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Ong, K. L.

Publications and source records attributed to Ong, K. L..

2 recordsLinked to original sources

ApoA-I Protects Pancreatic β-cells from Cholesterol-induced Mitochondrial Damage and Restores their Ability to Secrete Insulin

Objective: High cholesterol levels in pancreatic {beta}-cells cause oxidative stress and decrease insulin secretion. {beta}-cells can internalize apolipoprotein (apo) A-I, which increases insulin secretion. This study asks whether internalization of apoA-I improves {beta}-cell insulin secretion by reducing oxidative stress. Approach: Ins-1E cells were cholesterol-loaded by incubation with cholesterol-methyl-{beta}-cyclodextrin. Insulin secretion in the presence of 2.8 or 25 mM glucose was quantified by radioimmunoassay. Internalization of fluorescently labelled apoA-I by {beta}-cells was monitored by flow cytometry. The effects of apoA-I internalization on {beta}-cell gene expression was evaluated by RNA sequencing. ApoA-I binding partners on the {beta}-cell surface were identified by mass spectrometry. Mitochondrial oxidative stress was quantified in {beta}-cells and isolated islets with MitoSOX and confocal microscopy. Results: An F1-ATPase {beta}-subunit on the {beta}-cell surface was identified as the main apoA-I binding partner. {beta}-cell internalization of apoA-I was time-, concentration-, temperature-, cholesterol- and F1-ATPase {beta}-subunit-dependent. {beta}-cells with internalized apoA-I (apoA-I+ cells) had higher cholesterol and cell surface F1-ATPase {beta}-subunit levels than {beta}-cells without internalized apoA-I (apoA-I- cells). The internalized apoA-I co-localized with mitochondria and was associated with reduced oxidative stress and increased insulin secretion. The ATPase inhibitory factor 1, IF1, attenuated apoA-I internalization and increased oxidative stress in Ins-1E {beta}-cells and isolated mouse islets. Differentially expressed genes in apoA-I+ and apoA-I- Ins-1E cells were related to protein synthesis, the unfolded protein response, insulin secretion and mitochondrial function. Conclusions: These results establish that {beta}-cells are functionally heterogeneous and apoA-I restores insulin secretion in {beta}-cells with elevated cholesterol levels by improving mitochondrial redox balance.

cell biology↗

The association of plasma lipids with white blood cell counts: Results from the Multi-Ethnic Study of Atherosclerosis

Background and aimsPrevious studies have demonstrated that elevated cholesterol results in increased white blood cell counts in mouse models. However, there is insufficient evidence to support this in humans. We, therefore, investigated the relationship of plasma lipids with white blood cell counts (basophils, eosinophils, monocytes, neutrophils and lymphocytes) in the Multi-Ethnic Study of Atherosclerosis (MESA). MethodsThe analysis included 2873 MESA participants at visit 5 with a complete white blood count and differential analysis. The cross-sectional association of total cholesterol, LDL cholesterol, HDL cholesterol and triglyceride levels with different white blood cell counts was analyzed by multivariable linear regression. ResultsAfter adjusting sociodemographic and confounding factors including red blood cells counts, platelet counts, use of lipid-lowering medication, CVD risk factors and other lipid measures, and multiple testing correction, a 1-SD increment in total cholesterol and LDL cholesterol was associated with 2.8% and 2.3% (both p<0.001) lower total white blood cell counts. The same increment in ln-transformed triglyceride levels was associated with 2.3% higher total white blood cell counts, 2.9% higher lymphocyte counts and 2.7% lower monocyte counts (all p<0.001). HDL cholesterol was not associated with any white blood cell counts. Similar results were obtained after excluding participants taking lipid-lowering medication. ConclusionsWhilst significant associations were observed, the heterogenous and modest nature of the relationships between plasma lipid levels and white blood cell populations make it hard to support the hypothesis that lipids are in the causal pathway for leukogenesis.

epidemiology↗