Literature DB >> 23800945

Bofutsushosan, a Japanese herbal (Kampo) medicine, attenuates progression of nonalcoholic steatohepatitis in mice.

Masafumi Ono1, Mitsunari Ogasawara, Akira Hirose, Sachiko Mogami, Nobuhiro Ootake, Kosuke Aritake, Takuma Higuchi, Nobuto Okamoto, Shuji Sakamoto, Masahiro Yamamoto, Yoshihiro Urade, Toshiji Saibara, Jude A Oben.   

Abstract

BACKGROUND: Obesity-induced liver disease (nonalcoholic fatty liver disease, NAFLD) is now the commonest cause of chronic liver disease in affluent nations. There are presently no proven treatments for NAFLD or its more severe stage, nonalcoholic steatohepatitis (NASH). Bofutsushosan (BTS), a Japanese herbal (Kampo) medicine, long used as an anti-obesity medicine in Japan and other Asian countries, has been shown to reduce body weight and improve insulin resistance (IR) and hepatic steatosis. The precise mechanism of action of BTS, however, remains unclear. To evaluate the ability of BTS to prevent the development of NASH, and determine the mediators and pathways involved.
METHODS: C57BL/6 mice were injected intra-peritoneally with gold-thioglucose and fed a high-fat diet (HF) or HF diet admixed with either 2 or 5 % BTS for 12 weeks. The effectiveness of BTS in attenuating features of NASH and the mechanisms through which BTS attenuated NASH were then assayed through an assessment of the anthropometric, radiological, biochemical and histological parameters.
RESULTS: BTS attenuated the progression of NASH through induction of adiponectin and its receptors along with an induction of PPAR-α and PPAR-γ, decreased expression of SREBP-1c, increased hepatic fatty acid oxidation and increased hepatic export of triglycerides. BTS moreover, reduced IR through phosphorylation of the protein kinase, Akt.
CONCLUSIONS: BTS through induction of adiponectin signaling and Akt attenuated development of NASH. Identification of the active entity in BTS should allow development of novel treatments for NASH.

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Year:  2013        PMID: 23800945      PMCID: PMC4048468          DOI: 10.1007/s00535-013-0852-8

Source DB:  PubMed          Journal:  J Gastroenterol        ISSN: 0944-1174            Impact factor:   7.527


Introduction

Obesity-induced liver disease (nonalcoholic fatty liver disease, NAFLD), is now the commonest cause of chronic liver disease in affluent nations. The disease comprises obesity and insulin resistance (IR), with a consequent histopathological spectrum of hepatosteatosis, steatohepatitis (nonalcoholic steatohepatitis, NASH), cirrhosis and possible hepatocellular cancer [1-3]. There are presently no proven treatments for NAFLD or its more severe stage NASH. Bofutsushosan (BTS), a Japanese herbal (Kampo) medicine, long used as an anti-obesity medicine in Japan and other Asian countries [4] has recently been shown in obese Japanese women, to reduce body weight and improve IR [4]. In addition, BTS in experimental animals prevented adipogenesis [5], reduced weight, suppressed visceral and subcutaneous fat accumulation and in parallel decreased plasma glucose, triglycerides (TG), insulin, tumor necrosis factor-alpha [6], and hepatic steatosis induced by high-fat diet feeding [7, 8]. The mechanism of action of BTS however, is not known. Our aim here was to evaluate the ability of BTS to prevent the development of NASH in a recently described murine model involving administration of gold-thioglucose (GTG) and high-fat feeding to induce NASH [9], and to determine the mediators and pathways involved.

Materials and methods

Animal preparation

All procedures conformed to our institutions’ guidelines for the care and use of animals in Kochi Medical School. Four-week-old male C57BL/6 mice were purchased from CLEA Japan Inc. All animals were housed for 12 weeks on a 12 h light/12 h dark cycle, with food and water freely available. Mice were fed high-fat-diet (HF, 640 kcal/100 g, F2HFD2, Oriental Yeast, Tokyo, Japan) or HF admixed with 2 or 5 % BTS (TJ-62, Tsumura & Co., Tokyo, Japan). All groups were fed standard chow (SC) for the first week and then continued on their respective group diets for remainder of the protocol. Three experimental groups were studied: (1) intra-peritoneal administered GTG (2 mg/g of body weight, Sigma-Aldrich, St. Louis, MO, USA) and then SC for 1 week followed by HF diet for 11 weeks (GTG + HF) [9]; (2 and 3) intra-peritoneal GTG, SC for 1 week followed by HF diet admixed with either 2 %BTS or 5 % BTS for further 11 weeks (2 %BTS or 5 % BTS). At the end of the treatment period, all animals were fasted overnight, anesthetized with pentobarbital sodium intraperitoneally (25–50 mg/kg of body weight, Nembutal; Abbott Laboratories, Abbott Park, IL, USA). Blood and liver samples were harvested. Livers were fixed in 10 % formalin, or snap frozen in liquid nitrogen and stored at −80 °C, for later analyses.

