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Nijland, R.

Publications and source records attributed to Nijland, R..

2 recordsLinked to original sources

A plant pathogen utilizes effector proteins for microbiome manipulation

During colonization of their hosts, pathogens secrete effector proteins to promote disease development through various mechanisms. Increasing evidence shows that the host microbiome plays a crucial role in health, and that hosts actively shape their microbiomes to suppress disease. We hypothesized that pathogens evolved to manipulate host microbiomes to their advantage in turn. Here, we show that the fungal plant pathogen Verticillium dahliae utilizes effector proteins for niche colonization through selective manipulation of host microbiomes by suppressing microbes with antagonistic activities. Moreover, we show that effector proteins are similarly exploited for microbiome manipulation in the soil environment, where the fungus resides in absence of a host. In conclusion, we demonstrate that pathogens utilize effector proteins to modulate microbiome compositions and propose that their effector catalogs represent an untapped resource for novel antibiotics.

microbiology

Adding insult to injury: Effects of chronic oxybenzone exposure and elevated temperature on two reef-building corals

We studied the effect of chronic oxybenzone exposure and elevated temperature on coral health. Microcolonies of Stylophora pistillata and Acropora tenuis were cultured in 20 flow-through aquaria, of which 10 were exposed to oxybenzone at a field-relevant concentration of ~0.06 g L-1 at 26 {degrees}C. After two weeks, half of the corals experienced a heat wave culminating at 33 {degrees}C. All S. pistillata colonies survived the heat wave, although heat reduced growth and zooxanthellae density, irrespective of oxybenzone. A. tenuis survival was reduced to 0% at 32 {degrees}C, and oxybenzone accelerated mortality. Oxybenzone and heat significantly reduced photosynthetic yield in both species, causing a 5% and 22-33% decrease, respectively. In addition, combined oxybenzone and temperature stress altered the abundance of five bacterial families in the microbiome of S. pistillata. Our results suggest that oxybenzone adds insult to injury by further weakening corals in the face of global warming. Highlights[tpltrtarr] Chronic effect study on corals combining oxybenzone and elevated temperature [tpltrtarr]Oxybenzone affected photosystem II of coral photosymbionts and altered coral microbiome [tpltrtarr]Temperature effects were stronger than oxybenzone effects [tpltrtarr]Sensitivities were species-dependent [tpltrtarr]Oxybenzone adds insult to injury by weakening corals in the face of global warming

pharmacology and toxicology