LDL and apoB
Inhibiting secretory phospholipase A2 raises CETP activity via VLDL-apoE content, offsetting its antiatherosclerotic benefit in triple-transgenic mice (Arterioscler Thromb Vasc Biol 2013)
Original title: Expression of type IIA secretory phospholipase A2 inhibits cholesteryl ester transfer protein activity in transgenic mice
In humanized apoB/CETP/sPLA2-IIA triple transgenic mice on a Western diet, sPLA2-IIA expression increased atherosclerotic lesion formation compared with apoB/CETP double transgenic mice (P less than 0.01). Although the sPLA2-IIA inhibitor varespladib acid effectively suppressed plasma sPLA2-IIA activity, it surprisingly had no effect on atherosclerosis, because sPLA2-IIA inhibition increased plasma CETP activity, producing a proatherogenic lipoprotein profile that offset the expected benefit. Mechanistically, sPLA2-IIA normally decreases CETP activity by reducing the CETP-acceptor properties of VLDL through lowering its apoE content; restoring VLDL-apoE content via adenoviral gene transfer in sPLA2-IIA transgenic mice reinstated VLDL's CETP-acceptor properties, directly demonstrating that apoE content controls CETP activity in this model.
Original abstract
Objective: High circulating levels of group IIA secretory phospholipase A2 (sPLA2-IIA) activity and mass are independent cardiovascular risk factors. Therefore, inhibition of sPLA2-IIA may be a target for the treatment of atherosclerotic cardiovascular disease. The present study evaluated the effects of sPLA2-IIA inhibition with varespladib acid in a novel mouse model, human apolipoprotein B (apoB)/human cholesteryl ester transfer protein (CETP)/human sPLA2-IIA triple transgenic mice (TTT) fed a Western-type diet.
Approach And Results: sPLA2-IIA expression increased atherosclerotic lesion formation in TTT compared with human apoB/human CETP double transgenic mice (P<0.01). Varespladib acid effectively inhibited plasma sPLA2-IIA activity. Surprisingly, however, administration of varespladib acid to TTT had no impact on atherosclerosis, which could be attributed to a proatherogenic plasma lipoprotein profile that appears in response to sPLA2-IIA inhibition because of increased plasma CETP activity. In the TTT model, sPLA2-IIA decreased CETP activity by reducing the acceptor properties of sPLA2-IIA-modified very low-density lipoproteins specifically because of a significantly lower apoE content. Increasing very low-density lipoprotein-apoE content by means of adenovirus-mediated gene transfer in sPLA2-IIA transgenic mice restored the acceptor properties for CETP.
Conclusions: These data show that in a humanized triple transgenic mouse model with hypercholesterolemia, sPLA2-IIA inhibition increases CETP activity via increasing the very low-density lipoprotein-apoE content, resulting in a proatherogenic lipoprotein profile.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.