| Literature DB >> 35432720 |
Fang Li1,2, Hui Huang3, Yu Zhang4,5, Hongjiang Chen1, Xianrong Zhou1, Yongpeng He6, Xiao Meng7, Xin Zhao1,2.
Abstract
In this experiment, a high-fat diet was used to induce hyperlipidemia in mice to determine the synergistic effect of AX and L. fermentum HFY06 on the prevention of hyperlipidemia and its potential regulatory mechanism. The results of this study showed that after the AX and L. fermentum HFY06 synergistic intervention, the body weight, epididymal fat index, blood lipid level, and liver function indexes of mice were improved. In addition, the synbiotics comprising AX and L. fermentum HFY06 increased the CAT activity in the serum of mice on a high-fat diet, reduced NO and MDA levels, and improved the body's oxidative stress. From the perspective of molecular biology, on the one hand, AX and L. fermentum HFY06 synergistic intervention activated the AMPK pathway to regulate body lipid metabolism; up-regulated the mRNA expressions of CPT-1, PPAR-α, CYP7A1, and HSL; and down-regulated the mRNA expressions of ACC, C/EBPα, and LPL. On the other hand, the synergistic effect of AX and HFY06 enhanced the mRNA expressions of ZO-1, occludin, and claudin-1 in the small intestine of mice, increased the strength of the intestinal barrier, and optimized the composition of the intestinal microbiota. From the above results, it can be concluded that AX and L. fermentum HFY06 have a synergistic effect in improving hyperlipidemia. However, this study was only performed using animal models, and the lipid synthesis and metabolism mechanism are complicated; hence, further clinical studies are needed.Entities:
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Year: 2022 PMID: 35432720 PMCID: PMC9007687 DOI: 10.1155/2022/1068845
Source DB: PubMed Journal: Oxid Med Cell Longev ISSN: 1942-0994 Impact factor: 6.543
Primer sequences used in the quantitative real-time PCR for the liver, epididymal fat, and small intestine tissue gene expression analysis [19].
| Gene names | Primer sequence |
|---|---|
| AMPK | Forward: 5′-GTCAAAGCCGACCCAATGATA-3′ |
| Reverse: 5′-CGTACACGCAAATAATAGGGGTT-3′ | |
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| ACC | Forward: 5′-AGTGATGGTGGCCTGCTCTTG-3′ |
| Reverse: 5′-AGCAGACGGTGAGCGCATTA-3′ | |
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| C/EBP | Forward: 5′-GCGGGAACGCAACAACATC-3′ |
| Reverse: 5′-GTCACTGGTCAACTCCAGCAC-3′ | |
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| PPAR- | Forward: 5′-AGGCCGAGAAGGAGAAGCTGTTG-3′ |
| Reverse: 5′-TGGCCACCTCTTTGCTGTGCTC-3′ | |
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| CPT-1 | Forward:5′-TGGCATCATCACTGGTGTGTT-3′ |
| Reverse: 5′-GTCTAGGGTCCGATTGATCTTTG-3′ | |
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| PPAR- | Forward: 5′-AACATCGAGTGTCGAATATGTGG-3′ |
| Reverse: 5′-CCGAATAGTTCGCCGAAAGAA-3′ | |
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| LPL | Forward: 5′-TTGCCCTAAGGACCCCTGAA-3′ |
| Reverse: 5′-TTGAAGTGGCAGTTAGACACAG-3′ | |
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| HSL | Forward: 5′-GATTTACGCACGATGACACAGT-3′ |
| Reverse: 5′-ACCTGCAAAGACATTAGACAGC-3′ | |
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| CYP7A1 | Forward: 5′-GCTGTGGTAGTGAGCTGTTG-3′ |
| Reverse: 5′-GTTGTCCAAAGGAGGTTCACC-3′ | |
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| Claudin-1 | Forward: 5′-GGGGACAACATCGTGACCG-3′ |
| Reverse: 5′-AGGAGTCGAAGACTTTGCACT-3′ | |
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| Occludin | Forward: 5′-TGAAAGTCCACCTCCTTACAGA-3′ |
| Reverse: 5′-CCGGATAAAAAGAGTACGCTGG-3′ | |
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| ZO-1 | Forward: 5′-GCCGCTAAGAGCACAGCAA-3′ |
| Reverse: 5′-TCCCCACTCTGAAAATGAGGA-3′ | |
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| Forward: 5′-CATGTACGTTGCTATCCAGGC-3′ |
| Reverse: 5′-CTCCTTAATGTCACGCACGAT-3′ | |
Primer sequences used in the quantitative real-time PCR for cecal content gene expression analysis [19].
