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Published on: March 15, 2024
Omarigliptin inhibits brain cell ferroptosis after intracerebral hemorrhage
Yan Zhang1,2, Yang Liu1,2, V Wee Yong3
1Department of Cerebrovascular Diseases, The Second Affiliated Hospital of Zhengzhou University, Zhengzhou, 450001, Henan, China.
Insights
Omarigliptin (MK3102) reduces brain damage and improves neurological function after intracerebral hemorrhage (ICH) by inhibiting neuronal ferroptosis. This study reveals MK3102
Area of Science:
- Neuroscience
- Cell Biology
- Pharmacology
Background:
- Intracerebral hemorrhage (ICH) causes significant neurological dysfunction, with neuronal ferroptosis being a key pathological mechanism.
- Current treatments for ICH are limited, highlighting the need for novel therapeutic strategies.
- Omarigliptin (MK3102), a DPP4 inhibitor, has shown anti-ferroptosis effects in other conditions, but its role in ICH is unexplored.
Purpose of the Study:
- To investigate the anti-ferroptosis and neuroprotective effects of Omarigliptin (MK3102) in an experimental model of intracerebral hemorrhage (ICH).
- To elucidate the underlying mechanisms, including the role of glucagon-like peptide-1 receptor (GLP-1R) signaling.
Main Methods:
- ICH was induced in primary cortical neurons using hemin and in C57BL/6 mice using collagenase VII.
- MK3102 was administered post-ICH; cell viability, neurological deficits, brain damage, and cell death were assessed.
- Ferroptosis markers (iron, lipid peroxidation, GPX4, AIFM2, FACL4) and GLP-1R levels were evaluated using various assays and staining techniques.
Main Results:
- MK3102 significantly reduced hemin-induced neurotoxicity in vitro and improved neurological function in mice post-ICH.
- Treatment with MK3102 decreased neuronal death and brain damage area, while mitigating ferroptosis markers.
- MK3102 upregulated GLP-1R levels and reversed ICH-induced alterations in iron, lipid peroxidation, GPX4, AIFM2, and FACL4.
Conclusions:
- Omarigliptin (MK3102) exerts significant neuroprotective effects against ICH injury.
- The therapeutic benefits of MK3102 are attributed to its ability to inhibit neuronal ferroptosis, potentially via GLP-1R regulation.
- MK3102 represents a promising therapeutic candidate for treating intracerebral hemorrhage.
Abstract:
Intracerebral hemorrhage (ICH) is a disastrous disease without effective treatment. An extensive body of evidence indicate that neuronal ferroptosis is a key contributor to neurological disfunctions after ICH. Omarigliptin, also known as MK3102, is an anti-diabetic drug that inhibits dipeptidyl peptidase (DPP4). Recently, MK3102 is reported to exhibit anti-ferroptosis and anti-oxidative effects in different pathological conditions. However, the anti-ferroptosis ability of MK3102 in ICH injury is unknown. Hemin was administrated to model ICH injury in cultured primary cortical neurons, and collagenase VII was used to induce ICH in C57BL/6 mice. MK3102 was administered after ICH. Cell Counting Kit-8 (CCK-8) was applied to detect cell viability. Neurological functions were assessed through the Focal deficits neurological scores and corner test. HE and TUNEL staining was applied to evaluate brain damage areas and cell death, respectively. Ferroptosis was evaluated in cultured neurons by fluorescent probe DCFH-DA, FerroOrange, Liperfluo and immunofluorescence of GPX4, AIFM2 and FACL4. Perls staining was performed to visualize Fe3+ deposition. Ferroptosis-related proteins in mouse brain were measured by immunohistochemistry and western blotting. MK3102 reduced the neurotoxicity of hemin in cultured primary cortical neurons. It improved neurological functions associated with a decrease in the number of dead neurons and the area of brain damage after ICH in mice. Moreover, MK3102 prominently upregulated glucagon-like peptide-1 receptor (GLP-1R) levels after ICH. In addition, the elevation of iron content, lipid peroxidation and FACL4 after ICH; and reduction of GPX4 and AIFM2; were mitigated by MK3102 in vitro and in vivo. The neuroprotective effect of MK3102 may be related to anti-ferroptosis by regulating GLP-1R after ICH injury.