CT scan analysis for body fat composition

The extent of adiposity in each experimental group was assayed by CT scanning (La Theta, ALOKA, Tokyo, Japan) under isoflurane (2 % v/v) anesthesia as described previously [9]. Animal were scanned at 2-mm intervals from the diaphragm to the pelvis, and visceral fat and subcutaneous fat volumes quantified with La Theta software (version 1.00) [9-11].

Histopathological examination

Five-micrometer sections of formalin-fixed/paraffin-embedded livers were processed for haematoxylin and eosin (H&E). Oil Red-O staining of intracellular neutral lipids was performed according to the manufacturer’s instructions (Sigma-Aldrich, St. Louis, MO, USA). For estimation of extent of hepatic steatosis, the areas of digital photomicrographs were quantified with a computerized image analysis system (macintosh MacSCOPE version 2.591) as described previously [9, 12]. Degree of oxidative stress was determined by staining and quantification with anti-8-hydroxy-2′-deoxyguanosine (8-OHdG) and anti-4-hydroxy-2-nonenal (4-HNE) as previously described [9, 12, 13].

Glucose tolerance test (GTT), insulin tolerance test (ITT) and QUICKI

At 12 weeks, a glucose tolerance test (GTT) (n = 6) and an insulin tolerance test (ITT) (n = 6) were performed. For GTT, mice were fasted for 18 h, and then intra-peritoneally loaded with 20 % glucose at a dose of 1.0 g/kg body weight. For ITT, mice were fasted for 6 h, and then intra-peritoneally challenged with human insulin at 1.0 U/kg body weight [14, 15]. With both GTT and ITT blood samples from the orbital sinus were taken at times 0, 30, 45, 60 and 120 min and plasma glucose concentrations measured using an automatic blood glucose meter (Glutest; Sanwa Kagaku Kenkyusho Co., Ltd., Nagoya, Japan). Plasma insulin level was measured by Ultrasensitive Mouse Insulin ELISA kit (Mercodia AB, Uppsala, Sweden) according to the manufacture’s protocol. The quantitative insulin sensitivity check index (QUICKI), as a measure of IR, was calculated from the fasting insulin and glucose levels.

Measurement of plasma adiponectin

Plasma adiponectin levels were measured by Mouse Adiponectin/Acrp30 (R&D Systems, Minneapolis, MN, USA) according to the manufacture’s instructions.

Laboratory evaluation

Asparate aminotransferase (AST), alanine aminotransferase (ALT) and TG were measured by an autoanalyzer (BM6010; JEOL Ltd., Tokyo, Japan).

Real-time RT-PCR for quantitative assessment of mRNA expression

Total RNA was extracted using trizol reagent (Life Technologies, Grand Island, NY, USA) according to the manufacture’s protocol. RNA extracts were reverse-transcribed with random hexamers and avian myeloblastosis virus reverse transcriptase using a commercial kit (Takara, Kyoto, Japan). Real time RT-PCR were performed for quantitative assessment of mRNA expression on an ABI Prism 7000 Sequence Detection system (Applied Biosystems, Foster City, CA, USA) according to the manufacturer’s protocol. Probes and primers for TNF-α, PPAR-α, PPAR-γ, MTP, DGAT2, Cyp2E1, adiponectin receptor 1/receptor 2 (AdipoR1/R2) were all purchased from Applied Biosystems. Relative expression of target gene mRNA was normalized to the amount of GAPDH mRNA.

Western blot analysis

For in vivo analysis of phosphorylated Akt and total Akt, mice were fasted for 18 h, injected intra-peritoneally with human insulin (10 U/kg) or control, and sacrificed 4 min later. Livers were snap frozen in liquid nitrogen. Liver total protein was analyzed by western blot with a polyclonal antibody to phosphorylated Akt/Akt and phosphorylated AMPK/AMPK (Cell Signaling Technology, Inc., Danvers, MA, USA) as described [16]. For analysis of SREBP-1c, mice were fasted for 18 h, sacrificed, and livers dissected and homogenized to prepare cell nuclear extracts which were then analyzed by western blotting with anti-SREBP-1c antibody (Santa Cruz Biotechnology, Inc., California, CA, USA) as described [17]. For analysis of 4-HNE, liver total protein was analyzed by western blot with a monoclonal anti-4-HNE antibody (Japan Institute for the Control of Aging, Shizuoka, Japan).

