Neurons utilize plasticity of dendritic arbors as part of a larger suite of adaptive plasticity mechanisms. This explicitly manifests with motoneurons in the Drosophila embryo and larva, where dendritic arbors are exclusively postsynaptic and are used as homeostatic devices, compensating for changes in synaptic input through adapting their growth and connectivity. We recently identified reactive oxygen species (ROS) as novel plasticity signals instrumental in this form of dendritic adjustment. ROS correlate with levels of neuronal activity and negatively regulate dendritic arbor size. Here, we investigated NADPH oxidases as potential sources of such activity-regulated ROS and implicate Dual Oxidase (but not Nox), which generates hydrogen pe...
This work was supported by BBSRC research grants (BB/IO1179X/1, BB/M002934/1) to ML, (BB/I012273/1, ...
Ageing is characterised by pathological increases in reactive oxygen species (ROS) termed oxidative ...
Reactive oxygen species (ROS) have emerged as regulators of key processes supporting neuronal growth...
Neurons utilize plasticity of dendritic arbors as part of a larger suite of adaptive plasticity mech...
Neurons respond to changes in the levels of activity they experience in a variety of ways, including...
Neurons respond to changes in the levels of activity they experience in a variety of ways, including...
Reactive oxygen species (ROS) have been extensively studied as damaging agents associated with agein...
Reactive oxygen species (ROS) have been extensively studied as damaging agents associated with agein...
Reactive oxygen species (ROS) have been extensively studied as damaging agents associated with agein...
Reactive oxygen species (ROS) have been extensively studied as damaging agents associated with agein...
Under conditions of stress, Reactive Oxygen Species (ROS) are generated. ROS are high energy damagin...
Previous studies have shown that bone morphogenetic proteins (BMPs) promote dendritic growth in symp...
Previous studies have shown that bone morphogenetic proteins (BMPs) promote dendritic growth in symp...
Previous studies have shown that bone morphogenetic proteins (BMPs) promote dendritic growth in symp...
Although long known for their damaging effects to cell components and contribution to aging, cancer,...
This work was supported by BBSRC research grants (BB/IO1179X/1, BB/M002934/1) to ML, (BB/I012273/1, ...
Ageing is characterised by pathological increases in reactive oxygen species (ROS) termed oxidative ...
Reactive oxygen species (ROS) have emerged as regulators of key processes supporting neuronal growth...
Neurons utilize plasticity of dendritic arbors as part of a larger suite of adaptive plasticity mech...
Neurons respond to changes in the levels of activity they experience in a variety of ways, including...
Neurons respond to changes in the levels of activity they experience in a variety of ways, including...
Reactive oxygen species (ROS) have been extensively studied as damaging agents associated with agein...
Reactive oxygen species (ROS) have been extensively studied as damaging agents associated with agein...
Reactive oxygen species (ROS) have been extensively studied as damaging agents associated with agein...
Reactive oxygen species (ROS) have been extensively studied as damaging agents associated with agein...
Under conditions of stress, Reactive Oxygen Species (ROS) are generated. ROS are high energy damagin...
Previous studies have shown that bone morphogenetic proteins (BMPs) promote dendritic growth in symp...
Previous studies have shown that bone morphogenetic proteins (BMPs) promote dendritic growth in symp...
Previous studies have shown that bone morphogenetic proteins (BMPs) promote dendritic growth in symp...
Although long known for their damaging effects to cell components and contribution to aging, cancer,...
This work was supported by BBSRC research grants (BB/IO1179X/1, BB/M002934/1) to ML, (BB/I012273/1, ...
Ageing is characterised by pathological increases in reactive oxygen species (ROS) termed oxidative ...
Reactive oxygen species (ROS) have emerged as regulators of key processes supporting neuronal growth...