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Published on: December 8, 2023
Chronic kidney disease induces a systemic microangiopathy, tissue hypoxia and dysfunctional angiogenesis
Hans-Ulrich Prommer1, Johannes Maurer1, Karoline von Websky2,3
1Department of Physiology, Charité Universitätsmedizin Berlin, Berlin, Germany.
Insights
Chronic kidney disease (CKD) causes microvascular rarefaction, leading to impaired blood flow and oxygen delivery. This study reveals systemic microvascular disease in experimental uremia, impacting angiogenesis and tissue oxygenation.
Area of Science:
- Nephrology
- Cardiovascular Science
- Microcirculation Research
Background:
- Chronic kidney disease (CKD) is linked to increased cardiovascular disease (CVD) mortality.
- Endothelial dysfunction and microvascular rarefaction are observed in CKD patients, but their patterns and functional impact remain unclear.
Purpose of the Study:
- To investigate microvascular rarefaction patterns and functional deficits in experimental uremia.
- To explore the relationship between uremia, microvascular structure, and oxygen delivery.
Main Methods:
- In-vivo microscopy of cremaster muscle microcirculation in mice with experimental uremia (adenine feeding or subtotal nephrectomy).
- Assessment of microvascular structure, blood flow velocity, vascular tone, and oxygen uptake.
- Analysis of myocardial microvascular rarefaction and gene expression related to hypoxia and angiogenesis.
Main Results:
- Serum urea levels correlated with microangiopathy, characterized by heterogeneous microvascular rarefaction and avascular areas.
- Diminished blood flow velocity, vascular tone, and oxygen uptake were observed.
- Myocardial rarefaction paralleled impaired hypoxia-driven angiogenesis, with decreased transcription of HIF-1α and related genes.
Conclusions:
- Experimental uremia induces systemic microvascular disease with rarefaction and tissue hypoxia.
- Dysfunctional angiogenesis, indicated by altered gene expression, contributes to the observed microvascular pathology in CKD.
Abstract:
Chronic kidney disease (CKD) is associated with excessive mortality from cardiovascular disease (CVD). Endothelial dysfunction, an early manifestation of CVD, is consistently observed in CKD patients and might be linked to structural defects of the microcirculation including microvascular rarefaction. However, patterns of microvascular rarefaction in CKD and their relation to functional deficits in perfusion and oxygen delivery are currently unknown. In this in-vivo microscopy study of the cremaster muscle microcirculation in BALB/c mice with moderate to severe uremia, we show in two experimental models (adenine feeding or subtotal nephrectomy), that serum urea levels associate incrementally with a distinct microangiopathy. Structural changes were characterized by a heterogeneous pattern of focal microvascular rarefaction with loss of coherent microvascular networks resulting in large avascular areas. Corresponding microvascular dysfunction was evident by significantly diminished blood flow velocity, vascular tone, and oxygen uptake. Microvascular rarefaction in the cremaster muscle paralleled rarefaction in the myocardium, which was accompanied by a decrease in transcription levels not only of the transcriptional regulator HIF-1α, but also of its target genes Angpt-2, TIE-1 and TIE-2, Flkt-1 and MMP-9, indicating an impaired hypoxia-driven angiogenesis. Thus, experimental uremia in mice associates with systemic microvascular disease with rarefaction, tissue hypoxia and dysfunctional angiogenesis.
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