Related Experiment Video
Updated: Oct 6, 2025

Generation of a RIP1 Knockout U937 Cell Line Using the CRISPR-Cas9 System
Published on: April 11, 2025
Inhibition of Neuronal Necroptosis Mediated by RIPK1 Provides Neuroprotective Effects on Hypoxia and Ischemia In
Elena V Mitroshina1, Maria M Loginova1, Roman S Yarkov1
1Institute of Biology and Biomedicine, Lobachevsky State University of Nizhni Novgorod, 23 Prospekt Gagarina, 603950 Nizhny Novgorod, Russia.
Abstract:
Ischemic brain injury is a widespread pathological condition, the main components of which are a deficiency of oxygen and energy substrates. In recent years, a number of new forms of cell death, including necroptosis, have been described. In necroptosis, a cascade of interactions between the kinases RIPK1 and RIPK3 and the MLKL protein leads to the formation of a specialized death complex called the necrosome, which triggers MLKL-mediated destruction of the cell membrane and necroptotic cell death. Necroptosis probably plays an important role in the development of ischemia/reperfusion injury and can be considered as a potential target for finding methods to correct the disruption of neural networks in ischemic damage. In the present study, we demonstrated that blockade of RIPK1 kinase by Necrostatin-1 preserved the viability of cells in primary hippocampal cultures in an in vitro model of glucose deprivation. The effect of RIPK1 blockade on the bioelectrical and metabolic calcium activity of neuron-glial networks in vitro using calcium imaging and multi-electrode arrays was assessed for the first time. RIPK1 blockade was shown to partially preserve both calcium and bioelectric activity of neuron-glial networks under ischemic factors. However, it should be noted that RIPK1 blockade does not preserve the network parameters of the collective calcium dynamics of neuron-glial networks, despite the maintenance of network bioelectrical activity (the number of bursts and the number of spikes in the bursts). To confirm the data obtained in vitro, we studied the effect of RIPK1 blockade on the resistance of small laboratory animals to in vivo modeling of hypoxia and cerebral ischemia. The use of Necrostatin-1 increases the survival rate of C57BL mice in modeling both acute hypobaric hypoxia and ischemic brain damage.
Insights
Necroptosis, a form of cell death, contributes to ischemic brain injury. Blocking RIPK1 kinase with Necrostatin-1 partially preserves neuron-glial network activity and improves survival in animal models of hypoxia and brain ischemia.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Ischemic brain injury results from oxygen and energy deficiency.
- Necroptosis, a programmed cell death pathway involving RIPK1, RIPK3, and MLKL, is implicated in ischemia/reperfusion injury.
- Targeting necroptosis may offer therapeutic strategies for neural network disruption in ischemic damage.
Purpose of the Study:
- To investigate the role of RIPK1 kinase in necroptosis within ischemic brain injury.
- To evaluate the neuroprotective effects of RIPK1 blockade using Necrostatin-1 in vitro and in vivo models.
Main Methods:
- Primary hippocampal cultures were used to model in vitro glucose deprivation.
- Calcium imaging and multi-electrode arrays assessed bioelectrical and calcium activity of neuron-glial networks.
- In vivo studies involved modeling hypoxia and cerebral ischemia in C57BL mice.
Main Results:
- Necrostatin-1 preserved cell viability in vitro and partially maintained calcium and bioelectric activity in neuron-glial networks under ischemic conditions.
- RIPK1 blockade did not preserve collective calcium dynamics despite maintaining network bioelectrical activity.
- Necrostatin-1 treatment increased survival rates in mice subjected to hypoxia and ischemic brain damage models.
Conclusions:
- RIPK1 kinase plays a role in necroptosis and ischemic brain injury.
- Targeting RIPK1 with Necrostatin-1 shows potential for neuroprotection in ischemic conditions.
- Further research is needed to understand the complex effects of RIPK1 blockade on network dynamics.
More Related Videos
07:52Remote Limb Ischemic Preconditioning: A Neuroprotective Technique in Rodents
Published on: June 2, 2015
09:15Tyramide Signal Amplification for the Immunofluorescent Staining of ZBP1-Dependent Phosphorylation of RIPK3 and MLKL After HSV-1 Infection in Human Cells
Published on: October 20, 2022