Related Experiment Video
Updated: Nov 2, 2025

Intravascular Delivery of Biologics to the Rat Kidney
Published on: September 1, 2016
Progressive Cellular Senescence Mediates Renal Dysfunction in Ischemic Nephropathy
Seo Rin Kim1,2, Amrutesh S Puranik1,3, Kai Jiang1
1Division of Nephrology and Hypertension, Mayo Clinic, Rochester, Minnesota.
Background:
Peripheral vascular diseases may induce chronic ischemia and cellular injury distal to the arterial obstruction. Cellular senescence involves proliferation arrest in response to stress, which can damage neighboring cells. Renal artery stenosis (RAS) induces stenotic-kidney dysfunction and injury, but whether these arise from cellular senescenceand their temporal pattern remain unknown.
Methods:
Chronic renal ischemia was induced in transgenic INK-ATTAC and wild type C57BL/6 mice by unilateral RAS, and kidney function (in vivo micro-MRI) and tissue damage were assessed. Mouse healthy and stenotic kidneys were analyzed using unbiased single-cell RNA-sequencing. To demonstrate translational relevance, cellular senescence was studied in human stenotic kidneys.
Results:
Using intraperitoneal AP20187 injections starting 1, 2, or 4 weeks after RAS, selective clearance of cells highly expressing p16Ink4a attenuated cellular senescence and improved stenotic-kidney function; however, starting treatment immediately after RAS induction was unsuccessful. Broader clearance of senescent cells, using the oral senolytic combination dasatinib and quercetin, in C57BL/6 RAS mice was more effective in clearing cells positive for p21 (Cdkn1a) and alleviating renal dysfunction and damage. Unbiased, single-cell RNA sequencing in freshly dissociated cells from healthy and stenotic mouse kidneys identified stenotic-kidney epithelial cells undergoing both mesenchymal transition and senescence. As in mice, injured human stenotic kidneys exhibited cellular senescence, suggesting this process is conserved.
Conclusions:
Maladaptive tubular cell senescence, involving upregulated p16 (Cdkn2a), p19 (Cdkn2d), and p21 (Cdkn1a) expression, is associated with renal dysfunction and injury in chronic ischemia. These findings support development of senolytic strategies to delay chronic ischemic renal injury.
Insights
Cellular senescence contributes to kidney dysfunction and injury in renal artery stenosis. Senolytic treatments can improve kidney function and reduce damage, offering a potential therapeutic strategy for chronic ischemic renal injury.
Area of Science:
- Nephrology
- Cellular Biology
- Vascular Biology
Background:
- Peripheral vascular diseases can cause chronic ischemia and cellular damage.
- Cellular senescence, a stress response, can harm nearby cells.
- The role and timing of cellular senescence in renal artery stenosis (RAS)-induced kidney dysfunction are unknown.
Purpose of the Study:
- To investigate the role of cellular senescence in renal artery stenosis (RAS) and its impact on kidney function.
- To determine the temporal pattern of cellular senescence in RAS-induced kidney injury.
- To evaluate the efficacy of senolytic strategies in mitigating RAS-induced renal dysfunction and damage.
Main Methods:
- Induction of chronic renal ischemia in mice via unilateral RAS.
- Assessment of kidney function using in vivo micro-MRI and tissue damage.
- Single-cell RNA-sequencing of healthy and stenotic mouse kidneys.
- Investigation of cellular senescence in human stenotic kidneys for translational relevance.
Main Results:
- Selective clearance of p16Ink4a-expressing cells improved stenotic-kidney function when initiated weeks after RAS, but not immediately.
- The senolytic combination dasatinib and quercetin effectively cleared p21-positive cells and alleviated renal dysfunction and damage in RAS mice.
- Single-cell RNA-sequencing revealed stenotic-kidney epithelial cells undergoing mesenchymal transition and senescence.
- Human stenotic kidneys showed conserved cellular senescence, similar to mouse models.
Conclusions:
- Maladaptive tubular cell senescence, marked by increased p16, p19, and p21 expression, is linked to renal dysfunction and injury in chronic ischemia.
- These findings highlight cellular senescence as a key driver of chronic ischemic renal injury.
- Senolytic strategies show promise for delaying or treating chronic ischemic renal injury.
Related Concept Videos
Chronic Kidney Disease I: Introduction
Acute Kidney Injury II: Pathophysiology
Nephrons
Renal Corpuscle
Glomerulus: Structure and Function
The glomerulus is a tiny, intricate network of capillaries located at the beginning of the nephron. It's enveloped by the Bowman's capsule and receives its blood supply from an afferent arteriole, which divides into numerous...
Dialysis
Acute kidney injury develops suddenly and can be caused by pre-renal causes (e.g., hypovolemia, shock), intrinsic renal causes (e.g., acute tubular necrosis), or post-renal causes (e.g., urinary obstruction). In contrast, chronic renal failure progresses gradually over time and is often...
Chronic Kidney Disease II: Clinical Manifestations

