APOL1 Dynamics in Diabetic Kidney Disease and Hypertension

Pravin C Singhal1, Karl Skorecki2,3,4

  • 1Department of Medicine, Feinstein Institute for Medical Research, Zucker School of Medicine, Hempstead, NY 11549, USA.

Biomolecules
|February 26, 2025
PubMed

Insights

APOL1 risk variants cause kidney disease but don't consistently worsen diabetic kidney disease. This may be because high glucose and APOL1 risk variants already maximize kidney injury pathways, making them unresponsive to further damage.

Area of Science:

  • Nephrology
  • Genetics
  • Molecular Biology

Background:

  • APOL1 Renal Risk Variants (APOL1RRVs) are linked to chronic kidney disease (CKD) and APOL1-Mediated Kidney Disease (AMKD).
  • APOL1RRVs' impact on diabetic kidney disease (DKD) progression is unclear, despite DKD being a leading cause of End-Stage Kidney Disease (ESKD).
  • Renin-Angiotensin System (RAS) activation is crucial in DKD and may contribute to AMKD.

Purpose of the Study:

  • To investigate the discrepancy in APOL1RRVs' effect on DKD versus other CKD etiologies.
  • To explore the mechanistic links between RAS, miR193a, and kidney injury in DKD and AMKD.
  • To re-examine the role of hypertension in AMKD progression.

Main Methods:

  • Review of in vitro and in vivo studies on RAS activation and kidney cell injury.
  • Analysis of podocyte expression of miR193a in high glucose and APOL1RRV models.
  • Discussion of clinical reports and genetic data (Mount Sinai BioMe repository) on hypertension and APOL1RRVs.

Main Results:

  • Both high glucose and APOL1RRVs increase miR193a, a glomerulosclerosis mediator, potentially saturating injury pathways in DKD.
  • The role of hypertension in AMKD progression is debated, with some studies suggesting it's a consequence rather than a cause.
  • Genetic data indicates hypertension may precede GFR decline in individuals with APOL1RRVs.

Conclusions:

  • The maximal effect of high glucose and APOL1RRVs on miR193a may explain why APOL1RRVs don't consistently worsen DKD.
  • Further studies are needed to validate hypothesized models explaining the dissociation between DKD and AMKD and the temporal relationship of hypertension in AMKD.

Related Concept Videos

Antihypertensive Drugs: Potassium-Sparing Diuretics01:28

Antihypertensive Drugs: Potassium-Sparing Diuretics

Liddle syndrome is a genetically inherited form of hypertension characterized by the overactivity of epithelial sodium channels in the nephron, the functional unit of the kidney. This heightened activity leads to increased sodium reabsorption and excessive excretion of potassium. To counteract this, potassium-sparing diuretics such as amiloride are used. They function by blocking these sodium channels, thereby reducing the influx of sodium into the epithelial cells and minimizing the loss of...
436
Heart Failure Drugs: Diuretics01:22

Heart Failure Drugs: Diuretics

Heart failure and kidney perfusion are interconnected in a complex way. Reduced renal perfusion and venous congestion are two significant factors that contribute to renal dysfunction in heart failure. The kidneys, primarily responsible for fluid balance in the body, are adversely affected due to compromised cardiac output and increased venous pressure. In response to reduced renal perfusion, the kidneys activate neurohumoral mechanisms to restore balance. However, these mechanisms can be...
332
Antihypertensive Drugs: Action of Diuretics01:16

Antihypertensive Drugs: Action of Diuretics

Diuretics are antihypertensive drugs used to treat hypertension resulting from sodium and water retention. Sodium, vital for fluid balance and nerve or muscle function, is regulated by the kidneys through millions of nephrons. Blood enters nephrons via afferent arterioles, which branch into capillaries called glomeruli. These filter blood plasma, allowing water and solutes, like sodium ions, to pass through capillary walls into Bowman's capsule. The filtrate then flows through various...
611
Hormonal Regulation01:33

Hormonal Regulation

The renin-aldosterone system is an endocrine system which guides the renal absorption of water and electrolytes, thus managing blood pressure and osmoregulation. Activation of the system begins in the kidneys with a small cluster of cells adjacent to the afferent and efferent blood vessels of the renal corpuscle. As the nephrons are filtering blood, juxtaglomerular cells monitor blood pressure. If they detect a decrease in pressure, they release the hormone renin into the bloodstream.
32.8K
Hypertension and Regulation of Blood Pressure01:18

Hypertension and Regulation of Blood Pressure

Hypertension, the most common cardiovascular disease, is diagnosed through repeated measurements of elevated blood pressure. Its risks, including damage to the kidney, heart, and brain, are directly proportional to blood pressure levels. Starting from 115/75 mm Hg, the risk of cardiovascular disease doubles with each increment of 20/10 mm Hg. The diagnosis relies on blood pressure measurements, not on patient symptoms, as hypertension is often asymptomatic until end-organ damage is imminent or...
1.9K
Antihypertensive Drugs: Angiotensin-Converting Enzyme Inhibitors01:30

Antihypertensive Drugs: Angiotensin-Converting Enzyme Inhibitors

Angiotensin-converting enzyme (ACE), a vital component of the renin-angiotensin-aldosterone system, is abundant in lung endothelial cells. ACE converts the inactive decapeptide, angiotensin I, into the active octapeptide, angiotensin II. This potent vasoconstrictor narrows blood vessels, increasing resistance to blood flow and elevating blood pressure. Angiotensin II also stimulates aldosterone production, encouraging kidney cells to reabsorb more sodium and water from urine, thereby increasing...
452