| Organism names | Primer sequence |
|---|---|
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| Forward:5′-ACTCCTACGGGAGGCAGCAGT-3′ |
| Reverse: 5′-ATTACCGCGGCTGCTGGC-3′ | |
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| Forward: 5′-GCGTGAGTGAAGAAGT-3′ |
| Reverse: 5′-CTACGCTCCCTTTACAC-3′ | |
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| Forward: 5′-ACGCTAGCTACAGGCTTAACA-3′ |
| Reverse: 5′-ACGCTACTTGGCTGGTTCA-3′ | |
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| Forward:5′-CACCGCTACACATGGAG-3′ |
| Reverse: 5′-AGCAGTAGGGAATCTTCCA-3′ | |
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| Forward:5′-TCGCGTCYGGTGTGAAAG-3′ |
| Reverse: 5′-CCACATCCAGCRTCCAC-3′ | |
Figure 1Effect of AX combine L. fermentum HFY06 supplementation on (a) body weight curve; (b) weight gain; (c) epididymal fat weight; and (d) epididymal fat index. AX: high-fat diet + AX (200 mg/kg); HFY06: high-fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg). Data are means ± SD (n =10 per group). a–cMean values with different letters in the same column are significantly different (p < 0.05) according to Duncan's multiple range test.
The levels of TG, TC, LDL-C, and HDL-C in serum of mice.
| Group | Normal | Model | AX | HFY06 | Ax+HFY06 |
|---|---|---|---|---|---|
| TG (mmol/L) | 0.52 ± 0.06a | 0.96 ± 0.06b | 0.57 ± 0.08a | 0.56 ± 0.15a | 0.54 ± 0.07a |
| TC (mmol/L) | 2.29 ± 0.31a | 3.77 ± 0.34c | 2.74 ± 0.39a | 2.83 ± 0.41a | 2.95 ± 0.05a |
| LDL-C (mmol/L) | 0.31 ± 0.10a | 0.76 ± 0.10c | 0.67 ± 0.10c | 0.47 ± 0.11b | 0.45 ± 0.10b |
| HDL-C (mmol/L) | 0.33 ± 0.04b | 0.23 ± 0.04a | 0.29 ± 0.07ab | 0.26 ± 0.03a | 0.30 ± 0.04ab |
Data are means ± SD (n =10 per group). a–cMean values with different letters in the same column are significantly different (p < 0.05) according to Duncan's multiple range test. AX: high-fat diet + AX (200 mg/kg); HFY06: high fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg).
Figure 2Effect of AX combine L. ermentum HFY06 on serum ALT and AST levels in high-fat diet mice. AX: high-fat diet + AX (200 mg/kg); HFY06: high-fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg). Different letters above the values indicate significant differences (p < 0.05). Data are means ± SD (n =10 per group). a–cMean values with different letters in the same column are significantly different (p < 0.05) according to Duncan's multiple range test.
The levels of CAT, SOD, NO, and MDA in serum of mice.
| Group | Normal | Model | AX | HFY06 | Ax+HFY06 |
|---|---|---|---|---|---|
| CAT (U/mL) | 80.92 ± 3.04a | 51.82 ± 3.77b | 53.91 ± 1.97a | 53.96 ± 5.95a | 54.61 ± 3.50a |
| SOD (U/mL) | 45.20 ± 2.58a | 44.58 ± 2.47a | 45.86 ± 4.15a | 45.73 ± 5.88a | 47.90 ± 2.02a |
| NO ( | 7.32 ± 2.56a | 14.43 ± 1.85b | 14.01 ± 1.35b | 9.80 ± 2.11a | 8.64 ± 3.56a |
| MDA (nmol/mL) | 1.10 ± 0.25a | 3.22 ± 0.52d | 2.17 ± 0.97c | 1.99 ± 0.55bc | 1.21 ± 0.16ab |
Data are means ± SD (n =10 per group). a–bMean values with different letters in the same column are significantly different (p < 0.05) according to Duncan's multiple range test. AX: high-fat diet + AX (200 mg/kg); HFY06: high-fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg).
