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Updated: Aug 13, 2025

Characterization of MLKL-mediated Plasma Membrane Rupture in Necroptosis
Published on: August 7, 2018
Omics approaches to better understand the molecular mechanism of necroptosis and their translational implications
Apoorva J Pradhan1, G Ekin Atilla-Gokcumen1
1Department of Chemistry, College of Arts and Sciences, University at Buffalo, Buffalo, NY, USA. ekinatil@buffalo.edu.
Abstract:
Necroptosis is a type of programed cell death characterized by an inflammatory phenotype due to extensive membrane permeabilization and rupture. Initiation of necroptosis involves activation of tumor necrosis factor receptors by tumor necrosis factor alpha (TNFα) followed by coordinated activities of receptor-interacting protein kinases and mixed lineage kinase-like protein (MLKL). Subsequently, MLKL undergoes phosphorylation and translocates to the plasma membrane, leading to permeabilization. Such permeabilization results in the release of various cytokines and causes extensive inflammatory activity at the organismal level. This inflammatory activity is one of the major differences between apoptosis and necroptosis and links necroptosis to several human pathologies that exhibit inflammation, in addition to the ultimate cell death phenotype. Given the crosstalk between the activation of cell death pathway and inflammatory activity, approaches that provide insights on the regulation of transcripts, proteins and their processing at the global level have substantially improved our understanding of necroptosis and its involvement in different disease states. In this review, we highlight recent omic studies probing the transcriptome, proteome and lipidome which elucidate potential new mechanisms and signaling pathways during necroptosis and the necroptosis-associated inflammatory activity observed in various diseases. We specifically focus on studies investigating the transcriptome and intracellular and released proteome that contribute to inflammatory nature of necroptotic cells. We also highlight different lipids that have been implicated in necroptosis and lipidomic studies identifying lipid players in necroptosis. Finally, we review studies which suggest certain necroptosis-related genes as potential prognosis markers for different cancers and discuss their translational implications.
Insights
Necroptosis, a programmed cell death, triggers inflammation via cell rupture. Omic studies reveal new insights into necroptosis signaling, its inflammatory role in diseases, and potential cancer biomarkers.
Area of Science:
- Molecular Biology
- Cell Biology
- Immunology
Background:
- Necroptosis is programmed cell death causing inflammation due to cell rupture.
- It involves TNFα, RIP kinases, and MLKL, leading to plasma membrane permeabilization.
- Inflammatory activity distinguishes necroptosis from apoptosis and links it to pathologies.
Purpose of the Study:
- To review recent omic studies on necroptosis and associated inflammation.
- To highlight mechanisms, signaling pathways, and molecular players.
- To discuss the role of necroptosis in disease and its potential as a biomarker.
Main Methods:
- Review of omic studies (transcriptome, proteome, lipidome).
- Focus on studies investigating necroptosis-induced inflammation.
- Analysis of necroptosis-related genes for cancer prognosis.
Main Results:
- Omic studies provide global insights into necroptosis regulation.
- Specific focus on transcriptomic and proteomic data elucidating inflammatory mediators.
- Lipidomic studies identify key lipids involved in necroptosis.
Conclusions:
- Necroptosis is a key inflammatory cell death pathway.
- Omic approaches have advanced understanding of necroptosis and its disease links.
- Necroptosis-related genes show promise as cancer biomarkers.
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