Spinal cord regenerative ability is lost with development, but the mechanisms underlying this loss are still poorly understood. In chick embryos, effective regeneration does not occur after E13, when spinal cord injury induces extensive apoptotic response and tissue damage. As initial experiments showed that treatment with a calcium chelator after spinal cord injury reduced apoptosis and cavitation, we hypothesized that developmentally regulated mediators of calcium-dependent processes in secondary injury response may contribute to loss of regenerative ability. To this purpose we screened for such changes in chick spinal cords at stages of development permissive (E11) and non-permissive (E15) for regeneration. Among the developmentally regu...
The developing spinal cord supports the outgrowth of ascending and descending pathways as well as pr...
AbstractThe chick spinal cord can regenerate following injury until advanced developmental stages. I...
Mechanical trauma to the spinal cord causes extensive neuronal death, contributing to the loss of se...
Spinal cord regenerative ability is lost with development, but the mechanisms underlying this loss a...
AbstractPADs (peptidylarginine deiminases) are calcium-dependent enzymes that change protein-bound a...
PADs (peptidylarginine deiminases) are calcium-dependent enzymes that change protein-bound arginine ...
Injury to the adult central nervous system cannot be effectively repaired, leading to chronic disabi...
Neurodegenerative diseases present an enormous challenge to medicine and the need for biomarker disc...
It is becoming apparent that regulation at the protein level plays crucial roles in developmental an...
The molecular mechanisms discriminating between regenerative failure and success remain elusive. Whi...
Neonatal hypoxic ischaemic (HI) injury frequently causes neural impairment in surviving infants. Our...
PADs are calcium-dependent enzymes that use a nucleophilic cysteine to hydrolyze guanidinium groups ...
The molecular mechanisms discriminating between regenerative failure and success remain elusive. Whi...
Recent experiments examining the development and plasticity of the chick embryonic spinal cord have ...
Traumatic injuries to the central nervous system can lead to debilitating and often irreversible ne...
The developing spinal cord supports the outgrowth of ascending and descending pathways as well as pr...
AbstractThe chick spinal cord can regenerate following injury until advanced developmental stages. I...
Mechanical trauma to the spinal cord causes extensive neuronal death, contributing to the loss of se...
Spinal cord regenerative ability is lost with development, but the mechanisms underlying this loss a...
AbstractPADs (peptidylarginine deiminases) are calcium-dependent enzymes that change protein-bound a...
PADs (peptidylarginine deiminases) are calcium-dependent enzymes that change protein-bound arginine ...
Injury to the adult central nervous system cannot be effectively repaired, leading to chronic disabi...
Neurodegenerative diseases present an enormous challenge to medicine and the need for biomarker disc...
It is becoming apparent that regulation at the protein level plays crucial roles in developmental an...
The molecular mechanisms discriminating between regenerative failure and success remain elusive. Whi...
Neonatal hypoxic ischaemic (HI) injury frequently causes neural impairment in surviving infants. Our...
PADs are calcium-dependent enzymes that use a nucleophilic cysteine to hydrolyze guanidinium groups ...
The molecular mechanisms discriminating between regenerative failure and success remain elusive. Whi...
Recent experiments examining the development and plasticity of the chick embryonic spinal cord have ...
Traumatic injuries to the central nervous system can lead to debilitating and often irreversible ne...
The developing spinal cord supports the outgrowth of ascending and descending pathways as well as pr...
AbstractThe chick spinal cord can regenerate following injury until advanced developmental stages. I...
Mechanical trauma to the spinal cord causes extensive neuronal death, contributing to the loss of se...