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JOY, M. S. H.

Publications and source records attributed to JOY, M. S. H..

2 recordsLinked to original sources

Exercise engages a mechanically activated astrocyte state linking muscle activity to hippocampal plasticity

Physical exercise promotes brain health in part through muscle-derived factors that enter the brain, but how peripheral signals are translated into neural responses remain unclear. Here, we identify astrocyte contraction as a previously unrecognized physiological response to exercise signals that may contribute to adult hippocampal neurogenesis. In vivo, voluntary running rapidly induced nuclear localization of the mechanically sensitive transcriptional regulator Yes-associated protein (YAP), and increased non-muscle myosin II phosphorylation in hilar astrocytes in mice, consistent with acute contraction. Using an in vitro platform with ultrasensitive force sensors, we found that factors released by contracting skeletal muscles activated astrocytes which in turn increased contraction that was necessary and sufficient for their proliferation and expansion. Activated astrocytes subsequently released soluble factors that modulated neuronal network tension and promoted immature neuron abundance. These findings identify astrocyte contractility as a physiological transducer of exercise-derived muscle signals and establish cellular force generation as a potential mechanism regulating neuroplasticity.

neuroscience↗

A fast, muscle-actuated biohybrid swimming robot

The integration of biological actuators with soft scaffolds has led to biohybrid robots including microscale flagellate-like swimmers which generate thrust by waving their flagella-like tails. However, they achieve swimming speeds of only 0.014 body lengths per minute, Reynolds number (Re) [~] 10-3, which is much slower than natural flagellates (O(102 - 103) body lengths per minute). To investigate this, we applied theoretical and experimental methods, including fabrication of a swimmer that converts muscle contractions into large angular tail displacements, reaching swimming speeds of 86.8 m/s (0.58 body lengths per minute), surpassing low-Re predictions. Swimming dynamics sharply transition from a low-Re ([~] 10-3) to an intermediate-Re ([~] 0.1) regime when the actuation angle exceeded 4{degrees}. We used the swimmer to study the ability of muscle to adapt to mechanical stiffness and the beneficial effects of neuromuscular coculture on muscle development. These insights into mechanical and chemical cues will help optimize future biobots. TeaserHow are biological flagellate swimmers like E. coli and sperm cells so fast? We have built a new biohybrid robot to explore the theory.

bioengineering↗