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Van Schaik, E.

Publications and source records attributed to Van Schaik, E..

2 recordsLinked to original sources

Molecular Mechanisms of Coxiella burnetii Formalin Fixed Cellular Vaccine Reactogenicity Evaluated in an Established Mouse Model

Local and systemic reactogenic responses to Q-VAX(R) have prevented licensing of this vaccine outside of Australia. These reactogenic responses occur in previously sensitize individuals and have not been well defined at the cellular level, in part because many studies have been done in guinea pigs that have limited molecular tools. We previously characterized a mouse model of reactogenicity where local reactions sites showed an influx of CD8+ and IFN{gamma}-expressing IL17a+ CD4+ T cells consistent with a Th1 delayed-type hypersensitivity. In this study we determined using depletion and adoptive transfer experiments that both anti-Coxiella antibodies and CD4+ T cells were essential for localized reactions at the site of vaccination. Furthermore, IFN{gamma} depletion showed significant histological changes at the local reaction sites demonstrating the essential nature of this cytokine to reactogenicity. In addition to the cells and cytokines required for this response, we determined WCV material remained at the site of vaccination for at least 26 weeks post-injection. Transmission electron microscopy of these sites demonstrated intact rod-shaped bacteria at 2 weeks post-injection and partially degraded bacteria within macrophages at 26 weeks post-injection. Finally, since SCVs are an environmentally stable form, we determined that local reactions were more severe when the WCV material was prepared with higher levels of SCVs compared to typical WCV or with higher levels of LCV. These studies support the hypothesis that antigen persistence at the site of injection contributes to this reactogenicity and that anti-Coxiella antibodies, CD4+ T cells, and IFN{gamma} each contribute to this process.

immunology↗

Pectin methylesterification modulates cell wall properties to promote neighbour proximity-induced hypocotyl growth

Plants growing with neighbours compete for light and consequently increase growth of their vegetative organs to enhance access to sunlight. This response, called shade avoidance syndrome (SAS), involves photoreceptors such as phytochromes as well as phytochrome interacting factors (PIFs), which regulate the expression of growth-mediating genes. Numerous cell wall-related genes belong to the putative targets of PIFs, and the importance of cell wall modifications for enabling growth was extensively shown in developmental models such as dark-grown hypocotyl. However, the role of the cell wall in the growth of de-etiolated seedlings regulated by shade cues remains poorly established. Through analyses of mechanical and biochemical properties of the cell wall coupled with transcriptomic analysis of cell wall-related genes, we show the importance of cell wall modifications in neighbour proximity-induced elongation. Further analysis using loss-of-function mutants impaired in the synthesis and remodeling of the main cell wall polymers corroborated this. We focused on the cgr2cgr3 double mutant that is defective in homogalacturonan (HG) methyltransferase activity required for methylesterification of HG-type pectins. By following hypocotyl growth kinetically and spatially and analyzing the mechanical and biochemical properties of cell walls, we found that methylesterification of HG-type pectins was required to enable global cell wall modifications. Moreover, HG-class pectin modification was needed for plant competition-induced hypocotyl growth. Collectively our work suggests that in the hypocotyl PIFs orchestrate changes in the expression of numerous cell wall genes to enable neighbour proximity-induced growth. One sentence summaryThe degree of methylesterification of pectins modulates global changes in the cell wall and its mechanical properties that contribute to the neighbour proximity-induced hypocotyl growth in Arabidopsis

plant biology↗