Statistics

Data are shown as mean ± SD. A univariate analysis was conducted with the Mann–Whitney U test to determine significance between groups. Qualitative data were compared using Fisher’s exact test. Statistical significance was accepted at p < 0.05. All analyses were performed using Stat View software (SAS Institute, Cary, NC, USA).

Results

BTS treatment reduces GTG + HF induced obesity and steatohepatitis

Mice administered GTG and then fed a HF diet (GTG + HF), had a comprehensive histological and dysmetabolic phenotype resembling human NASH as reported recently [9]. To then evaluate the effectiveness of BTS in the GTG + HF model, we studied the anthropometric, radiological, biochemical and histological parameters as detailed above in the presence or absence of BTS 2 or 5 % admixed with the HF component of the GTG + HF. Administration of BTS attenuated weight gain in a dose dependent manner (Fig. 1a). Unexpectedly, GTG + HF induced increase in the volume of the visceral and subcutaneous fat were not markedly attenuated by treatment with BTS (Fig. 1b). However, hepatic steatosis on H&E or Oil Red-O staining in 12 weeks was attenuated in a dose dependent manner by BTS treatment (Figs. 2a, 3a). Additionally, BTS treatment also attenuated GTG + HF induced hepatomegaly in a dose-dependent manner (Fig. 2b).
Fig. 1

Effectiveness of BTS for obesity and adiposity. a BTS dose-dependently attenuated weight gain in GTG + HF mice. **p < 0.01, *p < 0.05 vs GTG + HF, n = 6. SC standard chow fed mice, GTG + HF GTG treated and HF fed mice, 2 %BTS 2 %BTS + GTG + HF fed mice, 5 %BTS 5 %BTS + GTG + HF fed mice. b Anthropometry and evaluation of subcutaneous fat and visceral fat volumes by abdominal CT i representative photomicrographs of abdominal CT scan of SC, GTG + HF, 2 %BTS and 5 %BTS mice shown at 12 weeks. Yellow subcutaneous fat, purple visceral fat, blue lean tissue. ii Time course of increase of volume of subcutaneous and visceral fat. Neither subcutaneous fat nor visceral fat was significantly attenuated by treatment with BTS; 2 %BTS, 5 %BTS vs GTG + HF, p = ns, n = 6

Fig. 2

BTS reduces hepatomegaly and hepatic steatosis. a Oil red-O staining and image analysis of livers: Oil red-O staining showed that BTS attenuated hepatic steatosis in GTG + HF fed mice. In addition, image analysis for Oil red-O staining of liver sections confirmed that BTS treatment attenuated hepatic steatosis. Plus symbol p < 0.0001 vs 2 %BTS, double plus symbol p < 0.00001 vs GTG + HF, n = 6. b Liver weight and liver/body weight ratio (liver/body): the increase of both liver weight and liver/body ratio was significantly attenuated by BTS treatment in a dose dependent manner. Triple asterisk p < 0.001, double asterisk p < 0.01 vs GTG + HF, plus symbol p<0.05 vs 2 %BTS, n = 6

Fig. 3

BTS treatment reduces hepatic inflammation and oxidative stress. a The extent of hepatic inflammation was markedly attenuated with BTS: hepatocyte ballooning and Mallory–Denk bodies in the livers of GTG + HF fed mice were absent in BTS treatment livers. Filled arrow ballooning hepatocyte, arrow Mallory–Denk body. b Oxidative stress and TNF-α expression: BTS reduced hepatic oxidative stress as shown by reduction of numbers of nuclei stained positive for 8-OHdG in GTG + HF mice. BTS similarly reduced hepatic TNF-α mRNA expression. Triple asterisk p < 0.001, asterisk p < 0.01 vs GTG + HF, Triple plus symbol p < 0.001 vs 2 %BTS, n = 6

