Vascular calcification in patients with end-stage renal disease

Jürgen Floege1, Markus Ketteler

  • 1Medizinische Klinik II, Klinikum der RWTH, Pauwelsstrasse 30, D-52074 Aachen, Germany. Juergen.Floege@post.rwth-aachen.de

Insights

Vascular calcification in end-stage renal disease (ESRD) is common and linked to mortality. New insights reveal active cellular processes and inhibitors like fetuin-A, suggesting novel treatments beyond current phosphate binders.

Area of Science:

  • Nephrology
  • Vascular Biology
  • Biochemistry

Background:

  • Vascular calcification is prevalent in end-stage renal disease (ESRD), causing arterial stiffening and increased mortality.
  • Risk factors include age, dialysis duration, diabetes, high calcium-phosphorus product, calcium-based binders, and inflammation.
  • Traditionally viewed as passive, vascular calcification involves active phosphate uptake by vascular smooth muscle cells, leading to osteoblast-like transformation.

Purpose of the Study:

  • To review the pathogenesis of vascular calcification in ESRD.
  • To discuss the role of endogenous calcification inhibitors, particularly fetuin-A.
  • To explore potential new therapeutic strategies and the established role of sevelamer hydrochloride.

Main Methods:

  • Literature review of vascular calcification in ESRD.
  • Analysis of cellular mechanisms and biochemical pathways involved.
  • Evaluation of clinical data on risk factors and therapeutic interventions.

Main Results:

  • Vascular calcification is an active process involving vascular smooth muscle cells and osteoblast-like changes.
  • Systemic inflammation downregulates fetuin-A, a key inhibitor of calcification, and low fetuin-A predicts mortality.
  • Sevelamer hydrochloride, a non-calcaemic binder, is the only prospectively proven preventive measure, though its exact mechanism is debated.

Conclusions:

  • Understanding the active pathogenesis of vascular calcification in ESRD opens avenues for targeted therapies.
  • Fetuin-A's role in inflammation and calcification warrants further investigation for therapeutic potential.
  • Sevelamer hydrochloride offers a proven preventive strategy, but further research is needed to clarify its benefits regarding hypercalcemia and LDL reduction.

Related Concept Videos

Skeleton and Calcium Homeostasis01:21

Skeleton and Calcium Homeostasis

Calcium is not only the most abundant mineral in bone but also the most abundant mineral in the human body. Calcium ions are needed for bone mineralization, tooth health, heart rate regulation and strength of contraction, blood coagulation, the contraction of smooth and skeletal muscle cells, and the regulation of nerve impulse conduction. The average calcium level in the blood is about 10 mg/dL. When the body cannot maintain this level, a person will experience hypo or hypercalcemia.
Imaging Studies for Cardiovascular System VI: Calcium -Scoring CT01:25

Imaging Studies for Cardiovascular System VI: Calcium -Scoring CT

Calcium-Scoring CT ScanA calcium-scoring CT scan, also known as coronary artery calcium (CAC) scan, detects calcium deposits in the coronary arteries. This test assesses the risk of coronary artery disease (CAD), which can lead to cardiovascular events such as angina, heart failure, and sudden cardiac arrest.A calcium-scoring CT scan is generally recommended for individuals at intermediate risk of CAD without symptoms. It includes:Men aged 40-75 and women aged 50-75: Especially those with a...
Urinary Tract Calculi IV: Nutrition Therapy and Prevention01:27

Urinary Tract Calculi IV: Nutrition Therapy and Prevention

Management of renal calculi focuses on effective strategies like tailored nutrition and hydration therapy. Adjusting diet and fluid intake reduces stone formation and recurrence, making these interventions simple yet powerful in kidney stone prevention and management.Understanding Kidney StonesKidney stones form when calcium, oxalate, uric acid, and cystine concentrate and crystallize in urine. Factors contributing to their formation include genetic predisposition, certain medical conditions,...
Chronic Kidney Disease I: Introduction01:25

Chronic Kidney Disease I: Introduction

Chronic Kidney Disease (CKD) arises when the kidneys progressively lose their ability to function, ultimately leading to end-stage renal disease. At this advanced stage, the kidneys can no longer filter waste or maintain essential body functions, requiring renal replacement therapy (RRT) through dialysis or a kidney transplant for survival.Early-stage chronic kidney disease and detection challengesIn CKD's early stages, symptoms often remain absent because healthy nephrons compensate for...
Chronic Kidney Disease II: Clinical Manifestations01:24

Chronic Kidney Disease II: Clinical Manifestations

Chronic Kidney Disease (CKD) progressively impairs multiple body systems due to the accumulation of uremic toxins, which disrupt cellular functions across various organs.Neurologic symptomsNeurologic symptoms often arise early in CKD, as uremic toxin buildup drives changes in cognitive and motor functions. Patients frequently experience fatigue, headache, confusion, difficulty concentrating, and, in severe cases, seizures. Peripheral neuropathy commonly manifests as burning sensations in the...
Chronic Kidney Disease III: Interprofessional Care01:28

Chronic Kidney Disease III: Interprofessional Care

Chronic kidney disease (CKD) requires collaborative and comprehensive management. CKD progresses through stages and can lead to end-stage kidney disease (ESKD) if untreated. Interprofessional collaboration and patient education are crucial, enabling patients to manage their health and improve their quality of life.Diagnostic approach for chronic kidney diseaseThe diagnosis of CKD primarily focuses on the glomerular filtration rate (GFR), which assesses kidney function by measuring how well...