The levels of INF-γ, IL-1β, IL-6, TFN-α, and IL-10 in serum of mice.
| Group | Normal | Model | AX | HFY06 | Ax+HFY06 |
|---|---|---|---|---|---|
| IFN- | 840.44 ± 28.38b | 904.98 ± 31.08c | 791.53 ± 34.08a | 788.75 ± 42.85a | 795.03 ± 25.95a |
| IL-1 | 29.21 ± 1.03ab | 32.02 ± 1.06c | 28.24 ± 1.28a | 30.51 ± 1.53bc | 30.58 ± 1.15bc |
| IL-6 (pg/mL) | 38.02 ± 1.19a | 42.16 ± 2.37b | 38.62 ± 1.16a | 38.81 ± 2.77a | 38.93 ± 2.02a |
| TNF- | 661.26 ± 64.40a | 767.20 ± 31.21c | 707.30 ± 18.60b | 683.91 ± 44.83ab | 649.75 ± 35.38a |
| IL-10 (pg/mL) | 503.23 ± 8.86b | 463.87 ± 19.90a | 467.13 ± 28.70a | 485.86 ± 8.01ab | 485.30 ± 9.07ab |
Data are means ± SD (n =10 per group). a–cMean values with different letters in the same column are significantly different (p < 0.05) according to Duncan's multiple range test. AX: high-fat diet + AX (200 mg/kg); HFY06: high-fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg).
Figure 3H&E pathological observation of liver tissue in mice. Magnification 20×. AX: high-fat diet + AX (200 mg/kg); HFY06: high-fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg).
Figure 4(a–e) H&E pathological observation of epididymal fat in mice. Magnification 20×. (f) Quantity of epididymal adipocyte. AX: high-fat diet + AX (200 mg/kg); HFY06: high-fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg). Data are means ± SD (n =6 per group). (a–d) Mean values with different letters in the same column are significantly different (p < 0.05) according to Duncan's multiple range test.
Figure 5The lipid metabolism mRNA expression in epididymal fat tissue of mice. AX: high-fat diet + AX (200 mg/kg); HFY06: high-fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg). Data are means ± SD (n =6 per group). (a–e) Mean values with different letters in the same column are significantly different (p < 0.05) according to Duncan's multiple range test.
Figure 6The lipid metabolism mRNA expression in liver tissue of mice. AX: high-fat diet + AX (200 mg/kg); HFY06: high-fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg). Data are means ± SD (n =6 per group). (a–d) Mean values with different letters in the same column are significantly different (p < 0.05) according to Duncan's multiple range test.
Figure 7The claudin-1, occludin, and ZO-1 mRNA expression in small intestine tissue of mice. AX: high-fat diet + AX (200 mg/kg); HFY06: high-fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg). Data are means ± SD (n =6 per group). (a–c) Mean values with different letters in the same column are significantly different (p < 0.05) according to Duncan's multiple range test.
Figure 8Effect of AX combine L. fermentum HFY06 supplementation on abundances of Firmicutes, Bacteroidetes, Bifidobacterium sp., and Lactobacillus sp. AX: high-fat diet + AX (200 mg/kg); HFY06: high-fat diet + L. fermentum HFY06 (1.0 × 1010 CFU/kg); AX+HFY06: high-fat diet + AX (200 mg/kg) + L. fermentum HFY06 (1.0 × 1010 CFU/kg). Data are means ± SD (n =6 per group). (a–d) Mean values with different letters in the same column are significantly different (p < 0.05) according to Duncan's multiple range test.