Seed Oil of Rosa roxburghii Tratt against Non-Alcoholic Fatty Liver Disease in vivo and in vitro through PPARα/PGC-1α-Mediated Mitochondrial Oxidative Metabolism

Phytomedicine ◽  
2022 ◽  
pp. 153919
Author(s):  
Hai-Yan Ni ◽  
Liang Yu ◽  
Xue-Lian Zhao ◽  
Li–Tao Wang ◽  
Chun–Jian Zhao ◽  
...  
Author(s):  
Lingling Guan ◽  
Lan Guo ◽  
Heng Zhang ◽  
Hao Liu ◽  
Yuan Qiao ◽  
...  

Abstract Background and Purpose: The autophagic degradation of lipid droplets (LDs), termed lipophagy, is the main mechanism contributing to lipid consumption in hepatocytes. The identification of effective and safe natural compounds that target lipophagy to eliminate excess lipids may be a potential therapeutic strategy for non-alcoholic fatty liver disease (NAFLD). Here, we investigated the effects of naringin on NAFLD and the underlying mechanism. Experimental Approach: The role of naringin was investigated in mice fed a high-fat diet (HFD) to induce NAFLD, as well as in AML12 cells and primary hepatocytes stimulated by palmitate (PA). Transcription factor EB (TFEB)-knockdown AML12 cells and hepatocyte-specific TFEB-knockout mice were also used for the mechanism study. In vivo and in vitro studies were conducted using transmission electron microscopy, immunofluorescence techniques and western blot analysis. Key Results: We found that naringin treatment effectively relieved HFD-induced hepatic steatosis in mice and inhibited palmitate (PA)-induced lipid accumulation in hepatocytes. The increased p62 and LC3-II levels observed with excess lipid-support autophagosome accumulation and impaired autophagic flux. Treatment with naringin restored TFEB-mediated lysosomal biogenesis, thereby promoting the fusion of autophagosomes and lysosomes, restoring impaired autophagic flux and further inducing lipophagy. However, the knockdown of TFEB in hepatocytes or the hepatocyte-specific knockout of TFEB in mice abrogated naringin-induced lipophagy, which eliminated the therapeutic effect of naringin on hepatic steatosis. Conclusion and Implications: These results demonstrate that TFEB-mediated lysosomal biogenesis and subsequent lipophagy play essential roles in the ability of naringin to mitigate hepatic steatosis and suggest that naringin is a promising drug for treating or relieving NAFLD.


2018 ◽  
Vol 9 (12) ◽  
pp. 6298-6306 ◽  
Author(s):  
Juanjuan Zhu ◽  
Mingyu Zhou ◽  
Xueke Zhao ◽  
Mao Mu ◽  
Mingliang Cheng

Blueberry, combined with probiotics, improves non-alcoholic fatty liver disease bothin vivoandin vitroby IL-22.


Author(s):  
Charlotte J. Green ◽  
Siôn A. Parry ◽  
Pippa J. Gunn ◽  
Carlo D.L. Ceresa ◽  
Fredrik Rosqvist ◽  
...  

AbstractThe prevalence of non-alcoholic fatty liver disease (NAFLD) is increasing. Determining the pathogenesis and pathophysiology of human NAFLD will allow for evidence-based prevention strategies, and more targeted mechanistic investigations. Various in vivo, ex situ and in vitro models may be utilised to study NAFLD; but all come with their own specific caveats. Here, we review the human-based models and discuss their advantages and limitations in regards to studying the development and progression of NAFLD. Overall, in vivo whole-body human studies are advantageous in that they allow for investigation within the physiological setting, however, limited accessibility to the liver makes direct investigations challenging. Non-invasive imaging techniques are able to somewhat overcome this challenge, whilst the use of stable-isotope tracers enables mechanistic insight to be obtained. Recent technological advances (i.e. normothermic machine perfusion) have opened new opportunities to investigate whole-organ metabolism, thus ex situ livers can be investigated directly. Therefore, investigations that cannot be performed in vivo in humans have the potential to be undertaken. In vitro models offer the ability to perform investigations at a cellular level, aiding in elucidating the molecular mechanisms of NAFLD. However, a number of current models do not closely resemble the human condition and work is ongoing to optimise culturing parameters in order to recapitulate this. In summary, no single model currently provides insight into the development, pathophysiology and progression across the NAFLD spectrum, each experimental model has limitations, which need to be taken into consideration to ensure appropriate conclusions and extrapolation of findings are made.