Effectiveness of BTS for obesity and adiposity. a BTS dose-dependently attenuated weight gain in GTG + HF mice. **p < 0.01, *p < 0.05 vs GTG + HF, n = 6. SC standard chow fed mice, GTG + HF GTG treated and HF fed mice, 2 %BTS 2 %BTS + GTG + HF fed mice, 5 %BTS 5 %BTS + GTG + HF fed mice. b Anthropometry and evaluation of subcutaneous fat and visceral fat volumes by abdominal CT i representative photomicrographs of abdominal CT scan of SC, GTG + HF, 2 %BTS and 5 %BTS mice shown at 12 weeks. Yellow subcutaneous fat, purple visceral fat, blue lean tissue. ii Time course of increase of volume of subcutaneous and visceral fat. Neither subcutaneous fat nor visceral fat was significantly attenuated by treatment with BTS; 2 %BTS, 5 %BTS vs GTG + HF, p = ns, n = 6 BTS reduces hepatomegaly and hepatic steatosis. a Oil red-O staining and image analysis of livers: Oil red-O staining showed that BTS attenuated hepatic steatosis in GTG + HF fed mice. In addition, image analysis for Oil red-O staining of liver sections confirmed that BTS treatment attenuated hepatic steatosis. Plus symbol p < 0.0001 vs 2 %BTS, double plus symbol p < 0.00001 vs GTG + HF, n = 6. b Liver weight and liver/body weight ratio (liver/body): the increase of both liver weight and liver/body ratio was significantly attenuated by BTS treatment in a dose dependent manner. Triple asterisk p < 0.001, double asterisk p < 0.01 vs GTG + HF, plus symbol p<0.05 vs 2 %BTS, n = 6 BTS treatment reduces hepatic inflammation and oxidative stress. a The extent of hepatic inflammation was markedly attenuated with BTS: hepatocyte ballooning and Mallory–Denk bodies in the livers of GTG + HF fed mice were absent in BTS treatment livers. Filled arrow ballooning hepatocyte, arrow Mallory–Denk body. b Oxidative stress and TNF-α expression: BTS reduced hepatic oxidative stress as shown by reduction of numbers of nuclei stained positive for 8-OHdG in GTG + HF mice. BTS similarly reduced hepatic TNF-α mRNA expression. Triple asterisk p < 0.001, asterisk p < 0.01 vs GTG + HF, Triple plus symbol p < 0.001 vs 2 %BTS, n = 6 GTG + HF mice livers showed steatohepatitis with marked steatosis and inflammation, hepatocyte ballooning and Mallory–Denk bodies as described previously (Fig. 3a) [9]. BTS treatment attenuated hepatic steatosis and hepatic inflammation (Fig. 3a), and inhibited hepatocyte ballooning and Mallory–Denk bodies. In parallel, oxidative stress makers, 8-OHdG (Fig. 3b) and 4-HNE (supplemental figure), were remarkably reduced by BTS, as was the expression of TNF-α (Fig. 3b). BTS treatment moreover, attenuated GTG + HF induced elevation of transaminases (Table 1).
Table 1

Physiological and biochemical analyses in mice treated with BTS

SC (n = 6)GTG + HF (n = 6)2 %BTS (n = 6)5 %BTS (n = 6)
AST (U/L)86 ± 11310 ± 114271 ± 27170 ± 46*
ALT (U/L)31 ± 9514 ± 170433 ± 37299 ± 133*
TG (mg/dL)36 ± 737 ± 1352 ± 11*49 ± 8

Serum ALT and AST levels were significantly reduced in mice treated with GTG + HF + 5 % BTS compared to the control GTG + HF group, *p < 0.05. There was no change in serum TG level between the GTG + HF + 5 % BTS and GTG + HF groups although TG was elevated by 2 %BTS compared to GTG + HF (*p < 0.05)

* p < 0.05 vs GTG + HF, n = 6

Physiological and biochemical analyses in mice treated with BTS Serum ALT and AST levels were significantly reduced in mice treated with GTG + HF + 5 % BTS compared to the control GTG + HF group, *p < 0.05. There was no change in serum TG level between the GTG + HF + 5 % BTS and GTG + HF groups although TG was elevated by 2 %BTS compared to GTG + HF (*p < 0.05) * p < 0.05 vs GTG + HF, n = 6

BTS inhibition of hepatic lipid metabolism occurs through induction of adiponectin signaling

We examined plasma adiponectin levels and liver expression of the adiponectin receptors (AdipoR1 and AdipoR2), an important anti-inflammatory cytokine and receptors [18-20], because both plasma adiponectin levels and liver expression of the adiponectin receptors were decreased in GTG + HF mice as described previously [9]. Plasma adiponectin level and hepatic expression of AdipoR1, R2 were significantly enhanced by BTS (Fig. 4a). We next investigated the pathways of suppression of hepatic lipid metabolism by adiponectin in the presence of BTS. The expression of SREBP-1c was decreased dose dependently by BTS (Fig. 4b). The phosphorylation of AMPK (P-AMPK/AMPK) was here increased by BTS treatment (Fig. 4c) in parallel with activation of AdipoR1 signaling (Fig. 4a). In addition, expression of PPAR-γ, an activator of AMPK, was increased by BTS treatment (Fig. 4d).
Fig. 4

