| Literature DB >> 34745426 |
Yanni Pan1,2, Yujing Ning3, Jing Hu1, Zhiying Wang4, Xiufeng Chen5, Xin Zhao1.
Abstract
In this study, we used DSS to establish an IBD mouse model to study the preventive effect of Lactobacillus plantarum (L. plantarum) ZS62 on IBD in the context of oxidative stress and the immune response. We assessed the mitigating effect of this strain on IBD mice by examining the length of and histopathological changes in the colon, determining the serum antioxidant index and the levels of inflammatory cytokines, as well as the mRNA and protein expression levels of relevant genes. The study results showed that L. plantarum ZS62 could inhibit colonic atrophy in IBD mice, reduce the degree of colonic damage, downregulate the serum levels of MDA, MPO, IL-1β, IL-6, IL-12, TNF-α, and IFN-γ and the relative mRNA and protein expression of IL-1β, IL-12, TNF-α, COX-2, iNOS, and NF-κB p65 in mouse colon tissues, and upregulate the serum levels of CAT, T-SOD, and IL-10 and the relative mRNA and protein expression of Cu/Zn SOD, Mn SOD, GSH-Px, CAT, IL-10, and IκB-α in colon tissues. In summary, L. plantarum ZS62 exhibited a good preventive effect on DSS-induced IBD by regulating oxidative stress and the immune response.Entities:
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Year: 2021 PMID: 34745426 PMCID: PMC8566036 DOI: 10.1155/2021/9416794
Source DB: PubMed Journal: Oxid Med Cell Longev ISSN: 1942-0994 Impact factor: 6.543
Primer sequences of RT-qPCR assay.
| Gene name | Sequence |
|---|---|
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| Forward: 5′-AACCAGTTGTGTTGTCAGGAC-3′ |
| Reverse: 5′-CCACCATGTTTCTTAGAGTGAGG-3′ | |
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| Forward: 5′-CAGACCTGCCTTACGACTATGG-3′ |
| Reverse: 5′-CTCGGTGGCGTTGAGATTGTT-3′ | |
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| Forward: 5′-GTGCAATCAGTTCGGACACCA-3′ |
| Reverse: 5′-CACCAGGTCGGACGTACTTG-3′ | |
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| Forward: 5′-GGAGGCGGGAACCCAATAG-3′ |
| Reverse: 5′-GTGTGCCATCTCGTCAGTGAA-3′ | |
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| Forward: 5′-GAAATGCCACCTTTTGACAGTG-3′ |
| Reverse: 5′-TGGATGCTCTCATCAGGACAG-3′ | |
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| Forward: 5′-CCTCCACTGTGCTGGTTTTAT-3′ |
| Reverse: 5′-TCAGCAACATGCTCCAGAAG-3′ | |
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| Forward: 5′-CAGGCGGTGCCTATGTCTC-3′ |
| Reverse: 5′-CGATCACCCCGAAGTTCAGTAG-3′ | |
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| Forward: 5′-CCAAGCCTTATCGGAAATGA-3′ |
| Reverse: 5′-TTTTCACAGGGGAGAAATCG-3′ | |
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| Forward: 5′-TTCCAATCCATGTCAAAACCGT-3′ |
| Reverse: 5′-AGTCCGGGTACAGTCACACTT-3′ | |
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| Forward: 5′-GTTCTCAGCCCAACAATACAAGA-3′ |
| Reverse: 5′-GTGGACGGGTCGATGTCAC-3′ | |
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| Forward: 5′-TGCGATTCCGCTATAAATGCG-3′ |
| Reverse: 5′-ACAAGTTCATGTGGATGAGGC-3′ | |
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| Forward: 5′-CGAGACTTTCGAGGAAATACCC-3′ |
| Reverse: 5′-GTCTGCGTCAAGACTGCTACA-3′ | |
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| Forward: 5′-ATGGAGCCGGACAGAAAAGC-3′ |
| Reverse: 5′-TGGGAGGTGTCAACATCTTCTT-3′ | |
Cu/Zn SOD: cuprozinc-superoxide dismutase; Mn SOD: manganese superoxide dismutase; GSH-Px: glutathione peroxidase; CAT: catalase; IL-1β: interleukin 1β; IL-12: interleukin12; TNF-α: tumor necrosis factor-alpha; IL-10: interleukin 10; COX-2: cyclooxygenase-2; iNOS: inducible nitric oxide synthase; NF-κB p65: nuclear factor κ-light-chain-enhancer of activated B cells; IκB-α: nuclear factor of κ-light polypeptide gene enhancer in B-cell inhibitor-α.
Figure 1Morphological characteristics of experimental lactic acid bacterium Lactobacillus plantarum ZS62.
Figure 2Colon length (cm) of experimental mice. (a) Average length of experimental mouse colon. (b) Photo of mouse colon length. Normal: mice fed a standard chow diet plus drinking water; DSS: mice fed the standard chow diet plus drinking water with 5% dextran sulfate sodium; SSZ: sulfasalazine (500 mg/kg of BW) plus 5% DSS; ZS62: Lactobacillus plantarum ZS62 (1.0 × 109 CFU/mL) plus 5% DSS; LB: Lactobacillus bulgaricus (1.0 × 109 CFU/mL) plus 5% DSS. a–cMean values with different letters in the same bars are significantly different (p < 0.05) according to Duncan's new multiple range test (MRT).