2020 ◽  
Vol 10 (1) ◽  
pp. 36
Author(s):  
Pierre-Antoine Soret ◽  
Julie Magusto ◽  
Chantal Housset ◽  
Jérémie Gautheron

Non-alcoholic fatty liver disease (NAFLD), including non-alcoholic fatty liver (NAFL) and non-alcoholic steatohepatitis (NASH), represents the hepatic manifestation of obesity and metabolic syndrome. Due to the spread of the obesity epidemic, NAFLD is becoming the most common chronic liver disease and one of the principal indications for liver transplantation. However, no pharmacological treatment is currently approved to prevent the outbreak of NASH, which leads to fibrosis and cirrhosis. Preclinical research is required to improve our knowledge of NAFLD physiopathology and to identify new therapeutic targets. In the present review, we summarize advances in NAFLD preclinical models from cellular models, including new bioengineered platforms, to in vivo models, with a particular focus on genetic and dietary mouse models. We aim to discuss the advantages and limits of these different models.


2021 ◽  
Author(s):  
Venkateish V. Palanisamy ◽  
Nivya Vijayan ◽  
Vani Vijay ◽  
Baskaran Vallikannan ◽  
Madan Kumar Perumal

Non-alcoholic fatty liver disease (NAFLD) is increasingly evolving and a critical public health concern, raising the likelihood of liver cirrhosis, type 2 diabetes and cardiac problems. Existing epidemics of obesity and sedentary life style have lead to NAFLD’s elevated prevalence. In recent years there is profound change in the diet pattern, particularly the hypercaloric fat and carbohydrates for preventing or treating chronic liver disorders such as NASH and NAFLD. Functional and nutritional foods have contributed significantly to NAFLDimprovement and management. The justification for exploring functional foods as anti-NAFLD candidates for the chronic liver disease prevention is derived knowledge from in vitro and in vivo models. The findings from the in vitro and in vivo studies confirmed that these compounds are healthy, efficient, reversible inhibitors, when sufficiently consumed over a lifetime without severe toxicity, suitable for clinical trials and potentially becoming low-cost medication.


Cells ◽  
2019 ◽  
Vol 9 (1) ◽  
pp. 28 ◽  
Author(s):  
Beatrice Foglia ◽  
Salvatore Sutti ◽  
Dario Pedicini ◽  
Stefania Cannito ◽  
Claudia Bocca ◽  
...  

Background: Hepatic myofibroblasts (MFs) can originate from hepatic stellate cells, portal fibroblasts, or bone marrow-derived mesenchymal stem cells and can migrate towards the site of injury by aligning with nascent and established fibrotic septa in response to several mediators. Oncostatin M (OSM) is known to orchestrate hypoxia-modulated hepatic processes involving the hypoxia-inducible factor 1 (HIF-1). Methods. In vivo and in vitro experiments were performed to analyze the expression of OSM and OSM-receptor (OSMR) in three murine models of non-alcoholic-fatty liver disease (NAFLD) and -steatohepatitis (NASH) and in human NASH patients as well as the action of OSM on phenotypic responses of human MFs. Results: Hepatic OSM and OSMR levels were overexpressed in three murine NASH models and in NASH patients. OSM stimulates migration in human MFs by involving early intracellular ROS generation and activation of Ras/Erk, JNK1/2, PI3K/Akt as well as STAT1/STAT3 pathways and HIF-1α. OSM-dependent migration relies on a biphasic mechanism requiring early intracellular generation of reactive oxygen species (ROS) and late HIF1-dependent expression and release of VEGF. Conclusion: OSM is overexpressed in experimental and human progressive NAFLD and can act as a profibrogenic factor by directly stimulating migration of hepatic MFs.


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