Splicing-related genes are alternatively spliced upon changes in ambient temperatures in plants

Publication date

2017

Authors

Verhage, Leonie
Severing, Edouard I
Bucher, Johan
Lammers, Michiel
Busscher-Lange, Jacqueline
Bonnema, Guusje
Rodenburg, NicoleISNI 000000050730141X
Proveniers, MarcelORCID 0000-0001-7896-6049ISNI 0000000390534745
Angenent, Gerco C
Immink, Richard G H

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Abstract

Plants adjust their development and architecture to small variations in ambient temperature. In a time in which temperatures are rising world-wide, the mechanism by which plants are able to sense temperature fluctuations and adapt to it, is becoming of special interest. By performing RNA-sequencing on two Arabidopsis accession and one Brassica species exposed to temperature alterations, we showed that alternative splicing is an important mechanism in ambient temperature sensing and adaptation. We found that amongst the differentially alternatively spliced genes, splicing related genes are enriched, suggesting that the splicing machinery itself is targeted for alternative splicing when temperature changes. Moreover, we showed that many different components of the splicing machinery are targeted for ambient temperature regulated alternative splicing. Mutant analysis of a splicing related gene that was differentially spliced in two of the genotypes showed an altered flowering time response to different temperatures. We propose a two-step mechanism where temperature directly influences alternative splicing of the splicing machinery genes, followed by a second step where the altered splicing machinery affects splicing of downstream genes involved in the adaptation to altered temperatures.

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Verhage, L, Severing, E I, Bucher, J, Lammers, M, Busscher-Lange, J, Bonnema, G, Rodenburg, N, Proveniers, M C G, Angenent, G C & Immink, R G H 2017, 'Splicing-related genes are alternatively spliced upon changes in ambient temperatures in plants', PLoS One, vol. 12, no. 3, e0172950, pp. 1-18. https://doi.org/10.1371/journal.pone.0172950