Although pathological changes in axonal morphology have emerged as important features of traumatic brain injury (TBI), the mechanical vulnerability of the axonal microcompartment relative to the cell body is not well understood. We hypothesized that soma and neurite microcompartments exhibit distinct mechanical behaviors, rendering axons more sensitive to a mechanical injury. In order to test this assumption, we combined protein micropatterns with magnetic tweezer rheology to probe the viscoelastic properties of neuronal microcompartments. Creep experiments revealed two opposite rheological behaviors within cortical neurons: the cell body was soft and characterized by a solid-like response, whereas the neurite compartment was stiffer and vi...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
The focus of regeneration therapy for traumatic brain injuries and Alzheimer\u27s disease is on the ...
The growth of axons is a key process in neural system development, which relies upon a subtle balanc...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
AbstractThe unique viscoelastic nature of axons is thought to underlie selective vulnerability to da...
Biomechanical cues guide proliferation, growth and maturation of neurons. Yet the molecules that sha...
Axonal degeneration after traumatic brain injury and nerve compression is considered a common underl...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
Living biological cells are highly complex, multifunctional systems whose physical attributes are r...
One hundred fifty years ago glia I cells were discovered as a second, non-neuronal, cell type in the...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
Central nervous system tissues, like other tissue types, undergo constant remodeling, which potentia...
There is increasing evidence that mechanical issues play a vital role in neuron growth and brain dev...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
AbstractNeuronal dendritic spines are a key component of brain circuitry, implicated in many mechani...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
The focus of regeneration therapy for traumatic brain injuries and Alzheimer\u27s disease is on the ...
The growth of axons is a key process in neural system development, which relies upon a subtle balanc...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
AbstractThe unique viscoelastic nature of axons is thought to underlie selective vulnerability to da...
Biomechanical cues guide proliferation, growth and maturation of neurons. Yet the molecules that sha...
Axonal degeneration after traumatic brain injury and nerve compression is considered a common underl...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
Living biological cells are highly complex, multifunctional systems whose physical attributes are r...
One hundred fifty years ago glia I cells were discovered as a second, non-neuronal, cell type in the...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
Central nervous system tissues, like other tissue types, undergo constant remodeling, which potentia...
There is increasing evidence that mechanical issues play a vital role in neuron growth and brain dev...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
AbstractNeuronal dendritic spines are a key component of brain circuitry, implicated in many mechani...
The regional mechanical properties of brain tissue are not only key in the context of brain injury a...
The focus of regeneration therapy for traumatic brain injuries and Alzheimer\u27s disease is on the ...
The growth of axons is a key process in neural system development, which relies upon a subtle balanc...