BTS attenuates hepatosteatosis through activation of adiponectin. a Plasma adiponectin and expression of adiponectin receptors 1 (AdipoR1) and 2 (AdipoR2): plasma adiponectin levels and hepatic mRNA expression of AdipoR1 and AdipoR2 were dose dependently increased by BTS. Asterisk p < 0.05, triple asterisk p < 0.001 vs GTG + HF, n = 6. b–d AdioR1 signaling and target genes expression: BTS induced AdipoR1 signaling suppressed nuclear expression of SREBP-1c (n = 4) through phosphorylated AMPK (n = 4). Expression of PPAR-γ mRNA was also increased by BTS treatment (n = 6). Asterisk p < 0.05, double asterisk p < 0.01 vs GTG + HF. e–g Expression of PPAR-α and its target genes: Expression of PPAR-α mRNA was increase by BTS (n = 6). Expression of MCAD (n = 6) and CYP2E1 (n = 6), PPAR-α target genes, was similarly increased by BTS. Asterisk p < 0.05, double asterisk p < 0.01, triple asterisk p < 0.001 vs GTG + HF. h, i BTS promotes hepatic lipid export: MRNA expression of MTP (n = 6) and DGAT2 (n = 6) was increased by treatment with BTS. Asterisk p < 0.05 vs GTG + HF

BTS attenuates hepatosteatosis through activation of adiponectin. a Plasma adiponectin and expression of adiponectin receptors 1 (AdipoR1) and 2 (AdipoR2): plasma adiponectin levels and hepatic mRNA expression of AdipoR1 and AdipoR2 were dose dependently increased by BTS. Asterisk p < 0.05, triple asterisk p < 0.001 vs GTG + HF, n = 6. b–d AdioR1 signaling and target genes expression: BTS induced AdipoR1 signaling suppressed nuclear expression of SREBP-1c (n = 4) through phosphorylated AMPK (n = 4). Expression of PPAR-γ mRNA was also increased by BTS treatment (n = 6). Asterisk p < 0.05, double asterisk p < 0.01 vs GTG + HF. e–g Expression of PPAR-α and its target genes: Expression of PPAR-α mRNA was increase by BTS (n = 6). Expression of MCAD (n = 6) and CYP2E1 (n = 6), PPAR-α target genes, was similarly increased by BTS. Asterisk p < 0.05, double asterisk p < 0.01, triple asterisk p < 0.001 vs GTG + HF. h, i BTS promotes hepatic lipid export: MRNA expression of MTP (n = 6) and DGAT2 (n = 6) was increased by treatment with BTS. Asterisk p < 0.05 vs GTG + HF

Attenuation of hepatic steatosis with BTS treatment involves activation of fatty acid oxidation

Additionally, the expression of PPAR-α and its target genes, MCAD, involved in mitochondrial β-oxidation and CYP2E-1 involved in microsomal ω-oxidation [21, 22] were increased by treatment with BTS (Fig. 4e–g).

BTS promotes hepatic lipid export

We next determined if enhanced secretion of TG from the liver could contribute to the attenuation of hepatic steatosis by BTS treatment. The expression of microsomal triglyceride transfer protein (MTP) known to play a central role in lipoprotein assembly [23] was increased with BTS treatment (Fig. 4h). Interestingly, expression of DGAT2 reported to be involved in the conversion of free fatty acids into TG in the liver [24] was also increased in the BTS treated groups (Fig. 4i).

BTS reduces glucose intolerance and insulin resistance through induction of Akt

Since IR is regarded as a central pathogenic feature of NAFLD [25], we now investigated the effect of BTS treatment on IR. Fasting plasma glucose and insulin levels were markedly reduced in a dose dependent manner by BTS treatment, and QUICKI as an index of IR was also increased by BTS (Fig. 5a). We next evaluated the attenuation of glucose intolerance and IR using the GTT and the ITT in the presence of BTS. GTT revealed that treatment with BTS remarkably attenuated severe glucose intolerance induced by GTG + HF, and ITT showed that treatment with BTS attenuated IR induced by GTG + HF (Fig. 5b). The reduction of IR by BTS involved its promotion of the phosphorylation of Akt (Fig. 5c) an important factor in glucose metabolism [26].
Fig. 5

