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Vergara-Valladares, F.

Publications and source records attributed to Vergara-Valladares, F..

2 recordsLinked to original sources

Universal modules for decoding amplitude and frequency of Ca2+ signals in plants

O_LICalcium signals are fundamental for plants and play a crucial role in long-term processes such as growth and development, as well as in rapid responses to environmental stimuli and stress factors. Nevertheless, the mechanisms involved in decoding calcium signal in plants are still largely unclear. C_LIO_LIHere, we have addressed the question of calcium signal decoding in a bottom-up modelling approach. We started with the thermodynamics of Ca2+ binding to a Ca2+ binding protein (CBP), e.g. via EF hands. Remarkably, Ca2+ binding properties of the EF hands do not coincide with the Ca2+ sensitivity of the protein containing these EF hands. C_LIO_LIIn analysing the next levels of complexity, we identified six universal fundamental Ca2+-decoding modules, in which Ca2+ either interacts directly with a target protein (TP) or modulates its activity via a CBP. These modules are the basic units that enable the amplitude and frequency of Ca2+ signals to be decoded. Representatives of these modules are omnipresent in plant cells. They straightforwardly explain the puzzling finding that Ca2+-dependent kinases exhibit different Ca2+-sensitivities when tested with different substrates. C_LIO_LIIn-depth analysis of the properties of the modules provides a fundamental theoretical basis for understanding Ca2+ signal decoding and may contribute to finding the "Rosetta Stone" for Ca2+ signals in plants. C_LI

plant biology↗

Homeostats - the hidden rulers of ion homeostasis in plants

Ion homeostasis is a crucial process in plants that is closely linked to the efficiency of nutrient uptake, stress tolerance and overall plant growth and development. Nevertheless, our understanding of the fundamental processes of ion homeostasis is still incomplete and highly fragmented. Especially at the mechanistic level, we are still in the process of dissecting physiological systems to analyze the different parts in isolation. However, modeling approaches have shown that it is not individual transporters but rather transporter networks (homeostats) that control membrane transport and associated homeostatic processes in plant cells. To facilitate access to such theoretical approaches, the modeling of the potassium homeostat is explained here in detail to serve as a blueprint for other homeostats. Based on a few, elementary knowledge about the thermodynamics of the different transport processes, it is possible to draw fundamental conclusions about the properties and physiology of the transporter network.

plant biology↗