| Literature DB >> 29775486 |
Ruizheng Shi1, Zehong Cao1, Hong Li1, Jochen Graw2, Guogang Zhang3, Victor J Thannickal1, Guangjie Cheng1.
Abstract
Innate immune recognition is classically mediated by the interaction of host pattern-recognition receptors and pathogen-associated molecular patterns; this triggers a series of downstream signaling events that facilitate killing and elimination of invading pathogens. In tEntities:
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Year: 2018 PMID: 29775486 PMCID: PMC5979044 DOI: 10.1371/journal.ppat.1007026
Source DB: PubMed Journal: PLoS Pathog ISSN: 1553-7366 Impact factor: 6.823
Fig 1PXDN binds to GN bacteria.
(A) Diagram of human PXDN and recombinant proteins of PXDN used in the study. All constructs for preparation of recombinant proteins of PXDN were polyhistidine-tagged either cloned in plasmid pET30 or pcDNA3.1. The subcloned region and related domain structure are indicated. (B) P. aeruginosa binds to full-length PXDN. P. aeruginosa strain K was added to PBS containing PXDN or MPO as indicated. The mixtures were incubated at 37°C for 1 h. P. aeruginosa mixtures were centrifuged at 3099 x g for 5 min. The pellets were washed twice. One-half of the bacterial suspension was subjected to immunoblotting using anti-His antibody (left panel) or anti-MPO (right panel) antibody. C1 was PXDN positive control which was directly loaded. C2 was negative control in which 200 nM PXDN did not mixed with bacteria; it was centrifuged at 3099 x g for 5 min as experimental groups. (C) The remaining bacterial suspension in “B” was subjected to peroxidase activity assay using L-012 as chemiluminescent substrate. Note: MPO is known to bind to P. aeruginosa via its cationic charge, and served as a positive control in these experiments. *P<0.001 vs. bacteria only. Data are the representatives of at least three independent experiments. (D) E. coli and P. aeruginosa bind to plasma PXDN. 4 x 108 of E.coli K12 or P. aeruginosa strain K in 50 μL PBS were added to 50 μL human plasma. The mixtures were incubated at 37°C for 1 h. Bacterial suspensions were spun down at 3099 x g for 5 min, and then washed twice with 500 μL PBS. Samples were subjected to immunoblotting using anti-PXDN antibody. “C” represents positive control of 1 μL of plasma containing 200 ng of PXDN, which was directly loaded onto the gel. Data are the representatives of three independent experiments. (E) Truncated PXDN binds to live P. aeruginosa and E. coli. Recombinant truncated peptides of PXDN 29-250aa or PXDN 251-609aa were added to live bacterial suspensions of P. aeruginosa strain K and E. coli K12, respectively. The mixtures were incubated at 37°C for 1 h. P. aeruginosa and E. coli suspension were centrifuged at 3099 x g for 5 min, and washed twice with PBS. The bacterial lysates were subjected to immunoblotting using anti-His antibody and visualized by chemiluminescence. A mixture containing only 1.3 μM of recombinant PXDN peptide without bacteria served as negative control (to verify no binding of PXDN peptide to the test tube). Data are representatives of three independent experiments.
Fig 2PXDN interacts with LPS.
(A) PXDN binding to LPS determined by SPR. Recombinant peptides of PXDN 29-250aa or PXDN 251-609aa were immobilized on a NTA chip, and LPS (2 μM) was flowed over the chip. The binding data were collected and analyzed with Biacore T200 software. Data are the representatives of three independent experiments. (B) The typical structure of E. coli LPS and genes determining the biosynthesis of LPS. Dash indicates the stage point of LPS synthesis by the corresponding gene. KDO, 3-deoxy-D-manno-oct-2-ulosonic acid; Hep, L-glycero-D-manno-heptose; EtN, ethanolamine; Gal, D-galactose; Glu, D-glucose; P, phosphate. (C) Interaction of PXDN with LPS-deficient strains of E. coli. The binding experiments of truncated PXDN to LPS-deficient E. coli strains were carried out as in Fig 1B and 1E. 100 nM of FL-PXDN or truncated PXDN were utilized. rFaF, rFaJ, rFaG and rFaC are the LPS-deficient E. coli strains with mutation of related gene. “WT” is wild-type of E. coli K12 BW25113, which is the parent strain of LPS-deficient E. coli strains. Data are representatives of three independent experiments. (D) Lipid A inhibits PXDN binding to GN bacteria. Lipid A was mixed with E. coli K12 and PXDN similar to Fig 1B. The pellets were washed twice and subjected to immunoblotting using anti-His antibody. The data are representatives of two independent experiments. (E) The binding capacity of PXDN to GP bacteria is limit. Recombinant peptides of PXDN 29-250aa or PXDN 251-609aa were added to live bacterial suspensions of S. aureus, similar to Fig 1E. The bacterial lysates were subjected to immunoblotting using anti-His antibody and visualized by chemiluminescence. Data are representatives of three independent experiments.
