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Reduction of Superoxide Dismutase 1 Delays Regeneration of Cardiotoxin-Injured Skeletal Muscle in KK/Ta- Ins2 Akita Mice with Progressive Diabetic Nephropathy.

Authors :
Takahashi Y
Shimizu T
Kato S
Nara M
Suganuma Y
Sato T
Morii T
Yamada Y
Fujita H
Source :
International journal of molecular sciences [Int J Mol Sci] 2021 May 23; Vol. 22 (11). Date of Electronic Publication: 2021 May 23.
Publication Year :
2021

Abstract

Superoxide dismutase (SOD) is a major antioxidant enzyme for superoxide removal, and cytoplasmic SOD (SOD1) is expressed as a predominant isoform in all cells. We previously reported that renal SOD1 deficiency accelerates the progression of diabetic nephropathy (DN) via increasing renal oxidative stress. To evaluate whether the degree of SOD1 expression determines regeneration capacity and sarcopenic phenotypes of skeletal muscles under incipient and advanced DN conditions, we investigated the alterations of SOD1 expression, oxidative stress marker, inflammation, fibrosis, and regeneration capacity in cardiotoxin (CTX)-injured tibialis anterior (TA) muscles of two Akita diabetic mouse models with different susceptibility to DN, DN-resistant C57BL/6- Ins2 <superscript>Akita</superscript> and DN-prone KK/Ta- Ins2 <superscript>Akita</superscript> mice. Here, we report that KK/Ta- Ins2 <superscript>Akita</superscript> mice, but not C57BL/6- Ins2 <superscript>Akita</superscript> mice, exhibit delayed muscle regeneration after CTX injection, as demonstrated by the finding indicating significantly smaller average cross-sectional areas of regenerating TA muscle myofibers relative to KK/Ta-wild-type mice. Furthermore, we observed markedly reduced SOD1 expression in CTX-injected TA muscles of KK/Ta- Ins2 <superscript>Akita</superscript> mice, but not C57BL/6- Ins2 <superscript>Akita</superscript> mice, along with increased inflammatory cell infiltration, prominent fibrosis and superoxide overproduction. Our study provides the first evidence that SOD1 reduction and the following superoxide overproduction delay skeletal muscle regeneration through induction of overt inflammation and fibrosis in a mouse model of progressive DN.

Details

Language :
English
ISSN :
1422-0067
Volume :
22
Issue :
11
Database :
MEDLINE
Journal :
International journal of molecular sciences
Publication Type :
Academic Journal
Accession number :
34071003
Full Text :
https://doi.org/10.3390/ijms22115491