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Bernardo, D.

Publications and source records attributed to Bernardo, D..

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Role for both myeloid and plasmacytoid DC in driving primary T helper cell response to Burkholderia pseudomallei in healthy individuals.

Burkholderia pseudomallei is a Gram-negative bacterium that causes melioidosis, an infectious disease endemic to south-east Asia. As B. pseudomallei is antibiotic-resistant, the need for cell-based vaccines and therapies is crucial to managing melioidosis. Dendritic cells (DC) provide the first line of defense to infection and direct downstream immune responses. Using practical volumes of fresh healthy donor blood, we show that heat-killed B. pseudomallei activated and stimulated expression of pro-inflammatory cytokines TNF-, IL-1{beta} and IL-6 from both myeloid and plasmacytoid DC. Furthermore, B. pseudomallei-pulsed DC induced activation and proliferation of CD4+ T-cells. Thus, both DC subsets are important for driving primary T helper cell responses to B. pseudomallei in healthy individuals and have the potential to be targeted for future therapies and vaccines. Author SummaryMelioidosis is an infectious disease endemic to south-east Asia and northern Australia caused by the bacterium Burkholderia pseudomallei. Melioidosis presents a significant public health threat because it has no effective vaccine or cure, leading to a high mortality rate of between 10-50%. We highlight the possibility of immune-based strategies targeting Burkholderia pseudomallei to better treat and prevent melioidosis. Specifically, we show that dendritic cells-the sentinel cells of the immune system-respond to B. pseudomallei in healthy individuals and in turn can orchestrate downstream protective immune responses. Thus, dendritic cells may be key players in the development of both vaccines and therapeutics for melioidosis as well as other bacteria-driven diseases.

immunology

Scalp EEG interictal high frequency oscillations as an objective EEG biomarker of infantile spasms

ObjectiveTo investigate the diagnostic utility of high frequency oscillations (HFOs) via scalp electroencephalogram (EEG) in infantile spasms. MethodsWe retrospectively analyzed interictal slow-wave sleep EEGs sampled at 2,000 Hz recorded from 30 consecutive patients who were suspected of having infantile spasms. We measured the rate of HFOs (80-500 Hz) and the strength of the cross-frequency coupling between HFOs and slow-wave activity (SWA) at 3-4 Hz and 0.5-1 Hz as quantified with modulation indices (MIs). ResultsTwenty-three patients (77%) exhibited active spasms during the overnight EEG recording. Although the HFOs were detected in all children, increased HFO rate and MIs correlated with the presence of active spasms (p < 0.001 by HFO rate; p < 0.01 by MIs at 3-4 Hz; p = 0.02 by MIs at 0.5-1 Hz). The presence of active spasms was predicted by the logistic regression models incorporating HFO-related metrics (AUC: 0.80-0.98) better than that incorporating hypsarrhythmia (AUC: 0.61). The predictive performance of the best model remained favorable (87.5% accuracy) after a cross-validation procedure. ConclusionsIncreased rate of HFOs and coupling between HFOs and SWA are associated with active epileptic spasms. SignificanceScalp-recorded HFOs may serve as an objective EEG biomarker for active epileptic spasms. HighlightsO_LIObjective analyses of scalp high frequency oscillations and its coupling with slow-wave activity in infantile spasms were feasible. C_LIO_LIIncreased rate of high frequency oscillations and its coupling with slow-wave activity correlated with active epileptic spasms. C_LIO_LIThe scalp high frequency oscillations were also detected in neurologically normal children (although at the low rate). C_LI

neuroscience