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Biology subjects

Herr, K.

Publications and source records attributed to Herr, K..

2 recordsLinked to original sources

Borrelia burgdorferi infection-enhanced Ixodes scapularis serpins S12c5 and S13c5, target MASP1/3 to inhibit MBL-pathway complement activation and promote spirochete survival

Tick serine protease inhibitors (serpins) are critical for tick feeding success and pathogen transmission. We previously demonstrated that two unique serpins, S12c5 and S13c5, are tandemly duplicated on Ixodes scapularis chromosome 5 and are injected into the host at heightened levels during feeding by Borrelia burgdorferi (Bb)-infected nymphs. Here, we characterize the biochemical properties and immunomodulatory functions of these serpins and investigate their roles in promoting Bb transmission. Despite their response to Bb infection, S12c5 and S13c5 share less than 20% overall amino acid identity and differ critically at their reactive center loop (RCL) P1 site, which determines substrate specificity: S13c5 contains a basic arginine residue, while S12c5 contains a polar serine residue. Consistent with these differences, recombinant S13c5 efficiently inhibited innate immune proteases including fXa, plasmin, and trypsin IV (SI: 2.5, 1.9, and 1.0; ka: 8.56 x 103, 3.97 x 10, and 1.08 x 10 M-{superscript 1}s-{superscript 1}, respectively), and consequently delayed plasma clotting via the common pathway, whereas rS12c5 did not inhibit these proteases. However, despite molecular modeling predicting stronger interactions between S13c5 and complement proteases, both serpins inhibited MBL-pathway complement activation by targeting MASP1/3. Deletion of the RCL domain abolished this inhibitory activity, confirming both proteins function as typical inhibitory serpins. Functionally, rS13c5 enhanced Bb colonization in C3H mouse organs. Interestingly, immune response assays revealed a trade-off: S13c5, despite its broader inhibitory activity, was less immunogenic than S12c5. Collectively, these findings establish S12c5 and S13c5 as Bb transmission factors that promote spirochete survival through disruption of host innate immunity.

Molecular Biology↗

Common fluorescent Pseudomonas in the phyllosphere can influence aphid behavior in diverse ways

Bacteria in the phyllosphere, the above ground parts of plants, can have complex interactions with plants and their insect visitors. For instance, certain Pseudomonas strains change pea aphid (Acyrthosiphon pisum) feeding behavior. Aphids visually detect and avoid feeding when Pseudomonas produces a compound with blue fluorescent emissions, the siderophore pyoverdine. It is unknown how commonly such interactions occur in nature, so we investigated this potential in pea plant (Pisum sativum) phyllosphere communities. We found a diversity of Pseudomonas taxa with fluorescent potential in pea plant microbiomes. Culture isolates revealed a wide range of fluorescent emissions spectra across taxa, which produced blue to green fluorescence of varying intensities. We tested strains from across this emissions range for pea aphid behavioral responses when given a choice between plants inoculated with a fluorescent isolate or a control treatment. Consistent with previous work, we found that some isolates were avoided by aphids. Surprisingly, some isolates were actually attractive to aphids, causing up to 70% of aphids to settle and feed on bacterially treated plants. Attractive isolates produced green fluorescence in culture, suggesting that attraction could be due to aphid sensory biases. Overall, we found both isolate fluorescence in culture and siderophore potential inferred from gene content to be poor predictors of aphid behavior. We also found very high variability in responses across replicate experiments for some strains, suggesting that environmental conditions may influence outcomes. This shows that bacterial fluorescence may be common on plants and can have context-dependent impacts on herbivorous insects.

ecology↗