Tackling aging and chronic disease: How space exploration and the ‘chameleon effect’ of pharmaceuticals can lead the way
Carina Kern, Tina Woods, Keith SiewAbstract
A common misconception surrounding space exploration is that humanity's pursuit of interplanetary travel, such as missions to Mars, is an escape from Earth. In reality, this endeavour offers an invaluable opportunity to address critical biomedical challenges here at home. The extreme conditions of space, including microgravity, cosmic radiation and prolonged isolation, create a natural laboratory for studying human biology under stress, allowing us to explore the boundaries of human resilience. These exposures yield key insights into the biology of aging, the accelerated decline of physiological function and the early onset of chronic diseases. Among the organs most susceptible to environmental stress is the kidney, which is at high risk of failure during long‐duration spaceflight. Its sensitivity makes it an ideal model for understanding how stress accelerates degeneration, both in space and on Earth. By studying kidney function alongside broader cellular processes, we can illuminate how stress drives aging and chronic disease. This is particularly exemplified by the process of cellular necrosis (unprogrammed cell death), which represents a key central node as recently demonstrated. Necrosis acts upstream of processes like cellular senescence and tissue degeneration, and is the mechanism through which multiple environmental factors erode resilience and drive the progression of chronic diseases like kidney disease. Following this exploration of how stress accelerates biological decline, we examine strategies that may protect against such damage, preventing disease and preserving physiological resilience. Pharmaceuticals, with their ability to modulate physiology transiently, are especially powerful in dynamic, real‐world environments where stressors continually change. This ‘chameleon effect’ of pharmaceuticals offers the potential to uncouple biological trade‐offs and enhance adaptive capacity to stress. Understanding these processes in the space environment provides an unprecedented opportunity, difficult to reproduce on Earth, to identify links between exposure and develop targeted interventions to enhance health and resilience on Earth.