During nervous system development, neurons extend axons along well-defined pathways. The current understanding of axon pathfinding is based mainly on chemical signaling. However, growing neurons interact not only chemically but also mechanically with their environment. Here we identify mechanical signals as important regulators of axon pathfinding. In vitro, substrate stiffness determined growth patterns of Xenopus retinal ganglion cell axons. In vivo atomic force microscopy revealed a noticeable pattern of stiffness gradients in the embryonic brain. Retinal ganglion cell axons grew toward softer tissue, which was reproduced in vitro in the absence of chemical gradients. To test the importance of mechanical signals for axon growth in vivo, ...
Neurons are mechanosensitive cells. The role of mechanical force in the process of neurite initiatio...
Understanding the underlying mechanisms of how axons and dendrites develop is a fundamental problem ...
Whereas the biochemical signals guiding axon growth and neuronal migration are extensively studied, ...
© 2016 Nature America, Inc., part of Springer Nature. All rights reserved. During nervous system dev...
During nervous system development, growing neurons extend axons over long distances to defined targe...
The brain is our most complex organ. During development, neurons extend axons, which may grow over l...
During development, neurons extend long axons which must navigate towards specific synaptic targets ...
AbstractRecent results indicate that, in addition to chemical cues, mechanical stimuli may also impa...
Axonal growth has attracted considerable interest in the last decades. Historically, axon outgrowth ...
Eph receptors and their membrane-bound ligands, ephrins, provide key signals in many developmental p...
Axonal growth is a phenomenon of great interest for the community of neuroscientists. However, the k...
Mechanical forces exerted on neural crest cells control their collective migration and differentiati...
The past few years have seen the convergence of two areas of investigation: the first is the study ...
Neuronal growth is a complex process involving many intra- and extracellular mechanisms which are co...
Until recently, adult mammals were not believed to maintain active neurogenesis into adulthood, and ...
Neurons are mechanosensitive cells. The role of mechanical force in the process of neurite initiatio...
Understanding the underlying mechanisms of how axons and dendrites develop is a fundamental problem ...
Whereas the biochemical signals guiding axon growth and neuronal migration are extensively studied, ...
© 2016 Nature America, Inc., part of Springer Nature. All rights reserved. During nervous system dev...
During nervous system development, growing neurons extend axons over long distances to defined targe...
The brain is our most complex organ. During development, neurons extend axons, which may grow over l...
During development, neurons extend long axons which must navigate towards specific synaptic targets ...
AbstractRecent results indicate that, in addition to chemical cues, mechanical stimuli may also impa...
Axonal growth has attracted considerable interest in the last decades. Historically, axon outgrowth ...
Eph receptors and their membrane-bound ligands, ephrins, provide key signals in many developmental p...
Axonal growth is a phenomenon of great interest for the community of neuroscientists. However, the k...
Mechanical forces exerted on neural crest cells control their collective migration and differentiati...
The past few years have seen the convergence of two areas of investigation: the first is the study ...
Neuronal growth is a complex process involving many intra- and extracellular mechanisms which are co...
Until recently, adult mammals were not believed to maintain active neurogenesis into adulthood, and ...
Neurons are mechanosensitive cells. The role of mechanical force in the process of neurite initiatio...
Understanding the underlying mechanisms of how axons and dendrites develop is a fundamental problem ...
Whereas the biochemical signals guiding axon growth and neuronal migration are extensively studied, ...