cetpinhibition.org

Mechanisms

Alternating light-dark cycles mimicking shift work roughly double atherosclerotic lesion size and severity in CETP-humanised mice (J Pineal Res 2019)

Original title: Disruption of circadian rhythm by alternating light-dark cycles aggravates atherosclerosis development in APOE*3-Leiden.CETP mice

J Pineal Res · · 6

Schilperoort M, van den Berg R, Bosmans LA, van Os BW, Dollé MET, Smits NAM, Guichelaar T, van Baarle D, Koemans L, Berbée JFP, Deboer T, Meijer JH et al.

Shift work has been linked to cardiovascular disease in humans, but causality and mechanisms were unclear. Hyperlipidemic APOE*3-Leiden.CETP mice, a humanised model expressing human cholesteryl ester transfer protein, were exposed for 15 weeks to regular light-dark cycles, weekly 6-hour phase advances or delays, or weekly alternating light-dark cycles (12-hour shifts) as a shift-work model. Alternating-cycle mice showed a striking, approximately twofold increase in atherosclerotic lesion size and severity, whereas phase advances or delays caused milder disruption with no significant effect on atherosclerosis. Alternating-cycle mice had higher lesion macrophage content without changes in plasma lipids or circulating immune cell numbers, but showed increased markers of inflammation, oxidative stress and chemoattraction in the vessel wall. This is the first study to show circadian disruption by shifting light-dark cycles directly aggravates atherosclerosis.

Read the paper (DOI)PubMed

Original abstract

Disruption of circadian rhythm by means of shift work has been associated with cardiovascular disease in humans. However, causality and underlying mechanisms have not yet been established. In this study, we exposed hyperlipidemic APOE*3-Leiden.CETP mice to either regular light-dark cycles, weekly 6 hours phase advances or delays, or weekly alternating light-dark cycles (12 hours shifts), as a well-established model for shift work. We found that mice exposed to 15 weeks of alternating light-dark cycles displayed a striking increase in atherosclerosis, with an approximately twofold increase in lesion size and severity, while mice exposed to phase advances and delays showed a milder circadian disruption and no significant effect on atherosclerosis development. We observed a higher lesion macrophage content in mice exposed to alternating light-dark cycles without obvious changes in plasma lipids, suggesting involvement of the immune system. Moreover, while no changes in the number or activation status of circulating monocytes and other immune cells were observed, we identified increased markers for inflammation, oxidative stress, and chemoattraction in the vessel wall. Altogether, this is the first study to show that circadian disruption by shifting light-dark cycles directly aggravates atherosclerosis development.

inflammationmechanisms

Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.