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Updated: Feb 8, 2026

Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
Skeletal vascular perfusion is altered in chronic kidney disease
Mohammad W Aref1, Elizabeth A Swallow1, Neal X Chen2
1Department of Anatomy and Cell Biology, Indiana University School of Medicine, Indianapolis, IN, United States.
Insights
Chronic kidney disease (CKD) increases bone cortical perfusion but decreases bone marrow perfusion in rats. These findings highlight altered skeletal blood flow in CKD, impacting bone health.
Area of Science:
- Nephrology
- Orthopedics
- Cardiovascular Science
Background:
- Patients with chronic kidney disease (CKD) face elevated risks of cardiovascular disease and fracture-related mortality.
- CKD negatively impacts vascular reactivity and organ perfusion, but skeletal perfusion changes remain unexplored.
- Altered bone blood flow is implicated in bone remodeling and mass dysregulation in various conditions.
Purpose of the Study:
- To investigate the effects of CKD on skeletal perfusion using a rat model.
- To analyze changes in bone tissue perfusion at different stages of CKD progression.
Main Methods:
- Utilized a rat model with induced CKD (Cy/+ rats) and normal littermates (NL).
- Conducted two experiments with endpoints at 30 and 35 weeks of age.
- Assessed bone tissue perfusion *in vivo* using intra-cardiac fluorescent microsphere injection.
Main Results:
- CKD rats exhibited significantly higher blood urea nitrogen (BUN) levels compared to NL rats.
- At 30 weeks, femoral cortical perfusion was significantly higher in CKD rats; tibial cortical perfusion showed a non-significant trend towards increase.
- At 35 weeks, both femoral and tibial cortical perfusion were significantly elevated in CKD rats, while tibial marrow and vertebral body perfusion were significantly decreased.
Conclusions:
- CKD is associated with increased cortical bone perfusion in rats.
- Bone marrow perfusion alterations in CKD varied by stage and differed from cortical bone perfusion.
- Further research is needed to determine if these perfusion changes drive, propagate, or result from skeletal deterioration in CKD.
Abstract:
Patients with chronic kidney disease (CKD) are at an alarming risk of cardiovascular disease and fracture-associated mortality. CKD has been shown to have negative effects on vascular reactivity and organ perfusion. Although alterations in bone blood flow are linked to dysregulation of bone remodeling and mass in multiple conditions, changes to skeletal perfusion in the setting of CKD have not been explored. The goal of this study was to establish the effect of CKD on skeletal perfusion in a rat model of CKD. In two experiments with endpoints at 30 and 35 weeks of age, respectively, normal (NL) and Cy/+ (CKD) animals (n = 6/group) underwent in vivo intra-cardiac fluorescent microsphere injection to assess bone tissue perfusion. These two separate time points aimed to describe skeletal perfusion at 30 and 35 weeks based on previous studies demonstrating significant progression of hyperparthyroid bone disease during this timeframe. CKD animals had blood urea nitrogen (BUN) levels significantly higher than NL at both 30 and 35 weeks. At 30 weeks, perfusion was significantly higher in the femoral cortex (+259%, p < 0.05) but not in the tibial cortex (+140%, p = 0.11) of CKD animals relative to NL littermates. Isolated tibial marrow perfusion at 30 weeks showed a trend toward being higher (+183%, p = 0.08) in CKD. At 35 weeks, perfusion was significantly higher in both the femoral cortex (+173%, p < 0.05) and the tibial cortex (+241%, p < 0.05) in CKD animals when compared to their normal littermates. Isolated tibial marrow perfusion (-57%, p <0.05) and vertebral body perfusion (-71%, p <0.05) were lower in CKD animals. The current study demonstrates two novel findings regarding bone perfusion in an animal model of high turnover CKD. First, cortical bone perfusion in CKD animals is higher than in normal animals. Second, alterations in bone marrow perfision differed among the stages of CKD and were distinct from perfusion to the cortical bone. Determining whether these changes in bone perfusion are drivers, propagators, or consequences of skeletal deterioration in CKD will necessitate further work.
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