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Published on: February 15, 2017
The changes of potassium currents in RCS rat Müller cell during retinal degeneration
TongTao Zhao1, YaoChen Li, ChuanHuang Weng
1Southwest Hospital, Southwest Eye Hospital, Third Military Medical University, Chongqing 400038, China.
Abstract:
Müller cells are the principal glial cells expressing membrane-bound potassium channel and predominantly mediating the homeostatic regulation of extracellular K+ produced by neuronal activity in retina. It's well known that Müller cells can be activated in many pathological conditions, but little is known about the change of potassium currents of Müller cells during the progression of retinitis pigmentosa. Herein, the Royal College of Surgeons rats (RCS rat) were employed to investigate some phenotypic and functional changes of Müller cells during retinal degeneration such as the expression of Kir4.1, membrane properties and K+ channel currents by using immunohistochemistry, RT-PCR, western blot and whole-cell patch clamping respectively. Compared with Müller cells in control retina, increased glutamine synthetase (GS) mRNA levels were seen at P30 and P60, and then decreased gradually in RCS rat retina. Morphologically, Müller cells showed significant hypertrophy and proliferation after p60. The increased expression of intermediate filament, glial fibrillary acidic protein (GFAP) and vimentin began at P30 and reached a peak at p60. Kir4.1 channels presented a peak expression at P30. Concomitantly, K(+) currents of Müller cells increased at P30 and decreased at P90 significantly. We concluded that retinal Müller cells of RCS rats underwent an activation initiated by the onset of retinal degeneration before p60 and then an obvious reactive gliosis, which led the basic membrane properties to suffer marked changes, and caused the Kir4.1 channels of Müller cells to occur a clear functional shift, even lose their normal electrophysiological properties. This process aggravates the impairment caused by the initial photoreceptor degeneration.
Insights
Müller cells in retinitis pigmentosa show early activation and reactive gliosis, altering potassium currents and worsening vision loss. These changes in glial cells impact retinal function during degeneration.
Area of Science:
- Neuroscience
- Ophthalmology
- Glial Cell Biology
Background:
- Müller cells regulate retinal extracellular potassium (K+).
- Their function during retinitis pigmentosa (RP) progression is poorly understood.
- RP involves photoreceptor degeneration and potential glial cell changes.
Purpose of the Study:
- Investigate phenotypic and functional changes in Müller cells during retinal degeneration in Royal College of Surgeons (RCS) rats.
- Examine alterations in Kir4.1 expression, membrane properties, and potassium (K+) currents.
Main Methods:
- Immunohistochemistry
- RT-PCR
- Western blot
- Whole-cell patch clamping
- Utilized RCS rats as an animal model for RP.
Main Results:
- Increased glutamine synthetase (GS) mRNA early, followed by decreased levels.
- Müller cell hypertrophy and proliferation after P60.
- Elevated glial fibrillary acidic protein (GFAP) and vimentin expression starting P30.
- Peak Kir4.1 channel expression at P30, with increased K+ currents.
- Decreased K+ currents by P90, indicating functional shifts.
Conclusions:
- Retinal Müller cells in RCS rats activate early in degeneration before P60.
- Reactive gliosis leads to significant changes in membrane properties and Kir4.1 channel function.
- Altered Müller cell electrophysiology exacerbates photoreceptor degeneration and retinal impairment.

