The nitric oxide-cGKII system relays death and survival signals during embryonic retinal development via AKT-induced
R Socodato1, R Brito1, C C Portugal1
1Program of Neurosciences, Institute of Biology, Fluminense Federal University, Rio de Janeiro, Brazil.
Abstract:
During early neurogenesis, retinal neuronal cells display a conserved differentiation program in vertebrates. Previous studies established that nitric oxide (NO) and cGMP accumulation regulate essential events in retinal physiology. Here we used pharmacological and genetic loss-of-function to investigate the effects of NO and its downstream signaling pathway in the survival of developing avian retinal neurons in vitro and in vivo. Six-day-old (E6) chick retinal cells displayed increased calcium influx and produced higher amounts of NO when compared with E8 cells. L-arginine (substrate for NO biosynthesis) and S-nitroso-N-acetyl-D,L-penicillamine (SNAP; a nitrosothiol NO donor) promoted extensive cell death in E6 retinas, whereas in E8 both substances decreased apoptosis. The effect of NO at both periods was mediated by soluble guanylyl cyclase (sGC) and cGMP-dependent kinase (cGK) activation. In addition, shRNA-mediated cGKII knockdown prevented NO-induced cell death (E6) and cell survival (E8). This, NO-induced cell death or cell survival was not correlated with an early inhibition of retinal cell proliferation. E6 cells also responded differentially from E8 neurons regarding cyclic AMP-responsive element-binding protein (CREB) activation in the retina in vivo. NO strongly decreased nuclear phospho-CREB staining in E6 but it robustly enhanced CREB phosphorylation in the nuclei of E8 neurons, an effect that was completely abrogated by cGKII shRNAs at both embryonic stages. The ability of NO in regulating CREB differentially during retinal development relied on the capacity of cGKII in decreasing (E6) or increasing (E8) nuclear AKT (V-Akt murine thymoma viral oncogene) activation. Accordingly, inhibiting AKT prevented both cGKII shRNA-mediated CREB upregulation in E6 and SNAP-induced CREB activation in E8. Furthermore, shRNA-mediated in vivo cGKII or in vitro CREB1 knockdown confirmed that NO/cGKII dualistically regulated the downstream CREB1 pathway and caspase activation in the chick retina to modulate neuronal viability. These data demonstrate that NO-mediated cGKII signaling may function to control the viability of neuronal cells during early retinal development via AKT/CREB1 activity.
Insights
Nitric oxide (NO) plays a dual role in avian retinal neuron survival during development, promoting cell death in early stages and survival later on. This effect is mediated by the nitric oxide (NO)/cGMP-dependent kinase II (cGKII)/AKT/CREB1 pathway.
Area of Science:
- Neuroscience
- Developmental Biology
- Cell Biology
Background:
- Nitric oxide (NO) and cyclic guanosine monophosphate (cGMP) are known regulators of retinal physiology.
- Early neurogenesis involves conserved differentiation programs in vertebrate retinal neuronal cells.
Purpose of the Study:
- To investigate the role of nitric oxide (NO) and its downstream signaling pathway in the survival of developing avian retinal neurons.
- To elucidate the differential effects of NO on neuronal viability during early retinal development.
Main Methods:
- Pharmacological treatments and genetic loss-of-function approaches (shRNA) were used in vitro and in vivo.
- Analysis included calcium influx measurements, NO production assays, apoptosis assessment, and Western blotting for phosphorylated CREB and AKT.
- Knockdown of cGKII and CREB1 was performed to assess their roles in NO-mediated signaling.
Main Results:
- Nitric oxide (NO) induced cell death in early (E6) but promoted survival in later (E8) developing chick retinal neurons.
- These effects were mediated by soluble guanylyl cyclase (sGC) and cGMP-dependent kinase II (cGKII).
- NO signaling differentially regulated AKT and CREB phosphorylation, influencing neuronal viability via the AKT/CREB1 pathway and caspase activation.
Conclusions:
- Nitric oxide (NO) exhibits a dual role in regulating avian retinal neuronal survival during development.
- The NO-mediated cGKII signaling pathway, involving AKT and CREB1, is crucial for controlling neuronal viability.
- This study highlights a novel mechanism by which NO modulates neuronal fate during retinal development.
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