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A valuable translational model of chronic kidney disease

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Txn1 mutant rats: A valuable translational model of chronic kidney disease
Txn1-F54L mutation in rat model reduces thioredoxin activity and triggers oxidative stress, mitochondrial damage, inflammation, and multiple forms of regulated cell death in kidney tissue. These processes collectively promote CKD. The study provides translational insights and a foundation for developing treatment options for CKD, targeting oxidative stress-induced pathways. Credit: Professor Iori K. Ohmori from Okayama University, Japan

Chronic kidney disease (CKD) is a major health burden affecting approximately one in 10 adults globally. Even with improved treatments, many patients continue to experience worsening kidney function, resulting in the need for dialysis or transplantation. Oxidative stress and mitochondrial dysfunction have long been suspected to contribute to CKD, but direct evidence linking these processes to disease development has been limited.

Thioredoxin (Trx), a small, highly conserved oxidoreductase protein, is essential for counteracting oxidative stress and regulating cellular redox balance. Abnormal Trx expression is linked to a variety of illnesses, including cancer and autoimmune disorders. While oxidative stress plays a central role in the pathogenesis of CKD, the role of chronic Trx deficiency in initiating the disease has been understudied.

To address this gap, a research team led by Professor Iori K. Ohmori of Okayama University investigated the role of Trx deficiency in progressive CKD development by inducing oxidative stress-mediated mitochondrial dysfunction and regulated cell death in Trx mutant rats. Dr. Mamoru Ouchida and Professor Haruhito Uchida of Okayama University, along with Professor Tomoji Mashimo of The University of Tokyo, collaborated with Ohmori on the research.

The study was published June 12, 2026, in Translational Research.

A rat model with worsening disease

“While the Txn1-F54L mutant rat was originally developed for nervous system-related research, we subsequently discovered that the presence of the Txn1 gene mutation also leads to the development of CKD. As Txn1 encodes Trx, the mutation reduced Trx activity to approximately one-third of normal levels,” explained Ohmori. “This created a unique opportunity to examine the long-term effects of persistent antioxidant insufficiency.”

Txn1-F54L mutant rats developed spontaneous CKD characterized by genotype-dependent severity. Homozygous mutants showed accelerated renal deterioration and markedly reduced survival, whereas heterozygous mutants displayed a delayed but progressive disease course consistent with CKD.

The rats displayed many hallmarks of human CKD, including elevated blood urea nitrogen, hypoalbuminemia, hypercholesterolemia, hypertension and arterial medial sclerosis. Histopathological analysis of kidney tissue revealed extensive tubular injury, interstitial fibrosis and glomerulosclerosis, pathological changes commonly observed in patients with advanced CKD.

Mitochondria falter as injury spreads

To uncover the molecular mechanisms underlying disease development, the team performed transcriptomic profiling. In samples collected from the renal cortex, 3,418 genes showed altered expression patterns in mutant rats, with strong enrichment in pathways associated with inflammation, fibrosis and immune activation. At the same time, genes involved in mitochondrial function and energy production were markedly suppressed. The study also identified upregulation of several regulated cell death pathways, including apoptosis, necroptosis and pyroptosis.

The study also showed a significant reduction in mitochondrial number and abnormal mitochondrial morphology in mutant rats. These findings indicate that chronic Trx deficiency compromises mitochondrial integrity, potentially depriving kidney cells of the energy needed to maintain normal function.

These events were accompanied by elevated levels of inflammatory cytokines such as interleukin-1β, interleukin-6 and interferon-γ in the bloodstream, indicating that local kidney injury was linked to broader systemic inflammation. “The oxidative stress resulting from Trx insufficiency initiates a cascade in which mitochondrial dysfunction triggers cell death, inflammation and ultimately progressive tissue fibrosis,” explained Ohmori.

A clearer path for CKD research

Existing animal models often replicate only selected aspects of CKD or rely on artificial injury methods. Ohmori highlighted, “The rat model we developed naturally exhibits features resembling human CKD. The progression of the disease involves not only damage to kidney cells but also a complex interplay of inflammation and fibrosis.”

By establishing a direct connection between impaired antioxidant defense, mitochondrial dysfunction, regulated cell death and kidney failure, the study provides new insights into CKD pathogenesis. The findings also suggest that therapies aimed at restoring redox balance, protecting mitochondria or modulating cell death pathways could represent promising approaches for slowing or preventing disease progression.

More information

Iori K. Ohmori et al, A novel spontaneous rat model of chronic kidney disease with mitochondrial dysfunction driven by thioredoxin insufficiency, Translational Research (2026). DOI: 10.1016/j.trsl.2026.06.003

Key medical concepts

Chronic Kidney DiseaseDysfunction, Mitochondria

Clinical categories

Nephrology

Provided by
Okayama University


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Swati Mestri

Swati Mestri

Swati Mestri holds a bachelor’s degree in Electronics Engineering and has worked as a content editor since 2019. She has experience editing research documents across technology, health care, and materials science, and has a particular interest in technology and space.

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Robert Egan

Robert Egan

Bachelor’s in mathematical biology, Master’s in creative writing. Well-traveled with unique perspectives on science and language.

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Txn1 mutant rats: A valuable translational model of chronic kidney disease (2026, August 28)
retrieved 28 August 2026
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