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Published on: March 23, 2011
Faulty TRPM4 channels underlie age-dependent cerebral vascular dysfunction in Gould syndrome
Evan Yamasaki1, Sher Ali1, Alfredo Sanchez Solano1
1Department of Pharmacology, Center for Molecular and Cellular Signaling in the Cardiovascular System, University of Nevada, Reno School of Medicine, Reno, NV 89557-0318.
Insights
Gould syndrome impairs cerebral blood vessels with age, linked to TRPM4 channel dysfunction and phosphatidylinositol 4,5 bisphosphate (PIP2) depletion. This age-dependent mechanism contributes to cerebral small vessel diseases (cSVDs).
Area of Science:
- Neuroscience
- Vascular Biology
- Genetics
Background:
- Gould syndrome, caused by mutations in COL4A1/COL4A2 genes, leads to cerebral small vessel diseases (cSVDs) in humans and mice.
- The pathogenic mechanisms behind age-dependent vascular dysfunction in Gould syndrome remain unclear.
Purpose of the Study:
- To investigate the age-dependent mechanisms of cerebral vascular dysfunction in a mouse model of Gould syndrome.
- To identify the molecular players involved in the blunted vascular myogenic response in affected cerebral arteries.
Main Methods:
- Utilized the Col4a1 mouse model to study cerebral arteries from young and middle-aged animals.
- Assessed vascular myogenic response and characterized ion channel activity in smooth muscle cells (SMCs).
- Investigated the role of phosphatidylinositol 4,5 bisphosphate (PIP2), phosphoinositide 3-kinase (PI3K), and TGF-β signaling.
Main Results:
- Cerebral arteries from middle-aged Col4a1 mice exhibited a blunted vascular myogenic response, unlike young mice.
- This dysfunction was linked to decreased depolarizing TRPM4 channel currents in SMCs.
- TRPM4 currents and myogenic response were restored by PIP2 replenishment and PI3K/TGF-β pathway inhibition.
Conclusions:
- Age-related cerebral vascular dysfunction in Gould syndrome is driven by loss of TRPM4 currents due to PIP2 depletion.
- Hyperactive TGF-β signaling may stimulate PI3K, leading to PIP2 depletion and impaired TRPM4 function.
- This study reveals an age-dependent molecular mechanism underlying cSVDs in Gould syndrome.
Abstract:
Gould syndrome is a rare multisystem disorder resulting from autosomal dominant mutations in the collagen-encoding genes COL4A1 and COL4A2. Human patients and Col4a1 mutant mice display brain pathology that typifies cerebral small vessel diseases (cSVDs), including white matter hyperintensities, dilated perivascular spaces, lacunar infarcts, microbleeds, and spontaneous intracerebral hemorrhage. The underlying pathogenic mechanisms are unknown. Using the Col4a1 mouse model, we found that vasoconstriction in response to internal pressure-the vascular myogenic response-is blunted in cerebral arteries from middle-aged (12 mo old) but not young adult (3 mo old) animals, revealing age-dependent cerebral vascular dysfunction. The defect in the myogenic response was associated with a significant decrease in depolarizing cation currents conducted by TRPM4 (transient receptor potential melastatin 4) channels in native cerebral artery smooth muscle cells (SMCs) isolated from mutant mice. The minor membrane phospholipid phosphatidylinositol 4,5 bisphosphate (PIP2) is necessary for TRPM4 activity. Dialyzing SMCs with PIP2 and selective blockade of phosphoinositide 3-kinase (PI3K), an enzyme that converts PIP2 to phosphatidylinositol (3, 4, 5)-trisphosphate (PIP3), restored TRPM4 currents. Acute inhibition of PI3K activity and blockade of transforming growth factor-beta (TGF-β) receptors also rescued the myogenic response, suggesting that hyperactivity of TGF-β signaling pathways stimulates PI3K to deplete PIP2 and impair TRPM4 channels. We conclude that age-related cerebral vascular dysfunction in Col4a1 mice is caused by the loss of depolarizing TRPM4 currents due to PIP2 depletion, revealing an age-dependent mechanism of cSVD.
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