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Updated: Jun 10, 2026

Identification of the Source of Secreted Proteins in the Kidney by Brefeldin A Injection
Published on: November 10, 2021
Cytoglobin, a novel globin, plays an antifibrotic role in the kidney
Imari Mimura1, Masaomi Nangaku, Hiroshi Nishi
1Div. of Nephrology and Endocrinology, Univ. of Tokyo School of Medicine, 7-3-1, Hongo, Bunkyo-ku, Tokyo, 113-8655, Japan.
Insights
Cytoglobin (Cygb) protects against kidney fibrosis by reducing oxidative stress and collagen synthesis. This novel globin may be a therapeutic target for chronic kidney disease.
Area of Science:
- Nephrology
- Molecular Biology
- Biochemistry
Background:
- Cytoglobin (Cygb), a novel globin, is found in fibroblasts but its function is unknown.
- Its localization suggests a potential role in fibrogenesis.
Purpose of the Study:
- To investigate the role of Cytoglobin (Cygb) in kidney fibrosis.
- To determine if Cygb has therapeutic potential in treating kidney fibrosis.
Main Methods:
- Utilized a remnant kidney model in rats and immunohistochemical analysis.
- Created transgenic rats overexpressing Cygb and performed in vitro studies with kidney fibroblasts.
- Assessed histological injury, renal function, collagen deposition, and oxidative stress markers (nitrotyrosine, 8-OHdG).
Main Results:
- Cygb expression increased with kidney fibrosis progression.
- Overexpression of Cygb improved renal histology, function, and reduced fibrosis and oxidative stress.
- In vitro studies confirmed Cygb inhibits collagen synthesis and its antifibrotic effects depend on antioxidant properties.
Conclusions:
- Cytoglobin (Cygb) plays a protective role against kidney fibrosis by ameliorating oxidative stress.
- Cygb's antifibrotic effects are linked to its radical scavenging function.
- Cygb represents a potential therapeutic target for chronic kidney disease.
Abstract:
Cytoglobin (Cygb), a novel member of the globin superfamily, is expressed by fibroblasts in various organs. However, its function remains unknown. Because of its localization, we speculated that a biological role of Cygb may be related to fibrogenesis. To clarify the role of Cygb in kidney fibrosis, we employed the remnant kidney model in rats. Immunohistochemical analysis showed an increase in Cygb expression in parallel with disease progression. To investigate the functional consequence of Cygb upregulation, we established transgenic rats overexpressing rat Cygb. Overexpression of Cygb improved histological injury, preserved renal function, and ameliorated fibrosis, as estimated by the accumulation of collagen I and IV as well as Masson trichrome staining. These protective effects of Cygb were associated with a decrease in nitrotyrosine deposition in the kidney and urinary 8-hydroxy-2'-deoxyguanosine (8-OHdG) excretion as a marker of oxidative stress. We also performed in vitro studies utilizing a rat kidney fibroblast cell line transiently overexpressing Cygb, an inducible kidney cell transfected with Cygb, and primary cultured fibroblasts isolated from the kidneys of the transgenic rats. These different experimental systems consistently showed that Cygb inhibited collagen synthesis. Furthermore, mutant disruption of heme in Cygb that impaired its antioxidant properties led to the loss of antifibrotic effects, suggesting that Cygb reduces fibrosis via a radical scavenging function. In conclusion, we showed that Cygb plays an important role in protection of the kidney against fibrosis via the amelioration of oxidative stress both in vitro and in vivo. Cygb might represent a good therapeutic target in chronic kidney disease.
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