Fig 3PXDN selectively kills GN bacteria in vitro.
(A) LPS stimulates PXDN activity. Reaction mixtures (100 μL each) containing TMB solution, H2O2, recombinant FL-PXDN (400 nM/heme) and LPS as indicated were carried out at room temperature for 30 min. LPS and recombinant FL-PXDN were pre-incubated at 4°C for 30 min prior to mix with TMB solution. TMB oxidation was recorded at absorbance 650 nm. One-way analysis of variance, P < 0.001 for all comparisons. (B) Live P. aeruginosa stimulates PXDN activity. P. aeruginosa was pre-incubated with recombinant FL-PXDN at RT for 30 min in 20 mM of phosphate buffer without NaCl. The mixture was added into TMB solution (100 μL) and incubated at RT for 30 min. Absorbance at 650 nm was measured. *P<0.05 vs. non-bacteria control. (C) E. coli stimulates PXDN activity. The same experiment was carried out as in “B” where P. aeruginosa was replaced by E. coli. *P<0.05 vs. non-bacteria control. (D) PXDN kills GN bacteria in vitro. P. aeruginosa strain K suspensions were incubated in 50 mM phosphate buffer (pH 6.2) containing indicated amounts of recombinant FL-PXDN or 1 μM of truncated PXDN (PXDN 29-250aa and PXDN 251-609aa), 10 μM H2O2, and halide (140 mM NaCl, 100 μM KBr or 100 μM KSCN) at 37°C for 1 h. Cell mixtures were plated on LB agar plates and incubated at 37°C overnight. The control group contained P. aeruginosa only (lane 1). The CFUs were counted, and relative survival rates were calculated as CFUs in the experimental group divided by those in the control group. *P < 0.001 vs. Control; +P < 0.001 vs. H2O2 + NaCl; #P < 0.001 vs. H2O2 + KBr; xP < 0.001 vs. H2O2 + KSCN. Data are representatives of three independent experiments. (E) Anti-lipid A antibody inhibits bacterial killing by PXDN. E. coli K12 was incubated in 50 mM phosphate buffer (pH 6.2) containing 2 μM recombinant PXDN, 10 μM H2O2, 140 mM NaCl and indicated amounts of anti-lipid A antibody, at 37°C for 1 h. Cell mixtures were plated on LB agar plates and incubated at 37°C overnight. The colonies were counted. Paired Student’s t-test: *P = 0.0031; #P = 0.0016; &P = 0.0464. (F) Sera from PXDN-deficient mice are impaired to kill bacteria. Sera from C57BL/6 and PXDN-deficient mice were used in the experiments. 100 μL reaction mixtures contained 50 μL serum and 50 μL PBS containing P. aeruginosa strain K and 50 μM H2O2. After incubation at 37°C for 1h, the mixture was plated on LB agar plates and incubated at 37°C for overnight. n = 3. P = 0.03. (G) PXDN cannot kill GP bacteria. The bacterial killing experiment was carried out similar to “D” in the presence of H2O2 and NaCl. Two lots of recombinant PXDN were utilized (L1 and L2). E. coli K12 was used as positive control. One-way analysis of variance, P < 0.001 for E. coli; P = 0.1308 for S. aureus; P = 0.6460 for MRSA. All data are representatives of at least three independent experiments.
Bactericidal activities of PXDN, MPO and LPO.
E. coli K12 was incubated in 50 mM phosphate buffer (pH 6.2) containing halide anion (Cl-, Br- or I-), 10 μM H2O2, and indicated amount of hPx at 37°C for 1 h. Cell mixtures were plated on LB agar plates and incubated at 37°C overnight. The negative control experiment contained E.coli only. The CFUs were counted. The relative survival rate (%) was calculated as CFUs in the experimental group divided by those in the negative control. Data are representatives of at least three independent experiments.