Glucose intolerance and insulin resistance (IR) were attenuated by BTS. a Fasting plasma glucose, insulin levels and QUICKI: increased level of fasted plasma insulin and glucose were decreased, and QUICKI increased by treatment with 5 %BTS, and ITT confirmed severe IR double asterisk p < 0.01, triple asterisk p < 0.001 vs GTG + HF, double plus symbol p < 0.01 vs 2 %BTS, n = 6. b Glucose tolerance test (GTT) and insulin tolerance test (ITT): GTT revealed severe glucose intolerance was attenuated, and ITT confirmed IR was attenuated by 5 %BTS. Asterisk p < 0.05 vs GTG + HF, n = 6. c Involvement of Akt in BTS reduction of IR: phosphorylation of Akt was involved in the reduction of IR by BTS treatment as reflected by increased phosphorylation of Akt in the livers of BTS treated mice upon insulin administration. Asterisk p < 0.05, double asterisk p < 0.01 vs GTG + HF, n = 4

Glucose intolerance and insulin resistance (IR) were attenuated by BTS. a Fasting plasma glucose, insulin levels and QUICKI: increased level of fasted plasma insulin and glucose were decreased, and QUICKI increased by treatment with 5 %BTS, and ITT confirmed severe IR double asterisk p < 0.01, triple asterisk p < 0.001 vs GTG + HF, double plus symbol p < 0.01 vs 2 %BTS, n = 6. b Glucose tolerance test (GTT) and insulin tolerance test (ITT): GTT revealed severe glucose intolerance was attenuated, and ITT confirmed IR was attenuated by 5 %BTS. Asterisk p < 0.05 vs GTG + HF, n = 6. c Involvement of Akt in BTS reduction of IR: phosphorylation of Akt was involved in the reduction of IR by BTS treatment as reflected by increased phosphorylation of Akt in the livers of BTS treated mice upon insulin administration. Asterisk p < 0.05, double asterisk p < 0.01 vs GTG + HF, n = 4

