| Literature DB >> 29566055 |
Fang He1, Aiting Zhou2, Shou Feng3, Yuxiang Li1, Tao Liu1.
Abstract
BACKGROUND: Paraquat (PQ) poisoning can cause multiple organ failure, in which the lung is the primary target organ. There is currently no treatment for PQ poisoning. Mesenchymal stem cells (MSCs), which differentiate into multiple cell types, have generated much enthusiasm regarding their use for the treatment of several diseases. The aim of this study was to systematically review and analyze published preclinical studies describing MSC administration for the treatment of PQ poisoning in animal models to provide a basis for cell therapy.Entities:
Mesh:
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Year: 2018 PMID: 29566055 PMCID: PMC5864035 DOI: 10.1371/journal.pone.0194748
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Fig 1Included and excluded studies.
Characteristics of the included studies.
| First author | Year | Recipient animals (MSC/PQ) | MSC source | MSC dose (1×106)/time (after PQ)/delivery method | PQ dose (delivery method) | Time at outcome measurement |
|---|---|---|---|---|---|---|
| Xiong Jianfei | 2014 | SD rats (24/24) | SD rat bone marrow | 1/6 h/i.v. | 20% PQ for 15 mg/kg (i.p.) | 3, 7, 14 d after MSC transplantation |
| Gao Jing | 2011 | Wistar rats (9/9) | Wistar rat bone marrow | 0.1/?/i.v. | 20% PQ for 18 mg/kg (i.p.) | 72 h after MSC transplantation |
| Chen Min | 2016 | SD rats (18/18) | Bone marrow | 1/6 h/i.v. | 20 mg/ml PQ for 120 mg/kg (i.g.) | 7, 14, 28 d after PQ administration |
| Huang Yang | 2012 | SD rats (15/15) | SD rat bone marrow | 10/6 h/i.v. | 20% PQ for 5 mg/kg (i.p.) | 1, 3, 7 d after MSC transplantation |
| Huang Yang | 2013 | SD rats (24/24) | Rat bone marrow | 10/6 h /i.v. | 200 g/L PQ for 20 mg/kg (i.p.) | 1, 3, 7, 14 d after PQ administration |
| Zhang Yanmin | 2011 | Wistar rats (20/20) | Wistar rat bone marrow | 1/4 h/i.v. | 20% PQ for 18 mg/kg (i.p.) | 28 d after PQ administration |
| Wu You | 2016 | Balb/c mice (24/24) | Balb/c mouse bone marrow | 1/6 h/retrobulbar injection | 20% PQ for 25 mg/kg (i.p.) | 3, 7, 14, 21 d after PQ administration |
| Lu Shuanghong | 2014 | Balb/c mice (29/30) | Human umbilical cord | ?/24 h/i.v. | 40 mg/kg (i.p.) | 7, 21 d after MSC transplantation |
| Liu Hong | 2016 | Balb/c mice (20/20) | Bone marrow | 1/4 h/retrobulbar injection | 20% PQ for 25 mg/kg (i.p.) | 3, 7, 14, 21 d after MSC transplantation |
| Wu Lin | 2017 | C57BL/6 mice (15/15) | Mouse adipose tissue | 1/6 h/i.v. | 20% PQ for 0.02 L/kg (i.p.) | 12, 24, 48 h after MSC transplantation |
| Hsin-Lin Tsai | 2013 | SD rats (7/7) | Human bone marrow | 5/6 h/i.v. | 24 mg/kg (i.p.) | 30 d after PQ administration |
PQ: paraquat; MSC: mesenchymal stem cell; i.g: intragastric administration; i.v: intravenous administration; i.p: intraperitoneal injection
Summary of the major experimental results.
| First author | Year | Survival rate | Lung wet/dry weight | Lung fibrosis score | MDA | SOD | GSH | GSH-PX | IL-1β | TNF-α | TGF-β1 | HYP |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Xiong Jianfei | 2014 | Plasma NS (3, 14 d), | Plasma | Plasma NS (3, 14 d), | Plasma NS (3, 14 d), | |||||||
| Gao Jing | 2011 | |||||||||||
| Chen Min | 2016 | Lung NS (7 d), | ||||||||||
| Huang Yang | 2012 | NS (1, 3 d), | Plasma NS (1 d), | Plasma NS (1 d), | ||||||||
| Huang Yang | 2013 | NS (1, 3, 14 d), | Plasma NS (1, 14 d), | Plasma NS (1, 14 d), | Plasma | Plasma | ||||||
| Zhang Yanmin | 2011 | Serum | Lung | |||||||||
| Wu You | 2016 | Serum | Serum | Serum | Serum | Serum | ||||||
| Lu Shuanghong | 2014 | |||||||||||
| Liu Hong | 2016 | Serum | Lung protein | Serum | Serum NS (3 d), | Serum | ||||||
| Wu Lin | 2017 | Plasma NS (12, 24 h), | Plasma NS (12, 24 h), | |||||||||
| Hsin-Lin Tsai | 2013 |
↑: increased compared with the PQ group (<0.05)
↓: decreased compared with the PQ group (<0.05); NS: not significant; MDA: malondialdehyde; SOD: superoxide dismutase; GSH: glutathione; GSH-PX: glutathione peroxidase; HYP: hydroxyproline
a Lung tissue homogenate
b Lung immunohistochemical semiquantitative analysis
c Szapiel method
d Ashcroft method
e Did not indicate the method
Fig 2Forest plots showing the effects of MSCs on MDA levels.
Control: PQ group; Experimental: MSC treatment group; CI: confidence interval; IV: independent variable; SD: standard deviation.
Fig 3Forest plots showing the effects of MSCs on SOD levels.
Control: PQ group; Experimental: MSC treatment group; CI: confidence interval; IV: independent variable; SD: standard deviation.
Fig 4Forest plots showing the effects of MSCs on GSH levels.
Control: PQ group; Experimental: MSC treatment group; CI: confidence interval; IV: independent variable; SD: standard deviation.
Fig 5Funnel Plot of MDA (A), SOD (B) and GSH (C) Data. SE: standard error; SMD: standard mean difference.