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The inositol phosphatase SHIP2 negatively regulates insulin/IGF-I actions implicated in neuroprotection and memory
Yoshiyuki Soeda1, Hiroshi Tsuneki, Hayato Muranaka
1Department of Clinical Pharmacology, University of Toyama, Toyama, Japan.
Abstract:
Impairment of insulin and IGF-I signaling in the brain is one of the causes of dementia associated with diabetes mellitus and Alzheimer's disease. However, the precise pathological processes are largely unknown. In the present study, we found that SH2-containing inositol 5'-phosphatase 2 (SHIP2), a negative regulator of phosphatidylinositol 3,4,5-trisphosphate-mediated signals, is widely expressed in adult mouse brain. When a dominant-negative mutant of SHIP2 was expressed in cultured neurons, insulin signaling was augmented, indicating physiological significance of endogenous SHIP2 in neurons. Interestingly, SHIP2 mRNA and protein expression levels were significantly increased in the brain of type 2 diabetic db/db mice. To investigate the impact of increased expression of SHIP2 in the brain, we further employed transgenic mice overexpressing SHIP2 and found that increased amounts of SHIP2 induced the disruption of insulin/IGF-I signaling through Akt. Neuroprotective effects of insulin and IGF-I were significantly attenuated in cultured cerebellar granule neurons from SHIP2 transgenic mice. Consistently, terminal deoxynucleotide transferase-mediated dUTP nick end labeling assay demonstrated that the number of apoptosis-positive cells was increased in cerebral cortex of the transgenic mice at an elderly age. Furthermore, SHIP2 transgenic mice exhibited impaired memory performance in the Morris water maze, step-through passive avoidance, and novel-object-recognition tests. Importantly, inhibition of SHIP2 ameliorated the impairment of hippocampal synaptic plasticity and memory formation in db/db mice. These results suggest that SHIP2 is a potent negative regulator of insulin/IGF-I actions in the brain, and excess amounts of SHIP2 may be related, at least in part, to brain dysfunction in insulin resistance with type 2 diabetes.
Insights
Increased SH2-containing inositol 5'-phosphatase 2 (SHIP2) in the brain disrupts insulin signaling, contributing to cognitive decline in diabetes and Alzheimer's disease. Inhibiting SHIP2 may offer therapeutic benefits.
Area of Science:
- Neuroscience
- Molecular Biology
- Endocrinology
Background:
- Impaired brain insulin and IGF-I signaling contribute to dementia in diabetes and Alzheimer's disease.
- The exact pathological mechanisms underlying these impairments remain largely unknown.
- SH2-containing inositol 5'-phosphatase 2 (SHIP2) negatively regulates phosphatidylinositol 3,4,5-trisphosphate signals.
Purpose of the Study:
- To investigate the role of SHIP2 in brain insulin/IGF-I signaling.
- To determine the impact of elevated SHIP2 expression on neuronal function and cognitive behavior.
- To explore SHIP2 as a potential therapeutic target for diabetes-associated cognitive dysfunction.
Main Methods:
- Expression analysis of SHIP2 in wild-type and type 2 diabetic mouse brains.
- Utilizing neuronal cultures and transgenic mice overexpressing SHIP2.
- Assessing insulin/IGF-I signaling pathways, neuronal apoptosis, and cognitive performance (Morris water maze, passive avoidance, novel object recognition).
Main Results:
- SHIP2 is widely expressed in the adult mouse brain and negatively regulates insulin signaling.
- SHIP2 expression is elevated in the brains of type 2 diabetic mice.
- Overexpression of SHIP2 impairs insulin/IGF-I signaling, increases neuronal apoptosis, and causes memory deficits.
- SHIP2 inhibition ameliorates cognitive impairment in diabetic mice.
Conclusions:
- SHIP2 acts as a key negative regulator of insulin and IGF-I signaling in the brain.
- Excessive SHIP2 contributes to brain dysfunction in insulin resistance and type 2 diabetes.
- Targeting SHIP2 may represent a novel therapeutic strategy for cognitive impairments associated with metabolic disorders.
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