Discussion

The public health importance of NAFLD [1, 2] and the unavailability of proven and effective therapies drive the search for a greater understanding of its pathophysiology and novel therapeutic pathways. In this study, we have clarified the mechanisms through which BTS attenuates NASH based on a novel animal model of NASH [9]. BTS attenuated the GTG + HF induced increases in body and liver weight, serum transaminases, hepatic steatosis, degree of oxidative stress and TNF-α expression (Figs. 1, 2, 3; Table 1) without reducing intake volume of diets (data not shown). However, in contrast to previous reports [6], we did not demonstrate statistically remarkable reduction by BTS, in GTG + HF mice, of induced increases in visceral or subcutaneous fat (Fig. 1b), perhaps because the volume of these fats in our mice were much larger than previously reported [6]. Additionally, the reduction of body weight might mainly be through the reduction of fat accumulation in muscles, since it has been reported that the degree of hepatosteatosis is well correlated with the degree of fat accumulation in muscles [27]. To examine the mechanisms though which BTS attenuated hepatic steatosis, we firstly evaluated the effect of BTS on adiponectin, thought to be a central adipokine in the pathogenesis for NASH [18, 19]. The expression of AdipoR1 and AdipoR2 in the livers was increased in a dose dependent manner by BTS (Fig. 4a), indicating that BTS could have PPAR-α agonist like effect, since PPAR-α agonists are known to increase expression of AdipoR1 and AdipoR2 [28]. Interestingly, plasma adiponectin levels were also remarkably induced by BTS treatment (Fig. 4a) even though neither visceral nor subcutaneous fat were decreased. These data indicated that BTS through putative PPAR-γ effects may also function to increase serum adiponectin, since PPAR-γ agonists have been shown to positively regulate serum adiponectin independently of adipose tissue volume regulation [28, 29]. To now study the mechanisms of inhibition of liver lipid metabolism by BTS in the presence of the activated adiponectin signaling pathway, AdipoR1 signaling pathways and their target genes were examined. It is known that activated AdipoR1 signaling decreases expression of SREBP-1c [30], a key regulator of hepatic fatty acid synthesis [31, 32], through AMPK activation [33]. Here, we showed increased phosphorylation of AMPK by BTS in parallel with activated AdipoR1 signaling (Fig. 4c). Additionally, the phosphorylation of AMPK could also have been induced by activated PPAR-γ, in BTS treated mice, since as above BTS could also have PPAR-γ agonist like actions. Moreover, in the livers of mice treated with BTS, there was a reduced expression of SREBP-1c (Fig. 4b) in parallel with activated adiponectin signaling and phosphorylation of AMPK. TNF-α expression is also known to regulate expression of SREBP-1c through activation of AMPK [31, 34]. Therefore, the suppression of TNF-α expression by BTS, as observed here, could also have contributed to the decreased SREBP-1c expression. Taken together, therefore, the data here suggest that activation of AdipoR1 signaling and consequent suppression of SREBP-1c may be central mechanisms through which BTS attenuates hepatic steatosis. BTS may also have enhanced hepatic fatty acid oxidation via AdipoR2 signaling, known to increase the expression of PPAR-α [24] and its fatty acid oxidation related target genes. Here, the expression of PPAR-α (Fig. 4e) and its target gene MCAD (Fig. 4f) and CYP2E1 (Fig. 4g), were increased by treatment with BTS. Therefore, activated fatty acids oxidation could also contribute to the attenuation of hepatic steatosis by BTS. Activation of fatty acid oxidation would be expected to increase production of reactive oxygen species (ROS) in the liver [35, 36]. BTS treatment here reduced ROS levels, probably contributing to the improved hepatic inflammation observed with BTS. Additionally, MTP expression was confirmed here to be increased by treatment with BTS, possibly contributing to attenuation of steatosis by increasing hepatic export of TG (Fig. 4h). Interestingly, expression of DGAT2 was also increased by BTS treatment (Fig. 4i). Reduced hepatic accumulation of TG in BTS-treated livers may therefore have been due to increased MTP expression and increased expression of DGAT2 to reduce the content of FFA. Furthermore, increased expression of DGAT2 might also have contributed to the reduction of ROS production by reducing hepatic FFA availability. We next also investigated the effect of BTS on IR. GTG + HF induced elevation of fasting plasma glucose and plasma insulin were markedly reduced by BTS treatment, whilst QUICKI was markedly increased by BTS (Fig. 5a). In addition, ITT also was attenuated by BTS treatment. Furthermore, GTT showed that BTS remarkably attenuated severe glucose intolerance induced by GTG + HF (Fig. 5b). Phosphorylation of hepatic Akt after administration of insulin was reduced by treatment of BTS (Fig. 5c). The mechanisms through which BTS improves insulin sensitivity may involve Akt phosphorylation triggered through as yet uncertain mechanisms, but possibly involving induction of adiponectin signaling by BTS, since adiponectin is known to be involved in the suppression of hepatic gluconeogenesis and insulin secretion by activating AMPK [37]. In conclusion, therefore, BTS—a Japanese anti-obesity herbal (Kampo) medicine—is an effective preventive agent against the development of NASH. The challenge is now to identify the active components of BTS to allow its refinement and the rational design of more potent analogues. Below is the link to the electronic supplementary material. Supplementary Figure Oxidative stress, 4-HNE, was reduced by BTS. BTS reduced hepatic oxidative stress as shown by reduction of numbers of nuclei stained positive (a) and by western blot for 4-HNE (b) in GTG+HF mice. Asterisk p < 0.05 vs GTG+HF, n = 4 (TIFF 889 kb)
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Authors:  Mitsunari Ogasawara; Akira Hirose; Masafumi Ono; Kosuke Aritake; Yasuko Nozaki; Masaya Takahashi; Nobuto Okamoto; Shuji Sakamoto; Shinji Iwasaki; Taketoshi Asanuma; Taketoshi Taniguchi; Yoshihiro Urade; Saburo Onishi; Toshiji Saibara; Jude A Oben
Journal:  Liver Int       Date:  2011-01-19       Impact factor: 5.828

6.  Sustained peripheral expression of transgene adiponectin offsets the development of diet-induced obesity in rats.

Authors:  Stanislav Shklyaev; George Aslanidi; Michael Tennant; Victor Prima; Eric Kohlbrenner; Vadim Kroutov; Martha Campbell-Thompson; James Crawford; Eugene W Shek; Philip J Scarpace; Sergei Zolotukhin
Journal:  Proc Natl Acad Sci U S A       Date:  2003-11-14       Impact factor: 11.205

7.  Increased beta -oxidation but no insulin resistance or glucose intolerance in mice lacking adiponectin.

Authors:  Ke Ma; Agatha Cabrero; Pradip K Saha; Hideto Kojima; Lan Li; Benny Hung-Junn Chang; Antoni Paul; Lawrence Chan
Journal:  J Biol Chem       Date:  2002-07-31       Impact factor: 5.157

Review 8.  Are oxidative stress-activated signaling pathways mediators of insulin resistance and beta-cell dysfunction?

