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CFU counts
The N. meningitidis strain used in these representative results is N. meningitidis 8013 clone 12, a serogroup C clinical isolate, expressing a class I SB pilin, Opa-, Opc-, PilC1+/PilC2+ 20. The strain had been engineered to express green fluorescent protein (GFP) from a chromosomal insertion18. Bacterial colony forming unit counts are established by counting the number of colonies on the agar plates and calculating either CFU/ml of blood or CFU/mg of tissue from the known volumes plated. Blood counts showed that 5 min after i.v. injection of 106 CFU bacteria there was an average of 1.5 x 105 CFU/ml circulating in the blood (Figure 1A). After 6 hr the counts averaged 4.8 x 104 CFU/ml. By 24 hr the average counts were 2.4 x 104 CFU/ml but in this group of 10 mice, 5 had no detectable circulating bacteria while the other 5 had relatively high counts (Figure 1A). CFU counts taken from the skin samples show the majority of mice having considerable counts in the human skin, averaging 2.1 x 104 CFU/mg of tissue at 6 hr and 4.4 x 102 CFU/mg of tissue at 24 hr (Figure 1B). The contralateral mouse skin samples showed no bacterial counts at 24 hr and only a very low number at 6 hr, demonstrating the strong preference for N. meningitidis to the human vessels in the grafted skin (Figure 1B). In general bacterial counts were very low to nondetectable in the other organs sampled although 2 animals did show counts which may be attributed to contamination from the blood, as they correlated with high circulating bacterial numbers (Figure 1C). The model can also be used to determine the role of virulence factors in vivo, for example the type IV pili. Bacterial strains with defined mutations in the pilD gene21, resulting in a strain lacking Tfp , as well as the pilC1 gene8, lacking the proposed Tfp 'adhesin' were introduced into the model. These mutations resulted in no bacterial adhesion in the human skin graft, confirming the crucial role Tfp is playing in adhesion in vivo (Figure 1D).
Immunohistochemistry/Histology
In these experiments we used N. meningitidis strains that express green fluorescence protein (GFP) to enable fluorescent detection without the need for secondary staining. Human vessels were stained using a marker for human endothelium, either CD31 (PECAM-1) or the lectin Ulex europaeus agglutinin (UEA)18,22. The UEA was conjugated to rhodamine allowing one-step staining (Figures 2A-C). Cell nuclei can be stained with DAPI to help identify tissue structures (Figures 2A-B). Histology was performed using a standard hematoxylin/eosin staining. The epidermal/dermal border of the skin was clearly identifiable. Inflammation, thrombosis and vascular leak were concentrated to vessels close to this border 24 hr after infection (Figure 2D). Thrombosis was visible in several small dermal vessels, often accompanied by congestion and inflammation. Leakage of red blood cells out into the tissues could be seen, indicating an extensive level of vessel damage. The histopathology of grafted skin in noninfected mice appeared normal with no distinguishable inflammation18. In about 30% of the infections bacterial adhesion in the skin leads to the development of macroscopically detectable purpura (Figures 2E and 2F).

Figure 1. CFU counts. (A) Bacterial CFU counts per ml of blood at 5 min, 6 hr, and 24 hr post infection. (B) Bacterial CFU counts from skin samples comparing human skin (HS) and mouse skin (MS) at both 6 hr and 24 hr post infection. (C) Bacterial CFU counts from other organs taken 24 hr post infection. (D) Comparing bacterial CFU counts from human and mouse skin samples taken at 24 hr post infection from mice infected with the wild type N. meningitidis 2C43 stain (WT), a strain with a mutation in the pilD gene (pilD) or a strain with a mutation in the pilC1 gene (pilC1). All graphs are shown as raw data with median. Figure is modified from Melicanet al.18 Click here to view larger image.

Figure 2. Microscopy. (A) Projection of a confocal stack showing a human microvessel stained with UEA lectin (red) close to the dermal (d) epidermal (e) border. The vessel is infected with N. meningitidis (green) 2 hr post infection. (B) An optical slice and a slice projection (C) showing N. meningitidis microcolonies (green) infection a human vessel (UEA – red) within a skin graft 2 hr post infection. (D) Haematoxylin/Eosin staining of human skin graft infected for 24 hr with N. meningitidis. The epidermal (e), dermal (d) border is clearly visible and extensive thrombosis and congestion of microvessels (arrows) is seen in the dermis. Inflammation and some vascular leak (arrowhead) can also be identified. (E) Human skin graft prior to infection. (F) The same skin graft as (E) 24 hr post infection with N. meningitidis showing purpuric regions (arrows). Figures 2B, 2D, 2E, and 2F are modified from Melican et al.18 Click here to view larger image.