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Published on: September 1, 2015
Proximal tubule cyclophilin D mediates kidney fibrogenesis in obstructive nephropathy
Hee-Seong Jang1,2, Mi Ra Noh1,2, Ligyeom Ha2
1Department of Urology, Tisch Cancer Institute, Icahn School of Medicine at Mount Sinai, New York, New York.
Abstract:
The proximal tubule (PT) is highly vulnerable to acute injury, including ischemic insult and nephrotoxins, and chronic kidney injury. It has been established that PT injury is a primary cause of the development of chronic kidney disease, but the underlying molecular mechanism remains to be defined. Here, we tested whether PT cyclophilin D (CypD), a mitochondrial matrix protein, is a critical factor to cause kidney fibrosis progression. To define the role of CypD in kidney fibrosis, we used an established mouse model for kidney fibrosis: the unilateral ureteral obstruction (UUO) model in global and PT-specific CypD knockout (KO). Global CypD KO blunted kidney fibrosis progression with inhibition of myofibroblast activation and fibrosis. UUO-induced tubular atrophy was suppressed in kidneys of global CypD KO but not tubular dilation or apoptotic cell death. PT cell cycle arrest was highly increased in wild-type UUO kidneys but was markedly attenuated in global CypD KO UUO kidneys. The number of macrophages and neutrophils was less in UUO kidneys of global CypD KO than those of wild-type kidneys. Proinflammatory and profibrotic factors were all inhibited in global CypD KO. In line with those of global CypD KO, PT-specific CypD KO also blunted kidney fibrosis progression, along with less tubular atrophy, renal parenchymal loss, cell cycle arrest in PT, and inflammation, indicating a critical role for PT CypD in fibrogenesis. Collectively, our data demonstrate that CypD in the PT is a critical factor contributing to kidney fibrosis in UUO, providing a new paradigm for mitochondria-targeted therapeutics of fibrotic diseases.NEW & NOTEWORTHY It has been established that renal proximal tubule (PT) injury is a primary cause of the development of chronic kidney disease, but the underlying molecular mechanism remains to be defined. Here, we show that cyclophilin D, a mitochondrial matrix protein, in the PT causes kidney fibrogenesis in obstructive nephropathy. Our data suggest that targeting PT cyclophilin D could be beneficial to prevent fibrosis progression.
Insights
Proximal tubule cyclophilin D (CypD) drives kidney fibrosis after injury. Targeting CypD in proximal tubules may prevent chronic kidney disease progression and fibrosis.
Area of Science:
- Nephrology
- Mitochondrial Biology
- Cellular Biology
Background:
- Proximal tubule (PT) injury is a key driver of chronic kidney disease (CKD).
- The precise molecular mechanisms linking PT injury to kidney fibrosis remain incompletely understood.
- Mitochondrial dysfunction is implicated in various kidney diseases.
Purpose of the Study:
- To investigate the role of cyclophilin D (CypD), a mitochondrial matrix protein, in proximal tubule (PT) fibrogenesis.
- To determine if PT-specific CypD is a critical factor in the progression of kidney fibrosis.
- To explore potential therapeutic strategies targeting PT CypD for fibrotic kidney diseases.
Main Methods:
- Utilized a unilateral ureteral obstruction (UUO) mouse model to induce kidney fibrosis.
- Employed global and proximal tubule (PT)-specific CypD knockout (KO) mouse models.
- Assessed kidney fibrosis, myofibroblast activation, inflammation, and cell cycle arrest.
Main Results:
- Global CypD knockout significantly blunted kidney fibrosis progression and myofibroblast activation in the UUO model.
- PT-specific CypD knockout also attenuated kidney fibrosis, tubular atrophy, and inflammation.
- CypD deficiency reduced PT cell cycle arrest and inflammatory cell infiltration (macrophages, neutrophils).
Conclusions:
- Cyclophilin D (CypD) in the proximal tubule (PT) is a critical mediator of kidney fibrogenesis in obstructive nephropathy.
- Targeting PT CypD represents a novel therapeutic strategy for preventing kidney fibrosis progression.
- Mitochondria-targeted therapies focusing on CypD may offer a new paradigm for treating fibrotic kidney diseases.
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