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Increased Klk9 Urinary Excretion Is Associated to Hypertension-Induced Cardiovascular Damage and Renal Alterations
Ana M Blázquez-Medela1, Omar García-Sánchez, Yaremi Quirós
1From the Unidad de Fisiopatología Renal y Cardiovascular, Instituto Reina Sofía de Investigación Nefrológica, Departamento de Fisiología y Farmacología, Universidad de Salamanca, Spain (AMB-M, OG-S, LP-G, SMS-M, FJL-H, JML-N, CM-S); Instituto de Investigación Biomédica de Salamanca (IBSAL), Salamanca, Spain (AMB-M, LP-G, SMS-M, FJL-H, JML-N, CM-S); Bio-inRen S.L., Salamanca, Spain (YQ, VB-G); Departamento de Farmacología, Facultad de Farmacia, Universidad de Granada, Spain (MR, JMD); and Instituto de Estudios de Ciencias de la Salud de Castilla y León (IECSCYL), Hospital Universitario de Salamanca, Spain (FJL-H, CM-S).
Insights
Urinary kallikrein-related peptidase 9 (KLK9) levels increase with hypertension in rats, indicating potential as a biomarker for detecting hypertensive cardiac and vascular damage early.
Area of Science:
- Nephrology
- Cardiovascular Medicine
- Biomarker Discovery
Background:
- Early detection of hypertensive end-organ damage is crucial for cardiovascular prognosis.
- Current biomarkers for hypertensive target organ damage (blood vessels, heart, kidneys) are lacking.
- Serine protease kallikrein-related peptidase 9 (KLK9) is investigated as a potential biomarker.
Purpose of the Study:
- To validate the utility of urinary KLK9 excretion as a biomarker for hypertension-induced target organ damage.
- To investigate the relationship between urinary KLK9 levels and cardiovascular/renal injury in hypertensive rat models.
Main Methods:
- Western blot analysis of urinary, plasma, and renal KLK9 levels in various rat models of hypertension.
- Histopathological assessment of cardiovascular and renal injury.
- In situ renal perfusion experiments to determine the origin of urinary KLK9.
Main Results:
- Urinary KLK9 excretion was elevated across different experimental hypertension models in rats.
- Treatment with an ACE inhibitor (trandolapril) reduced both blood pressure and urinary KLK9 levels.
- Elevated urinary KLK9 correlated strongly with cardiac hypertrophy and aortic wall thickening, independent of overt nephropathy.
Conclusions:
- Hypertension increases urinary KLK9 excretion due to altered tubular reabsorption, not increased production in other organs.
- Urinary KLK9 shows promise as a non-invasive biomarker for detecting hypertensive cardiac and vascular damage.
Abstract:
Early detection of hypertensive end-organ damage and secondary diseases are key determinants of cardiovascular prognosis in patients suffering from arterial hypertension. Presently, there are no biomarkers for the detection of hypertensive target organ damage, most outstandingly including blood vessels, the heart, and the kidneys.We aimed to validate the usefulness of the urinary excretion of the serine protease kallikrein-related peptidase 9 (KLK9) as a biomarker of hypertension-induced target organ damage.Urinary, plasma, and renal tissue levels of KLK9 were measured by the Western blot in different rat models of hypertension, including angiotensin-II infusion, DOCA-salt, L-NAME administration, and spontaneous hypertension. Urinary levels were associated to cardiovascular and renal injury, assessed by histopathology. The origin of urinary KLK9 was investigated through in situ renal perfusion experiments.The urinary excretion of KLK9 is increased in different experimental models of hypertension in rats. The ACE inhibitor trandolapril significantly reduced arterial pressure and the urinary level of KLK9. Hypertension did not increase kidney, heart, liver, lung, or plasma KLK9 levels. Hypertension-induced increased urinary excretion of KLK9 results from specific alterations in its tubular reabsorption, even in the absence of overt nephropathy. KLK9 urinary excretion strongly correlates with cardiac hypertrophy and aortic wall thickening.KLK9 appears in the urine in the presence of hypertension as a result of subtle renal handling alterations. Urinary KLK9 might be potentially used as an indicator of hypertensive cardiac and vascular damage.
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Renal Tubule and Collecting Duct
Proximal Convoluted Tubule (PCT):
The PCT is the initial segment of the renal tubule, extending from the Bowman's capsule that encloses the glomerulus. Its convoluted structure and microvilli-lined cells increase the surface area for reabsorption. The PCT reabsorbs glucose, amino acids, sodium, and water from the filtrate, ensuring essential...

