» Articles » PMID: 30354805

Loss of Renal Peritubular Capillaries in Hypertensive Patients Is Detectable by Urinary Endothelial Microparticle Levels

Overview
Journal Hypertension
Date 2018 Oct 26
PMID 30354805
Citations 34
Authors
Affiliations
Soon will be listed here.
Abstract

Hypertension, an important cause of chronic kidney disease, is characterized by peritubular capillary (PTC) loss. Circulating levels of endothelial microparticles (EMPs) reflect systemic endothelial injury. We hypothesized that systemic and urinary PTC-EMPs levels would reflect renal microvascular injury in hypertensive patients. We prospectively measured by flow cytometry renal vein, inferior vena cava, and urinary levels of EMPs in essential (n=14) and renovascular (RVH; n=24) hypertensive patients and compared them with peripheral blood and urinary levels in healthy volunteers (n=14). PTC-EMPs were identified as urinary exosomes positive for the PTC marker plasmalemmal-vesicle-associated protein. In 7 RVH patients, PTC and fibrosis were also quantified in renal biopsy, and in 18 RVH patients, PTC-EMPs were measured again 3 months after continued medical therapy with or without stenting (n=9 each). Renal vein and systemic PTC-EMPs levels were not different among the groups, whereas their urinary levels were elevated in both RVH and essential hypertension versus healthy volunteers (56.8%±12.7% and 62.8%±10.7% versus 34.0%±17.8%; both P≤0.001). Urinary PTC-EMPs levels correlated directly with blood pressure and inversely with estimated glomerular filtration rate. Furthermore, in RVH, urinary PTC-EMPs levels correlated directly with stenotic kidney hypoxia, histological PTC count, and fibrosis and inversely with cortical perfusion. Three months after treatment, the change in urinary PTC-EMPs levels correlated inversely with a change in renal function ( r=-0.582; P=0.011). Therefore, urinary PTC-EMPs levels are increased in hypertensive patients and may reflect renal microcirculation injury, whereas systemic PTC-EMPs levels are unchanged. Urinary PTC-EMPs may be useful as novel biomarkers of intrarenal capillary loss.

Citing Articles

Epigenetics of Hypertensive Nephropathy.

Zhang Y, Arzaghi H, Ma Z, Roye Y, Musah S Biomedicines. 2024; 12(11).

PMID: 39595187 PMC: 11591919. DOI: 10.3390/biomedicines12112622.


Frontier role of extracellular vesicles in kidney disease.

Li B, Qi C, Zhang Y, Shi L, Zhang J, Qian H J Nanobiotechnology. 2024; 22(1):583.

PMID: 39304945 PMC: 11414213. DOI: 10.1186/s12951-024-02852-3.


Unraveling the Complex Molecular Interplay and Vascular Adaptive Changes in Hypertension-Induced Kidney Disease.

Gaydarski L, Dimitrova I, Stanchev S, Iliev A, Kotov G, Kirkov V Biomedicines. 2024; 12(8).

PMID: 39200188 PMC: 11351430. DOI: 10.3390/biomedicines12081723.


Future embracing: exosomes driving a revolutionary approach to the diagnosis and treatment of idiopathic membranous nephropathy.

Wang L, Wang J, Xu A, Wei L, Pei M, Shen T J Nanobiotechnology. 2024; 22(1):472.

PMID: 39118155 PMC: 11312222. DOI: 10.1186/s12951-024-02633-y.


Altered immune cell phenotypes within chronically ischemic human kidneys distal to occlusive renal artery disease.

Zhu X, Klomjit N, Pawar A, Puranik A, Yang Z, Lutgens E Am J Physiol Renal Physiol. 2023; 326(2):F257-F264.

PMID: 38031731 PMC: 11198973. DOI: 10.1152/ajprenal.00234.2023.


References
1.
Li B, Cohen A, Hudson T, Motlagh D, Amrani D, Duffield J . Mobilized human hematopoietic stem/progenitor cells promote kidney repair after ischemia/reperfusion injury. Circulation. 2010; 121(20):2211-20. PMC: 2919223. DOI: 10.1161/CIRCULATIONAHA.109.928796. View

2.
Steegh F, Gelens M, Nieman F, van Hooff J, Cleutjens J, van Suylen R . Early loss of peritubular capillaries after kidney transplantation. J Am Soc Nephrol. 2011; 22(6):1024-9. PMC: 3374365. DOI: 10.1681/ASN.2010050531. View

3.
Gloviczki M, Lerman L, Textor S . Blood oxygen level-dependent (BOLD) MRI in renovascular hypertension. Curr Hypertens Rep. 2011; 13(5):370-7. PMC: 5116703. DOI: 10.1007/s11906-011-0218-7. View

4.
Keddis M, Garovic V, Bailey K, Wood C, Raissian Y, Grande J . Ischaemic nephropathy secondary to atherosclerotic renal artery stenosis: clinical and histopathological correlates. Nephrol Dial Transplant. 2010; 25(11):3615-22. PMC: 2957590. DOI: 10.1093/ndt/gfq269. View

5.
Stan R, Arden K, Palade G . cDNA and protein sequence, genomic organization, and analysis of cis regulatory elements of mouse and human PLVAP genes. Genomics. 2001; 72(3):304-13. DOI: 10.1006/geno.2000.6489. View