How Plants Sense and Respond to Stressful Environments

Как растения распознают и реагируют на стрессовые условия
Jasper Lamers, Tom van der Meer, Christa Testerink
2020-03-04

OSCA1 drought sensingabiotic stress perceptionglycosylinositol phosphorylceramide sphingolipidsphytochrome B heat sensing
Plants are exposed to an ever-changing environment to which they have to adjust accordingly. Their response is tightly regulated by complex signaling pathways that all start with stimulus perception. Here, we give an overview of the latest developments in the perception of various abiotic stresses, including drought, salinity, flooding, and temperature stress. We discuss whether proposed perception mechanisms are true sensors, which is well established for some abiotic factors but not yet fully elucidated for others. In addition, we review the downstream cellular responses, many of which are shared by various stresses but result in stress-specific physiological and developmental output. New sensing mechanisms have been identified, including heat sensing by the photoreceptor phytochrome B, salt sensing by glycosylinositol phosphorylceramide sphingolipids, and drought sensing by the specific calcium influx channel OSCA1. The simultaneous occurrence of multiple stress conditions shows characteristic downstream signaling signatures that were previously considered general signaling responses. The integration of sensing of multiple stress conditions and subsequent signaling responses is a promising venue for future research to improve the understanding of plant abiotic stress perception.
1
Concurrent multiple stress conditions produce characteristic downstream signaling signatures previously thought to be general responses.
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Integration of multi-stress sensing and signaling is a promising research direction to better understand plant abiotic stress perception.
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Many downstream cellular responses are shared across stresses but produce stress-specific physiological and developmental outcomes.
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New sensing mechanisms identified: glycosylinositol phosphorylceramide sphingolipids function in salt sensing.
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New sensing mechanisms identified: phytochrome B acts as a heat sensor.
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New sensing mechanisms identified: the calcium influx channel OSCA1 functions in drought sensing.
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Plants perceive abiotic stresses (drought, salinity, flooding, temperature) via specific sensing mechanisms that initiate complex signaling pathways.

Plants (abiotic stress sensing systems)

Perception mechanisms and downstream cellular signaling/responses to abiotic stresses (drought, salinity, flooding, temperature), including identification of specific sensors (e.g., phytochrome B, glycosylinositol phosphorylceramide sphingolipids, OSCA1) and integration of multiple-stress signaling

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2020-03-04
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Jasper Lamers
Tom van der Meer
Christa Testerink
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