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Neo-Islet Formation in Liver of Diabetic Mice by Helper-dependent Adenoviral Vector-Mediated Gene Transfer
Published on: October 10, 2012
Hydrodynamic-based delivery of PTP1B shRNA reduces plasma glucose levels in diabetic mice
Sanaz Vakili1, Shadi Sadat Seyyed Ebrahimi, Asie Sadeghi
1Department of Biochemistry, Faculty of Medicine, Tehran University of Medical Sciences, Tehran, Iran.
Abstract:
Protein tyrosine phosphatase 1B (PTP1B) is a negative regulator of insulin signaling which is overexpressed in the liver of diabetic animals. The aims of this study were to generate liver-specific PTP1B knockout mice using a PTP1B‑short hairpin RNA (shRNA) plasmid and to investigate the effect of PTP1B inhibition on plasma glucose levels in streptozotocin-induced diabetic mice. We first validated the hydrodynamic tail vein injection in mice using a vector carrying the luciferase gene. Expression of the PTP1B gene was quantified by real-time PCR. The level of phosphorylated Akt was examined by western blot analysis. The injection of the plasmid containing firefly luciferase revealed that the highest transfer of the vector into the liver was obtained 24 h after the injection of 20 µg plasmid. The injection of PTP1B-shRNA, but not the scrambled shRNA plasmid, resulted in a reduction in PTP1B expression levels by up to 84% in the liver of the diabetic mice. Plasma glucose levels following the injection of PTP1B-shRNA remained significantly lower in the diabetic mice for 5 days. In addition, mice receiving PTP1B-shRNA in the basal and insulin-stimulated states had higher levels of Akt phosphorylation in the liver cells compared with mice that were injected with the scrambled sequence (35 and 60%, respectively; p<0.01). Furthermore, PTP1B overexpression was observed in the muscle, liver, adipose, heart and kidney tissues of the diabetic mice. The data from this study demonstrate that PTP1B inhibition may be a promising approach for lowering plasma glucose levels in diabetic patients. However, further studies using non-viral carriers are required to deliver the plasmid safely into the liver.
Insights
Inhibition of protein tyrosine phosphatase 1B (PTP1B) in the liver of diabetic mice significantly lowered plasma glucose levels. This approach enhanced insulin signaling by increasing Akt phosphorylation, suggesting PTP1B as a therapeutic target for diabetes.
Area of Science:
- Biochemistry
- Molecular Biology
- Endocrinology
Background:
- Protein tyrosine phosphatase 1B (PTP1B) negatively regulates insulin signaling.
- PTP1B is overexpressed in the liver of diabetic animal models.
- Targeting PTP1B may offer a therapeutic strategy for diabetes management.
Purpose of the Study:
- To create liver-specific PTP1B knockout mice using PTP1B-short hairpin RNA (shRNA) plasmid.
- To evaluate the impact of PTP1B inhibition on plasma glucose levels in streptozotocin-induced diabetic mice.
- To investigate the effect of PTP1B inhibition on Akt phosphorylation in diabetic mouse liver.
Main Methods:
- Hydrodynamic tail vein injection validated using a luciferase gene vector.
- Quantification of PTP1B gene expression via real-time PCR.
- Assessment of phosphorylated Akt levels using western blot analysis.
Main Results:
- PTP1B-shRNA injection reduced liver PTP1B expression by up to 84% in diabetic mice.
- Plasma glucose levels were significantly lower in PTP1B-shRNA treated mice for 5 days.
- Akt phosphorylation increased by 35% (basal) and 60% (insulin-stimulated) in PTP1B-shRNA treated mice (p<0.01).
Conclusions:
- Liver-specific PTP1B inhibition effectively lowers plasma glucose in diabetic mice.
- PTP1B inhibition enhances insulin signaling pathways, specifically Akt phosphorylation.
- PTP1B is a potential therapeutic target for managing hyperglycemia in diabetes, warranting further investigation with non-viral delivery systems.