Authors:  Joseph L Evans; Ira D Goldfine; Betty A Maddux; Gerold M Grodsky
Journal:  Diabetes       Date:  2003-01       Impact factor: 9.461

9.  Adiponectin stimulates glucose utilization and fatty-acid oxidation by activating AMP-activated protein kinase.

Authors:  T Yamauchi; J Kamon; Y Minokoshi; Y Ito; H Waki; S Uchida; S Yamashita; M Noda; S Kita; K Ueki; K Eto; Y Akanuma; P Froguel; F Foufelle; P Ferre; D Carling; S Kimura; R Nagai; B B Kahn; T Kadowaki
Journal:  Nat Med       Date:  2002-10-07       Impact factor: 53.440

10.  Impaired multimerization of human adiponectin mutants associated with diabetes. Molecular structure and multimer formation of adiponectin.

Authors:  Hironori Waki; Toshimasa Yamauchi; Junji Kamon; Yusuke Ito; Shoko Uchida; Shunbun Kita; Kazuo Hara; Yusuke Hada; Francis Vasseur; Philippe Froguel; Satoshi Kimura; Ryozo Nagai; Takashi Kadowaki
Journal:  J Biol Chem       Date:  2003-07-23       Impact factor: 5.157

View more
  8 in total

1.  Effects of kampo formulas on the progression of hypercholesterolemia and Fatty liver induced by high-cholesterol diet in rats.

Authors:  Weibin Qian; Junichi Hasegawa; Satoshi Tsuno; Yusuke Endo; Akiko Matsuda; Norimasa Miura
Journal:  Yonago Acta Med       Date:  2014-12-26       Impact factor: 1.641

Review 2.  Current pharmacological therapies for nonalcoholic fatty liver disease/nonalcoholic steatohepatitis.

Authors:  Yoshihisa Takahashi; Keiichiro Sugimoto; Hiroshi Inui; Toshio Fukusato
Journal:  World J Gastroenterol       Date:  2015-04-07       Impact factor: 5.742

3.  A case study of bofutsushosan-induced pulmonary injury in a patient: Case report.

Authors:  Kunihiko Miyazaki; Hiroaki Satoh; Hiroko Watanabe; Toshihiro Shiozawa; Tomohiro Tamura; Mio Kawaguchi; Nobuyuki Hizawa
Journal:  Biomed Rep       Date:  2016-10-19

Review 4.  Nonalcoholic Fatty liver disease: pathogenesis and therapeutics from a mitochondria-centric perspective.

Authors:  Aaron M Gusdon; Ke-Xiu Song; Shen Qu
Journal:  Oxid Med Cell Longev       Date:  2014-10-13       Impact factor: 6.543

Review 5.  Preclinical Models for Investigation of Herbal Medicines in Liver Diseases: Update and Perspective.

Authors:  Hor-Yue Tan; Serban San-Marina; Ning Wang; Ming Hong; Sha Li; Lei Li; Fan Cheung; Xiao-Yan Wen; Yibin Feng
Journal:  Evid Based Complement Alternat Med       Date:  2016-01-28       Impact factor: 2.629

6.  Increase of Akkermansia muciniphila by a Diet Containing Japanese Traditional Medicine Bofutsushosan in a Mouse Model of Non-Alcoholic Fatty Liver Disease.

Authors:  Mitsue Nishiyama; Nobuhiro Ohtake; Atsushi Kaneko; Naoko Tsuchiya; Sachiko Imamura; Seiichi Iizuka; Shiori Ishizawa; Akinori Nishi; Masahiro Yamamoto; Akinobu Taketomi; Toru Kono
Journal:  Nutrients       Date:  2020-03-20       Impact factor: 5.717

7.  Bofutsushosan improves gut barrier function with a bloom of Akkermansia muciniphila and improves glucose metabolism in mice with diet-induced obesity.

Authors:  Shiho Fujisaka; Isao Usui; Allah Nawaz; Yoshiko Igarashi; Keisuke Okabe; Yukihiro Furusawa; Shiro Watanabe; Seiji Yamamoto; Masakiyo Sasahara; Yoshiyuki Watanabe; Yoshinori Nagai; Kunimasa Yagi; Takashi Nakagawa; Kazuyuki Tobe
Journal:  Sci Rep       Date:  2020-03-26       Impact factor: 4.379

8.  Identification of baicalin from Bofutsushosan and Daisaikoto as a potent inducer of glucose uptake and modulator of insulin signaling-associated pathways.

Authors:  Yu-Ting Kuo; Chih-Chan Lin; Hsiao-Tzu Kuo; Jui-Hsiang Hung; Ching-Hsuan Liu; Alagie Jassey; Ming-Hong Yen; Shu-Jing Wu; Liang-Tzung Lin
Journal:  J Food Drug Anal       Date:  2018-08-14       Impact factor: 6.157

  8 in total

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