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Author Spotlight: Exploring the Relationship Between Lipotoxicity and HFpEF
Published on: March 29, 2024
Disruption of the PGE2 synthesis / response pathway restrains atherogenesis in programmed cell death-1 (Pd-1)
Emanuela Ricciotti1,2, Soon Yew Tang1, Antonijo Mrčela1
1Institute for Translational Medicine and Therapeutics, Perelman School of Medicine.
Abstract:
Immune checkpoint inhibitors (ICIs) that target programmed cell death 1 (PD-1) have revolutionized cancer treatment by enabling the restoration of suppressed T-cell cytotoxic responses. However, resistance to single-agent ICIs limits their clinical utility. Combinatorial strategies enhance their antitumor effects, but may also enhance the risk of immune related adverse effects of ICIs. Prostaglandin (PG) E2, formed by the sequential action of the cyclooxygenase (COX) and microsomal PGE synthase (mPGES-1) enzymes, acting via its E prostanoid (EP) receptors, EPr2 and EPr4, promotes lymphocyte exhaustion, revealing an additional target for ICIs. Thus, COX inhibitors and EPr4 antagonists are currently being combined with ICIs potentially to enhance antitumor efficacy in clinical trials. However, given the cardiovascular (CV) toxicity of COX inhibitors, such combinations may increase the risk particularly of CV AEs. Here, we compared the impact of distinct approaches to disruption of the PGE2 synthesis /response pathway - global or myeloid cell specific depletion of mPges-1 or global depletion of Epr4 - on the accelerated atherogenesis in Pd-1 deficient hyperlipidemic (Ldlr-/-) mice. All strategies restrained the atherogenesis. While depletion of mPGES-1 suppresses PGE2 biosynthesis, reflected by its major urinary metabolite, PGE2 biosynthesis was increased in mice lacking EPr4, consistent with enhanced expression of aortic Cox-1 and mPges-1. Deletions of mPges-1 and Epr4 differed in their effects on immune cell populations in atherosclerotic plaques; the former reduced neutrophil infiltration, while the latter restrained macrophages and increased the infiltration of T-cells. Consistent with these findings, chemotaxis by bone-marrow derived macrophages from Epr4-/- mice was impaired. Epr4 depletion also resulted in extramedullary lymphoid hematopoiesis and inhibition of lipoprotein lipase activity (LPL) with coincident spelenomegaly, leukocytosis and dyslipidemia. Targeting either mPGES-1 or EPr4 may restrain lymphocyte exhaustion while mitigating CV irAEs consequent to PD-1 blockade.
Insights
Targeting prostaglandin E2 pathways with immune checkpoint inhibitors may improve cancer treatment. Disrupting mPGES-1 or EPr4 restrains atherosclerosis and may reduce cardiovascular risks associated with PD-1 blockade.
Area of Science:
- Immunology
- Cardiovascular Research
- Pharmacology
Background:
- Immune checkpoint inhibitors (ICIs) targeting programmed cell death 1 (PD-1) are effective cancer treatments but face resistance.
- Prostaglandin E2 (PGE2) signaling via E prostanoid receptors (EPr2, EPr4) promotes T-cell exhaustion, presenting a therapeutic target.
- Combinations of ICIs with cyclooxygenase (COX) inhibitors risk cardiovascular adverse events (AEs).
Purpose of the Study:
- To compare the impact of disrupting the PGE2 pathway on accelerated atherosclerosis in PD-1 deficient mice.
- To evaluate the effects of mPGES-1 or EPr4 inhibition on immune cell infiltration and cardiovascular risks.
Main Methods:
- Mice with PD-1 deficiency and hyperlipidemia (Ldlr-/-) were used.
- Strategies included global or myeloid-specific mPGES-1 depletion and global EPr4 depletion.
- Atherogenesis, immune cell populations in plaques, and PGE2 biosynthesis were analyzed.
Main Results:
- All strategies, including mPGES-1 and EPr4 targeting, restrained atherogenesis.
- mPGES-1 depletion reduced PGE2 biosynthesis, while EPr4 deficiency increased it.
- mPGES-1 deletion decreased neutrophils, whereas EPr4 deletion reduced macrophages and increased T-cells in plaques.
- EPr4 deletion led to extramedullary lymphoid hematopoiesis and dyslipidemia.
Conclusions:
- Targeting mPGES-1 or EPr4 can restrain lymphocyte exhaustion and potentially mitigate cardiovascular immune-related AEs of PD-1 blockade.
- Distinct effects on immune cells and metabolic parameters were observed between mPGES-1 and EPr4 targeting.
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