Related Experiment Video
Updated: Sep 30, 2025

Author Spotlight: THP-1 Macrophage Response to LPS/ATP — Unveiling the Pyroptosis, Apoptosis, and Necroptosis Spectrum
Published on: May 3, 2024
Regulation of the release of damage-associated molecular patterns from necroptotic cells
Hiroyasu Nakano1, Shin Murai1, Kenta Moriwaki1
1Department of Biochemistry, Toho University School Medicine, 5-21-16 Omori-Nishi, Ota-ku, Tokyo 143-8540, Japan.
Abstract:
Damage-associated molecular patterns (DAMPs) are molecules within living cells that are released when cell membranes are ruptured. Although DAMPs have physiological functions inside the cell, once DAMPs are released extracellularly, they elicit various biological responses, including inflammation, proliferation, tissue damage, and tissue repair, in a context-dependent manner. In past decades, it was assumed that the release of DAMPs was induced by a membrane rupture, caused by passive ATP depletion, or by chemical or mechanical damage to the membrane. However, that concept has been challenged by recent advancements in understanding the regulation of cell death. Necroptosis is a form of regulated cell death, where cells show necrotic morphology. Necroptosis is triggered by death receptors, toll-like receptors, and some viral infections. The membrane rupture is executed by the mixed lineage-like kinase domain-like pseudokinase (MLKL), which forms oligomers that translocate to the plasma membrane during necroptosis. Although the causal relationship between MLKL function and membrane rupture has been extensively investigated, the detailed molecular mechanisms by which oligomerized MLKL induces membrane rupture are not fully understood. This review summarizes recent advances in understanding how MLKL regulates DAMP release and new technologies for visualizing DAMP release at single-cell resolution.
Insights
Damage-associated molecular patterns (DAMPs) are released from cells during necroptosis, a regulated cell death. This review explores how mixed lineage-like kinase domain-like pseudokinase (MLKL) causes membrane rupture and DAMP release.
Area of Science:
- Cell biology
- Immunology
- Molecular biology
Background:
- Damage-associated molecular patterns (DAMPs) are intracellular molecules released upon cell membrane rupture, mediating inflammation and tissue repair.
- Previously, DAMP release was attributed to passive membrane damage or ATP depletion.
- Recent research challenges this, highlighting regulated cell death pathways.
Purpose of the Study:
- To review recent advances in understanding how MLKL regulates DAMP release during necroptosis.
- To discuss novel technologies for visualizing DAMP release at the single-cell level.
Main Methods:
- Literature review of necroptosis and DAMP release mechanisms.
- Summary of studies investigating MLKL oligomerization and membrane translocation.
- Overview of imaging techniques for single-cell DAMP release analysis.
Main Results:
- Necroptosis involves regulated membrane rupture executed by MLKL oligomers.
- The precise molecular mechanisms of MLKL-induced membrane permeabilization are still under investigation.
- New technologies enable high-resolution visualization of DAMP release during cell death.
Conclusions:
- MLKL plays a critical role in regulated membrane rupture and DAMP release during necroptosis.
- Further research is needed to fully elucidate MLKL's membrane-disrupting functions.
- Advanced imaging techniques are crucial for studying DAMP release dynamics.
More Related Videos
Related Concept Videos
Necrosis
Morphological Manifestations of Necrosis
Necrotic cells show different types of morphological appearance depending on the type of tissue and infection. In coagulative necrosis, cells become...
Phagocytosis of Apoptotic Cells
Normal cells contain receptors that prevent them from being recognized...
The Extrinsic Apoptotic Pathway
Overview of Cell Death
Cell death was observed in the early 19th century, but there was no experimental evidence to prove it. In 1842, Carl Vogt first discovered cell death in a metamorphic toad; however, it was not termed ‘cell death.’ Scientists discovered different cell death pathways only in the...
Autophagic Cell Death
Autophagy and Apoptosis
Autophagy can activate apoptosis. In normal conditions, the autophagy activating protein Beclin-1 and...
Regulation of the Unfolded Protein Response

