive with tomato lectin immediately following biosynthesis—far too rapidly for transport to the Golgi compartment, the site of poly- N -acetyllactosamine addition. TbPDI2 also fails to react with Erythrina cristagalli lectin, confirming the absence of terminal N -acetyllactosamine units. We propose that tomato lectin binds the Manβ1-4GlcNAcβ1-4GlcNAc trisaccharide core of paucimannose glycans on both newly synthesized and mature TbPDI2. Consistent with this proposal, α-mannosidase treatment renders oligomannose N -glycans on the T. brucei cathepsin L orthologue TbCatL reactive with tomato lectin. These findings resolve contradictory evidence on the location and glycobiology of TbPDI2 and provide a cautionary note on the use of tomato lectin as a poly- N -acetyllactosamine-specific reagent.


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