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Updated: Jan 17, 2026

Assessing Whole-Body Lipid-Handling Capacity in Mice
Published on: November 24, 2020
ABCG5/ABCG8-independent mechanisms fail to maintain sterol balance in mice fed a high-cholesterol diet
Garrett B Anspach1, Rupinder Kaur2, Isha Chauhan2
1Saha Cardiovascular Research Center, College of Medicine, University of Kentucky, Lexington, KY, USA; Department of Physiology, College of Medicine, University of Kentucky, Lexington, KY, USA.
Abstract:
The ABCG5/ABCG8 (G5G8) sterol transporter opposes the accumulation of dietary xenosterols but is also the primary mediator of biliary cholesterol secretion. In humans and in mouse models of disrupted biliary cholesterol secretion, fecal neutral sterols (FNSs) remain constant, indicating the presence of an alternate pathway for cholesterol excretion. Transintestinal cholesterol elimination or excretion (TICE) is thought to compensate for biliary disruptions and G5G8 insufficiency. We sought to measure the compensatory increase in intestinal cholesterol secretion and provide mechanistic insight for how TICE maintains sterol balance in the absence of hepatic G5G8. Differences were not observed in FNSs between control, acute, and chronic liver-specific G5G8-deficient mice (G5G8LKO). Cholesterol content did not differ at any point along the intestinal tract between genotypes. We also observed no change in the expression of apical or basolateral sterol transporters in the proximal small intestine. We then measured biliary and intestinal cholesterol secretion rates using cholesterol-free and cholesterol-enriched bile acid micelles as acceptors. While biliary cholesterol secretion was reduced, the intrinsic rate of intestinal cholesterol secretion did not differ between genotypes. G5G8LKO and whole-body G5G8-deficient mice were challenged with a cholesterol-containing diet. While control mice upregulate FNS excretion, G5G8-independent mechanisms fail to maintain fecal sterol excretion and oppose the accumulation of cholesterol in liver and plasma. These studies indicate that while G5G8-independent mechanisms can mediate cholesterol excretion, TICE is not upregulated in response to a loss of hepatic G5G8 and is unable to compensate for hepatic or whole-body G5G8 deficiency in response to dietary cholesterol in mice.
Insights
Transintestinal cholesterol elimination (TICE) does not compensate for liver-specific ABCG5/ABCG8 transporter deficiency. This pathway fails to maintain sterol balance, leading to cholesterol accumulation when dietary cholesterol is high.
Area of Science:
- Hepatology
- Molecular Biology
- Gastroenterology
Background:
- ABCG5/ABCG8 (G5G8) is crucial for biliary cholesterol secretion and xenosterol excretion.
- Disrupted G5G8 function suggests an alternative cholesterol excretion pathway, Transintestinal Cholesterol Elimination (TICE).
Purpose of the Study:
- To quantify compensatory intestinal cholesterol secretion in G5G8 deficiency.
- To elucidate the mechanistic role of TICE in maintaining sterol balance.
Main Methods:
- Comparison of fecal neutral sterols (FNSs) in control and liver-specific G5G8-deficient (G5G8LKO) mice.
- Analysis of intestinal cholesterol content and sterol transporter expression.
- Measurement of biliary and intestinal cholesterol secretion rates.
- Dietary cholesterol challenge in G5G8LKO and whole-body G5G8-deficient mice.
Main Results:
- No significant differences in FNSs or intestinal cholesterol content were observed between control and G5G8LKO mice.
- Intestinal cholesterol secretion rates remained unchanged despite reduced biliary secretion in G5G8LKO mice.
- G5G8-independent mechanisms failed to maintain fecal sterol excretion and prevent cholesterol accumulation under dietary cholesterol challenge.
Conclusions:
- TICE does not upregulate in response to hepatic G5G8 loss.
- TICE is insufficient to compensate for hepatic or whole-body G5G8 deficiency, especially with high dietary cholesterol.
- Alternative cholesterol excretion pathways are limited in their ability to maintain sterol homeostasis when G5G8 is compromised.
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