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Published on: March 25, 2020
Key Role of DAMP in Inflammation, Cancer, and Tissue Repair
Franco Pandolfi1, Simona Altamura1, Simona Frosali1
1Department of Internal Medicine, School of Medicine, Catholic University, Rome, Italy.
Purpose:
This review aimed to take stock of the current status of research on damage-associated molecular pattern (DAMP) protein. We discuss the Janus-faced role of DAMP molecules in inflammation, cancer, and tissue repair. The high-mobility group box (HMGB)-1 and adenosine triphosphate proteins are well-known DAMP molecules and have been primarily associated with inflammation. However, as we shall see, recent data have linked these molecules to tissue repair. HMGB1 is associated with cancer-related inflammation. It activates nuclear factor kB, which is involved in cancer regulation via its receptor for advanced glycation end-products (RAGE), Toll-like receptors 2 and 4. Proinflammatory activity and tissue repair may lead to pharmacologic intervention, by blocking DAMP RAGE and Toll like receptor 2 and 4 role in inflammation and by increasing their concentration in tissue repair, respectively.
Methods:
We conducted a MEDLINE search for articles pertaining to the various issues related to DAMP, and we discuss the most relevant articles especially (ie, not only those published in journals with a higher impact factor).
Findings:
A cluster of remarkable articles on DAMP have appeared in the literature in recent years. Regarding inflammation, several strategies have been proposed to target HMGB1, from antibodies to recombinant box A, which interacts with RAGE, competing with the full molecule. In tissue repair, it was reported that the overexpression of HMGB1 or the administration of exogenous HMGB1 significantly increased the number of vessels and promoted recovery in skin-wound, ischemic injury.
Implications:
Due to the bivalent nature of DAMP, it is often difficult to explain the relative role of DAMP in inflammation versus its role in tissue repair. However, this point is crucial as DAMP-related treatments move into clinical practice.
Insights
Damage-associated molecular patterns (DAMPs) have a dual role in inflammation and tissue repair. Targeting DAMPs offers potential therapeutic strategies for both conditions, but understanding their complex functions is key for clinical applications.
Area of Science:
- Immunology
- Molecular Biology
- Cellular Biology
Background:
- Damage-associated molecular patterns (DAMPs) are endogenous molecules released during cellular stress or injury.
- DAMPs play a Janus-faced role, influencing inflammation, cancer, and tissue repair.
- High-mobility group box 1 (HMGB1) and adenosine triphosphate (ATP) are key DAMPs implicated in these processes.
Purpose of the Study:
- To review the current research status of DAMP proteins.
- To elucidate the dual role of DAMP molecules in inflammation and tissue repair.
- To discuss the implications of DAMPs in cancer and potential therapeutic interventions.
Main Methods:
- Conducted a MEDLINE literature search for articles on DAMPs.
- Focused on relevant articles, prioritizing those from high-impact journals.
- Synthesized findings on DAMPs' roles in inflammation and tissue repair.
Main Results:
- DAMPs, particularly HMGB1, are linked to cancer-related inflammation by activating pathways like NF-κB via RAGE and TLRs.
- Strategies to target HMGB1 in inflammation include antibodies and recombinant box A.
- Overexpression or administration of HMGB1 promotes tissue repair, increasing vascularization and wound healing.
Conclusions:
- The bivalent nature of DAMPs complicates understanding their precise roles in inflammation versus tissue repair.
- Distinguishing these roles is critical for developing effective DAMP-targeted therapies.
- Pharmacological interventions can modulate DAMPs to either block inflammation or promote tissue repair.
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