Related Experiment Video
Updated: Jul 4, 2026

Optimized Analysis of In Vivo and In Vitro Hepatic Steatosis
Published on: March 11, 2017
PNPLA3(148M) is a gain-of-function mutation that promotes hepatic steatosis by inhibiting ATGL-mediated triglyceride
Yang Wang1, Sen Hong2, Hannah Hudson1
1Department of Molecular Genetics, University of Texas Southwestern Medical Center (UTSW), Dallas, TX 75390-9046, USA.
Background & Aims:
PNPLA3(148M) (patatin-like phospholipase domain-containing protein 3) is the most impactful genetic risk factor for steatotic liver disease. A key unresolved issue is whether PNPLA3(148M) confers a loss- or gain-of-function. Here we test the hypothesis that PNPLA3 causes steatosis by sequestering ABHD5 (α/β hydrolase domain-containing protein 5), the cofactor of ATGL (adipose TG lipase), thus limiting mobilization of hepatic triglyceride (TG).
Methods:
We quantified and compared the physical interactions between ABHD5 and PNPLA3/ATGL in cultured hepatocytes using NanoBiT complementation assays and immunocytochemistry. Recombinant proteins purified from human cells were used to compare TG hydrolytic activities of PNPLA3 and ATGL in the presence or absence of ABHD5. Adenoviruses and adeno-associated viruses were used to express PNPLA3 in liver-specific Atgl-/- mice and to express ABHD5 in livers of Pnpla3M/M mice, respectively.
Results:
ABHD5 interacted preferentially with PNPLA3 relative to ATGL in cultured hepatocytes. No differences were seen in the strength of the interactions between ABHD5 with PNPLA3(WT) and PNPLA3(148M). In contrast to prior findings, we found that PNPLA3, like ATGL, is activated by ABHD5 in in vitro assays using purified proteins. PNPLA3(148M)-associated inhibition of TG hydrolysis required that ATGL be expressed and that PNPLA3 be located on lipid droplets. Finally, overexpression of ABHD5 reversed the hepatic steatosis in Pnpla3M/M mice.
Conclusions:
These findings support the premise that PNPLA3(148M) is a gain-of-function mutation that promotes hepatic steatosis by accumulating on lipid droplets and inhibiting ATGL-mediated lipolysis in an ABHD5-dependent manner. Our results predict that reducing, rather than increasing, PNPLA3 expression will be the best strategy to treat PNPLA3(148M)-associated steatotic liver disease.
Impact And Implications:
Steatotic liver disease (SLD) is a common complex disorder associated with both environmental and genetic risk factors. PNPLA3(148M) is the most impactful genetic risk factor for SLD and yet its pathogenic mechanism remains controversial. Herein, we provide evidence that PNPLA3(148M) promotes triglyceride (TG) accumulation by sequestering ABHD5, thus limiting its availability to activate ATGL. Although the substitution of methionine for isoleucine reduces the TG hydrolase activity of PNPLA3, the loss of enzymatic function is not directly related to the steatotic effect of the variant. It is the resulting accumulation of PNPLA3 on LDs that confers a gain-of-function by interfering with ATGL-mediated TG hydrolysis. These findings have implications for the design of potential PNPLA3(148M)-based therapies. Reducing, rather than increasing, PNPLA3 levels is predicted to reverse steatosis in susceptible individuals.
Insights
The PNPLA3(148M) variant causes fatty liver disease by preventing triglyceride breakdown. This gain-of-function mutation inhibits ATGL lipase activity, suggesting that reducing PNPLA3 levels may treat the condition.
Area of Science:
- Hepatology and Genetic Liver Diseases
- Molecular Mechanisms of Lipid Metabolism
- Genetic Risk Factors for Steatotic Liver Disease
Background:
- Patatin-like phospholipase domain-containing protein 3 (PNPLA3) rs738409(I148M) is the leading genetic risk factor for steatotic liver disease (SLD).
- The precise pathogenic mechanism of PNPLA3(148M), whether loss- or gain-of-function, remains a critical unresolved question.
- This study investigates if PNPLA3 sequesters ABHD5, the cofactor for adipose triglyceride lipase (ATGL), thereby impairing hepatic triglyceride mobilization.
Purpose of the Study:
- To elucidate the functional consequence of the PNPLA3(148M) variant in the pathogenesis of hepatic steatosis.
- To determine the interaction between PNPLA3, ABHD5, and ATGL in regulating hepatic triglyceride hydrolysis.
- To assess the therapeutic potential of modulating PNPLA3 or ABHD5 levels in PNPLA3-associated SLD.
Main Methods:
- Quantification of physical interactions between ABHD5 and PNPLA3/ATGL in cultured hepatocytes using NanoBiT complementation assays and immunocytochemistry.
- In vitro assessment of triglyceride hydrolytic activities of purified PNPLA3 and ATGL in the presence or absence of ABHD5.
- In vivo studies involving liver-specific expression of PNPLA3 in Atgl knockout mice and ABHD5 in Pnpla3 mutant mice using viral vectors.
Main Results:
- ABHD5 demonstrated preferential interaction with PNPLA3 over ATGL in hepatocytes, with no difference between PNPLA3 wild-type and PNPLA3(148M) variants.
- Contrary to previous reports, in vitro assays showed ABHD5 activates both PNPLA3 and ATGL.
- PNPLA3(148M)-mediated inhibition of triglyceride hydrolysis was dependent on ATGL expression and PNPLA3 localization to lipid droplets; ABHD5 overexpression reversed hepatic steatosis in Pnpla3 mutant mice.
Conclusions:
- PNPLA3(148M) represents a gain-of-function mutation promoting hepatic steatosis by accumulating on lipid droplets and inhibiting ATGL-mediated lipolysis in an ABHD5-dependent manner.
- The steatotic effect is linked to PNPLA3's interference with ATGL activity, not solely its reduced intrinsic enzymatic function.
- Reducing PNPLA3 expression, rather than increasing it, is predicted to be a more effective therapeutic strategy for PNPLA3(148M)-associated steatotic liver disease.
More Related Videos
08:35A Model of Experimental Steatosis In Vitro: Hepatocyte Cell Culture in Lipid Overload-Conditioned Medium
Published on: May 18, 2021
08:20Investigating the Protective Effects of Platycodin D on Non-Alcoholic Fatty Liver Disease in a Palmitic Acid-Induced In Vitro Model
Published on: December 2, 2022
Related Concept Videos
Pharmacogenetics of Phase II Enzymes: N-acetyltransferase, Thiopurine S-methyltransferase, UDP-glucuronosyltransferase
Pharmacogenomics: Identification of New Drug Targets