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Updated: Feb 3, 2026

Characterization of MLKL-mediated Plasma Membrane Rupture in Necroptosis
Published on: August 7, 2018
Identification and Characterization of NTB451 as a Potential Inhibitor of Necroptosis
Eun-Jung In1, Yuno Lee2, Sushruta Koppula3
1BK21PLUS Glocal Education Program of Nutraceuticals Development, Department of Applied Life Science, Graduate School, Konkuk University, Chungju 27478, Korea. dlsdmswjd12@gmail.com.
Abstract:
Necroptosis, or caspase-independent programmed cell death, is known to be involved in various pathological conditions, such as ischemia/reperfusion injury, myocardial infarction, atherosclerosis, and inflammatory bowel diseases. Although several inhibitors of necroptosis have been identified, none of them are currently in clinical use. In the present study, we identified a new compound, 4-({[5-(4-aminophenyl)-4-ethyl-4H-1,2,4-triazol-3-yl]sulfanyl}methyl)-N-(1,3-thiazol-2-yl) benzamide (NTB451), with significant inhibitory activity on the necroptosis induced by various triggers, such as tumor necrosis factor-α (TNF-α) and toll-like receptor (TLR) agonists. Mechanistic studies revealed that NTB451 inhibited phosphorylation and oligomerization of mixed lineage kinase domain like (MLKL), and this activity was linked to its inhibitory effect on the formation of the receptor interacting serine/threonine-protein kinase 1 (RIPK1)-RIPK3 complex. Small interfering RNA (siRNA)-mediated RIPK1 knockdown, drug affinity responsive target stability assay, and molecular dynamics (MD) simulation study illustrated that RIPK1 is a specific target of NTB451. Moreover, MD simulation showed a direct interaction of NTB451 and RIPK1. Further experiments to ensure that the inhibitory effect of NTB451 was restricted to necroptosis and NTB451 had no effect on nuclear factor-κB (NF-κB) activation or apoptotic cell death upon triggering with TNF-α were also performed. Considering the data obtained, our study confirmed the potential of NTB451 as a new necroptosis inhibitor, suggesting its therapeutic implications for pathological conditions induced by necroptotic cell death.
Insights
A novel compound, NTB451, effectively inhibits necroptosis, a form of programmed cell death implicated in diseases like IBD and heart attack. This discovery offers potential new therapies for necroptosis-related conditions.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Necroptosis is a programmed cell death pathway implicated in various diseases, including ischemia/reperfusion injury, myocardial infarction, atherosclerosis, and inflammatory bowel diseases.
- Current necroptosis inhibitors lack clinical application, highlighting the need for new therapeutic agents.
Purpose of the Study:
- To identify and characterize a novel small molecule inhibitor of necroptosis.
- To elucidate the mechanism of action and target specificity of the identified compound.
Main Methods:
- In vitro assays to assess necroptosis inhibition by NTB451 using TNF-α and TLR agonists.
- Western blotting to analyze MLKL phosphorylation and oligomerization.
- Biochemical assays and siRNA to investigate RIPK1-RIPK3 complex formation.
- Drug affinity responsive target stability assay and molecular dynamics simulations to identify NTB451's target.
- Experiments to evaluate NTB451's specificity for necroptosis over apoptosis and NF-κB activation.
Main Results:
- NTB451 significantly inhibited necroptosis induced by various stimuli.
- NTB451 suppressed MLKL phosphorylation and oligomerization, and RIPK1-RIPK3 complex formation.
- RIPK1 was identified as a specific target of NTB451 through multiple experimental approaches, including MD simulations showing direct interaction.
- NTB451 demonstrated specificity for necroptosis, with no observed effects on NF-κB activation or apoptosis.
Conclusions:
- NTB451 is a potent and specific inhibitor of necroptosis.
- The compound targets RIPK1, offering a novel therapeutic strategy.
- NTB451 holds promise for treating pathological conditions driven by necroptotic cell death.
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