Completed Plants, Animals & Ecology Food & Agriculture

Regulation of biological signalling by temperature (ROBUST)

In plain English

AI plain-English summary

A single frost in California wiped out $450 million of citrus crops last year. This project aims to understand how plants sense and respond to temperature changes, so that crops can be bred or engineered to withstand both heatwaves and unexpected cold snaps. Current approaches have failed to identify plant temperature sensors because they study biological pathways in isolation. This team will instead build a computer model of how temperature interacts with the plant's light, clock, and cold-signalling networks simultaneously. They will test the model against real measurements at molecular, cellular, and whole-plant levels, using the well-characterised weed *Arabidopsis* as a stand-in for food crops. If successful, the work will produce the most advanced signalling network model in plants, identify the first plant temperature sensors, and reveal how networks maintain function across temperature ranges. This is fundamental science—there is no immediate commercial product. But the knowledge base it creates will allow breeders and biotechnologists to develop crops that yield reliably under increasingly erratic weather, protecting the £1 trillion European agricultural industry from climate-driven losses.

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Agriculture underpins European industry with an annual turnover of more than ¤1 trillion and is essential for our survival. As resources dwindle and world populations grow, our demands on agriculture will also increase. As climate changes in the coming decades, current trends suggest that global temperatures will rise. Not only is mean temperature set to change but weather systems are also becoming less predictable: an unprecedented frost this year resulted in a failure of the Californian citrus crop, costing the industry $450 million. The combination of increased demand on agriculture and the changes in global climate and weather extremes represent a major challenge for science in the 21st century. To meet this challenge, we need to know how plants both respond to and protect against temperature changes. The same issues apply to other environmental factors across all biological systems, therefore, understanding this is a major goal for experimental and theoretical scientists. In recent years reductionist science, where biological pathways are studied in isolation, has not identified plant temperature sensors. It also cannot address how temperature effects that cross the many, interacting pathways, which we now know are involved. We take a multi-disciplinary approach and focus our studies on one of the best characterised signalling networks in plants. We will combine expertise from biologists that specialise in molecular and cell biology, plant physiology and climate change; and theoreticians that specialise in statistical, mathematical and computer science approaches to analyse and model biological systems. To provide vital independent expertise and avenues for collaboration we have invited a panel of experts from industry and academia, to meet with us on a yearly basis. We will analyse how temperature influences the interlinked pathways of light, 24-hour clock and cold signalling. We conduct our studies in the model plant Arabidopsis as it offers several advantages: 1. we have already developed the most advanced mathematical model in plant signalling, for a section of our network; 2. our network pathways are already well defined, with many useful tools and resources in Arabidopsis; and 3. the pathways in plants of economic and ecological importance appear to be closely related, so our results can readily be translated to other species. To capture a meaningful view of how temperature-regulated molecular events translate to important physiological traits we will conduct our analysis at molecular, cellular and whole plant levels. Our first task will be to expand our model with the pre-existing knowledge for the rest of our network. We will measure the response of all our network components over a range of temperatures and integrate these data into our preliminary model. This, approach will locate the temperature-sensitive and -tolerant parts of the network in an unbiased fashion: the important point is that the temperature responses that matter will not be caused by single components, but by many acting together. We cannot understand this complexity without computer models. Our models will help inform our experiments, to home in on the molecular mechanisms that control the network's properties. Finally, we will test the role of important network components in controlling agriculturally and ecologically relevant traits in whole plants. In summary, this project will develop the most advanced signalling network model in plants, define network features that permit responsiveness and tolerance, and identify plant temperature sensors. Our work will address fundamental questions in biology and create the knowledge base required to meet the challenge to develop crops better able to withstand a range of climatic conditions. Our multidisciplinary collaboration will also provide training and extension of 'Systems Biology' approaches to universities with no current expertise and to our industrial collaborators.

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Researchers

Andrew Millar (Co-Investigator)Igor Goryanin (Co-Investigator)Karen Halliday (Principal Investigator)Mathew Williams (Co-Investigator)

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Original classification

Research Grant

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