Every time you take a step, trip, or bump into a doorframe, mechanical forces ripple through your organs—and your body somehow ignores most of them, only responding when it matters. This project asks how tissues distinguish between harmless daily jostling and damaging impacts, and how they know when to stop repairing after an injury. Current medicine cannot explain why gentle physiotherapy helps a broken bone heal while too much motion disrupts it, or why some wounds scar while others do not. The researchers will combine biology, physics, and computer modelling to uncover the rules that organs use to filter mechanical noise, maintain their shape, and repair damage without overshooting into scar tissue or cancer. This is fundamental science with no immediate clinical application. But understanding how tissues sense and respond to mechanical forces could eventually improve rehabilitation protocols, reduce scarring after surgery, and explain why some organs—like the heart or bones—change shape in response to exercise or weightlessness while others remain stable. Similar work on mechanobiology has already informed treatments for osteoporosis and heart failure.
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An organ must be of the correct size and shape to effectively perform its functions. Mechanical forces are known to be important in shaping organs. For example, athletes have enlarged hearts due to the extra forces that the heart is subjected to during frequent exercise, and astronauts lose bone mass due to the lack of gravitational force in space to stimulate bone growth. However, there are constant fluctuations in forces from the environment, such as those associated with daily motion, or a trip and a fall. How does our body stop itself from constantly responding to all these fluctuating forces and change shape constantly? These fluctuating forces can sometimes be so extreme that they can cause damage to our organs, such as the breaking of a bone after an accident or the cut of the skin from a knife wound. Not all fluctuations are bad. Small fluctuations (or 'noise') can be important in the control of both biological and non-biological systems, and in their ability to respond to damage. For example, a building that wobbles slightly (but not excessively) is better at withstanding an earthquake. After breaking a bone, gentle motion stimulates bone synthesis, but excessive motion disrupts repair. It is currently unknown how our body organs respond to different levels of external forces, and the potential beneficial or detrimental consequences of these forces. How do organs cope with fluctuating mechanical noises every day and manage to stay in their correct size and shape? How do they repair themselves accurately and quickly after a wound? What is the role of mechanical noise (such as those applied during physiotherapy) during wound repair? How do tissues know when to stop repairing after it has completely healed to minimize scarring and prevent the development of overgrowths and cancer? These are examples of questions we will address during this project. We will use my lab's expertise and approaches from different scientific fields: biology, physics, mathematics, and computer science, to answer these questions. This work will be important for understanding the diversity of biological form in nature, treating diseases affecting tissue size and shape, such as cancer, and in improving wound repair mechanisms to minimise scarring and improve our long term health.
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