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Müller cell changes in human diabetic retinopathy
M Mizutani1, C Gerhardinger, M Lorenzi
1Schepens Eye Research Institute and Department of Ophthalmology, Harvard Medical School, Boston, Massachusetts 02114, USA.
Abstract:
Vascular cells may not be the only cells affected by diabetes in the retina. In particular, abnormalities of the b-wave of the electroretinogram in diabetic patients with absent or minimal microangiopathy have pointed to possible dysfunction of Müller cells, the principal glia of the retina. In this study, we sought evidence for diabetes-induced Müller cell abnormalities by testing the expression of three proteins (Bcl-2, glutamine synthetase [GS], and glial fibrillar acidic protein [GFAP]) that are solely or predominantly expressed in Müller cells and show a reproducible pattern of changes in the context of retinal injuries or degenerations. Retinas obtained postmortem from a total of 14 donors aged 65 +/- 6 years with 10 +/- 4 years of diabetes and histological evidence of microangiopathy and 18 age-matched nondiabetic donors were examined by immunohistochemistry and immunoblotting. The typical Müller cell pattern of Bcl-2 and GS immunostaining was similar for both intensity and distribution in the nondiabetic and diabetic retinas, as were the levels of the two proteins. In contrast, GFAP staining, largely confined to the most proximal retina in the nondiabetic donors, was in most diabetic retinas present along the entire length of the Müller cell processes, throughout the outer retina. Accordingly, the level of GFAP was increased in the diabetic retinas (161 +/- 106 densitometric units/microg protein vs. 55 +/- 45 in the nondiabetic retinas, P = 0.03). These data provide evidence for selective biosynthetic changes of Müller glial cells in diabetes. Because Müller cells produce factors capable of modulating blood flow, vascular permeability, and cell survival, and their processes surround all blood vessels in the retina, a possible role of these cells in the pathogenesis of retinal microangiopathy deserves to be investigated.
Insights
Diabetes affects retinal Müller cells, the primary glia, not just vascular cells. Studies show increased glial fibrillar acidic protein (GFAP) in diabetic retinas, suggesting Müller cell dysfunction contributes to diabetic retinopathy.
Area of Science:
- Ophthalmology
- Neuroscience
- Cell Biology
Background:
- Diabetic retinopathy is a leading cause of blindness.
- While vascular damage is well-documented, Müller cell involvement in diabetes is less understood.
- Abnormalities in electroretinogram b-waves in diabetic patients suggest Müller cell dysfunction.
Purpose of the Study:
- To investigate diabetes-induced changes in Müller cells, the primary glial cells of the retina.
- To examine the expression of Bcl-2, glutamine synthetase (GS), and glial fibrillar acidic protein (GFAP) in Müller cells from diabetic and non-diabetic retinas.
Main Methods:
- Immunohistochemistry and immunoblotting were used to analyze postmortem retinal tissues.
- Retinas from 14 diabetic donors and 18 age-matched non-diabetic donors were studied.
- Expression patterns and levels of Bcl-2, GS, and GFAP were compared between groups.
Main Results:
- Bcl-2 and GS expression patterns and levels were similar in both diabetic and non-diabetic retinas.
- Glial fibrillar acidic protein (GFAP) staining extended throughout Müller cell processes in diabetic retinas, unlike in non-diabetic retinas.
- GFAP levels were significantly increased in diabetic retinas compared to non-diabetic retinas.
Conclusions:
- Diabetes induces selective biosynthetic changes in retinal Müller cells.
- Increased GFAP expression suggests Müller cell activation or stress in diabetes.
- Müller cell dysfunction may play a role in the pathogenesis of diabetic retinopathy.