Az orvos-, egészségtudományi- és gyógyszerészképzés tudományos műhelyeinek fejlesztése(EFOP-3.6.3-VEKOP-16-2017-00009)
Támogató: EFOP-VEKOP
(K-125174) Támogató: Nemzeti Kutatás, Fejlesztés és Innovációs Iroda
(K-135683) Támogató: OTKA
(K-139230) Támogató: NKFIH
NKFIH(NVKP_16-1-2016-0042)
(PD-132851) Támogató: OTKA
(2020-1.1.6-JÖVŐ-2021-00010)
(2020-1.1.6-JOVO-2021-00013)
(TKP2021-EGA-25)
Lysophosphatidylcholine (LPC) is a bioactive lipid that has been shown to attenuate
endothelium-dependent vasorelaxation contributing to endothelial dysfunction; however,
the underlying mechanisms are not well understood. In this study, we investigated
the molecular mechanisms involved in the development of LPC-evoked impairment of endothelium-dependent
vasorelaxation. In aortic rings isolated from wild-type (WT) mice, a 20-min exposure
to LPC significantly reduced the acetylcholine chloride (ACh)–induced vasorelaxation
indicating the impairment of normal endothelial function. Interestingly, pharmacological
inhibition of autotaxin (ATX) by GLPG1690 partially reversed the endothelial dysfunction,
suggesting that lysophosphatidic acid (LPA) derived from LPC may be involved in the
effect. Therefore, the effect of LPC was also tested in aortic rings isolated from
different LPA receptor knock-out (KO) mice. LPC evoked a marked reduction in ACh-dependent
vasorelaxation in Lpar1, Lpar2, and Lpar4 KO, but its effect was significantly attenuated
in Lpar5 KO vessels. Furthermore, addition of superoxide dismutase reduced the LPC-induced
endothelial dysfunction in WT but not in the Lpar5 KO mice. In addition, LPC increased
H 2 O 2 release from WT vessels, which was significantly reduced in Lpar5 KO vessels.
Our findings indicate that the ATX–LPA–LPA 5 receptor axis is involved in the development
of LPC-induced impairment of endothelium-dependent vasorelaxation via LPA 5 receptor–mediated
reactive oxygen species production. Taken together, in this study, we identified a
new pathway contributing to the development of LPC-induced endothelial dysfunction.