| hPx (nM/heme) | Cl- (100 mM) | Br- (100 μM) | I- (0.25 μM) | SCN- (100 μM) | |
|---|---|---|---|---|---|
| 50 | 0.0% | 0.0% | 0.0% | 56.7 ± 2.8% | |
| 200 | N/A | N/A | N/A | 48.9 ± 0.9% | |
| 1000 | N/A | N/A | N/A | 4.7 ± 3.2% | |
| 50 | 103.7 ± 8.6% | 0.0% | 98.1 ± 10.9% | 104.7 ± 5.9% | |
| 200 | 110.5 ± 15.4% | N/A | 4.0 ± 0.7% | 120.4 ± 6.9% | |
| 1000 | 92.3 ± 8.6% | N/A | 0.0% | 82.6 ± 13.1% | |
| 50 | 103.3 ± 7.6% | 0.0% | 62.5 ± 5.3% | 71.8 ± 1.1% | |
| 200 | 12.0 ± 1.8% | 0.0% | 0.0% | 46.4 ± 2.2% | |
| 1000 | 0.0% | 0.0% | 0.0% | 32.7 ± 3.4% | |
| 0 | 118.7± 8.5% | 89.6± 4.2% | 97.7± 9.8% | 102.0± 9.3% | |
Fig 4PXDN is expressed in the lung epithelium and contributes to bacterial killing.
(A) Detection of PXDN in human bronchoalveolar lavage fluid (BALF). Right middle lobe BALF was collected and processed within 2 h. BALF samples were then centrifuged at 400 x g for 10 min at 4°C. BALF were concentrated by Centricon (~10x). Samples of BALF (1), positive control of human plasma containing ~100 ng of PXDN (2), and purified MPO (50 ng) (3) were subjected to immunoblotting using anti-PXDN or anti-MPO antibodies. (B) IHC of the lung. IHC of lung sections from WT and PXDN-deficient mice was performed using anti-PXDN antibody (1:600). Images were taken using BZ-X710 All-in-One Fluorescence Microscope. PXDN: dark brown. Magnification: 400x. (C) PXDN expresses in mouse primary lung type II alveolar epithelial cells (AECs). Upper panel showed immunoblot analysis of AECs and fibroblasts while lower panel showed phase contrast microscopy of AECs (left) and fibroblasts (right); magnification 100x. Cell lysates were subjected to conventional immunoblotting by using anti-PXDN antibody. β-actin was used as loading control. (D) LPS induces PXDN expression. AECs were induced by LPS as indicated. The cell lysates were subject to immunoblot analysis as in (C). (E) Mouse primary type II AECs mediate P. aeruginosa killing. AECs were grown in 12-well plate in DMEM with 10% FBS without antibiotics until 70% confluence. Cells were serum-starved for 16 h prior to bactericidal assays; cells were stimulated with/without TGF-β and hematin/NaBu. Cells and the overlying medium (supernatant) were separated and utilized for evaluation of PXDN-mediated bactericidal killing. 1 mL of fresh DMEM containing 104 P. aeruginosa strain K and 10 μM H2O2 was added to AECs or supernatant. The mixture was incubated at 37°C for 1 h, and then plated on LB agar plates prior to overnight incubation at 37°C. The control group contained untreated AECs and P. aeruginosa. The relative survival rate was calculated as CFUs in the experimental group divided by those in the control group; *P< 0.001 vs. Control. (F) Inhibition of AEC-mediated P. aeruginosa killing by peroxidase inhibitors. The experiments were carried out as in “E” with addition of ABAH (broadly specific inhibitor of heme-containing peroxidases) or PEG-catalase (which reduces H2O2). *P< 0.001 vs. Control; +P < 0.001 vs. hematin/NaBu. Data are representatives of three independent experiments.
Fig 5PXDN mutant mice reveal impairment in bacterial clearance during acute lung infection.
(A) Decrease of relative survival rates. PXDN-deficient and C57BL/6 wild-type mice were intratracheally instilled with 7 x 106 of P. aeruginosa strain K or PBS control. Relative survival rates were determined over a period of 48 hours; n = 9–11 per group, P = 0.0068. (B) Lung Bacterial burden. Mice were sacrificed at 20 hours; lungs were aseptically removed, weighed, and homogenized in PBS. Lung tissue suspension was serially diluted and plated on LB agar plates. After incubation at 37°C for 18 h, CFUs were counted and CFUs/mg tissue were calculated; n = 12 from 4 mice per group; one-way analysis of variance, P < 0.0001 for all comparisons. (C and D) Tissue burden on bacterial infection with sublethal dose was carried out by intratracheally infecting the mice with 3 x 106 of P. aeruginosa strain K. After 20 h, lung, liver and spleen were taken as in (B) for detection of bacteria. n = 15–21 from 5–7 mice per group; P (lung) = 0.016; P (liver) = 0.843; P (spleen) = 0.014. (E) H&E staining of the lungs from uninfected and infected mice. Mice were infected as in (C) and the lungs were harvested at 20 h for preparation of staining. a. WT mouse, uninfected; b, WT mouse, infected; c. PXDN-deficient mouse, uninfected; d, PXDN-deficient mouse, infected. Magnification: 400x. Scale: 5μm.