Figure 3Histopathological observation of colon tissues. Magnification 100x. Normal: mice fed a standard chow diet plus drinking water; DSS: mice fed the standard chow diet plus drinking water with 5% dextran sulfate sodium; SSZ: sulfasalazine (500 mg/kg of BW) plus 5% DSS; ZS62: Lactobacillus plantarum ZS62 (1.0 × 109 CFU/mL) plus 5% DSS; LB: Lactobacillus bulgaricus (1.0 × 109 CFU/mL) plus 5% DSS.
T-SOD, CAT, MDA, and MPO levels in the serum of mice.
| Group | T-SOD (U/mL) | CAT (U/mL) | MDA (nmol/mL) | MPO (U/L) |
|---|---|---|---|---|
| Normal | 96.77 ± 1.97a | 543.20 ± 29.55a | 3.26 ± 0.05d | 680.12 ± 27.78d |
| DSS | 61.86 ± 4.14d | 166.82 ± 7.57d | 12.09 ± 1.55a | 949.14 ± 3.39a |
| SSZ | 87.13 ± 0.55bc | 276.42 ± 37.64b | 6.46 ± 0.19bc | 732.98 ± 25.67c |
| ZS62 | 91.83 ± 0.75b | 225.27 ± 5.19bc | 4.73 ± 0.62cd | 693.10 ± 27.09cd |
| LB | 85.81 ± 0.75c | 177.89 ± 25.04cd | 8.06 ± 0.52b | 825.96 ± 6.77b |
a–dMean values with different letters in the same column differ significantly (p < 0.05) by Duncan's multiple range test. Values presented are the means ± standard deviation (N = 10/group). Normal: mice fed a standard chow diet plus drinking water; DSS: mice fed the standard chow diet plus drinking water with 5% dextran sulfate sodium; SSZ: sulfasalazine (500 mg/kg of BW) plus 5% DSS; ZS62: Lactobacillus plantarum ZS62 (1.0 × 109 CFU/mL) plus 5% DSS; LB: Lactobacillus bulgaricus (1.0 × 109 CFU/mL) plus 5% DSS.
Figure 4Concentrations of cytokines IL-6, IL-10, IL-12, TNF-α, and IFN-γ. (a–e) Mean values with different letters in the same column differ significantly (p < 0.05) by Duncan's multiple range test. Values presented are the means ± standard deviation (N = 10/group). Normal: mice fed a standard chow diet plus drinking water; DSS: mice fed the standard chow diet plus drinking water with 5% dextran sulfate sodium; SSZ: sulfasalazine (500 mg/kg of BW) plus 5% DSS; ZS62: Lactobacillus plantarum ZS62 (1.0 × 109 CFU/mL) plus 5% DSS; LB: Lactobacillus bulgaricus (1.0 × 109 CFU/mL) plus 5% DSS.
Figure 5The mRNA and protein expression levels of Cu/Zn SOD, Mn SOD, GSH-Px, and CAT in mouse colon tissue. a–eMean values with different letters in the same column differ significantly (p < 0.05) by Duncan's multiple range test. Values presented are the means ± standard deviation (N = 10/group). Normal: mice fed a standard chow diet plus drinking water; DSS: mice fed the standard chow diet plus drinking water with 5% dextran sulfate sodium; SSZ: sulfasalazine (500 mg/kg of BW) plus 5% DSS; ZS62: Lactobacillus plantarum ZS62 (1.0 × 109 CFU/mL) plus 5% DSS; LB: Lactobacillus bulgaricus (1.0 × 109 CFU/mL) plus 5% DSS.
Figure 6The mRNA and protein expression levels of IL-1β, IL-12, TNF-α, and IL-10 in mouse colon tissue. a–eMean values with different letters in the same column differ significantly (p < 0.05) by Duncan's multiple range test. Values presented are the means ± standard deviation (N = 10/group). Normal: mice fed a standard chow diet plus drinking water; DSS: mice fed the standard chow diet plus drinking water with 5% dextran sulfate sodium; SSZ: sulfasalazine (500 mg/kg of BW) plus 5% DSS; ZS62: Lactobacillus plantarum ZS62 (1.0 × 109 CFU/mL) plus 5% DSS; LB: Lactobacillus bulgaricus (1.0 × 109 CFU/mL) plus 5% DSS.
Figure 7The mRNA and protein expression levels of COX-2, iNOS, NF-κB p65, and IκB-α in mouse colon tissue. a–eMean values with different letters in the same column differ significantly (p < 0.05) by Duncan's multiple range test. Values presented are the means ± standard deviation (N = 10/group). Normal: mice fed a standard chow diet plus drinking water; DSS: mice fed the standard chow diet plus drinking water with 5% dextran sulfate sodium; SSZ: sulfasalazine (500 mg/kg of BW) plus 5% DSS; ZS62: Lactobacillus plantarum ZS62 (1.0 × 109 CFU/mL) plus 5% DSS; LB: Lactobacillus bulgaricus (1.0 × 109 CFU/mL) plus 5% DSS.