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The apoM/S1P Complex-A Mediator in Kidney Biology and Disease?
Line S Bisgaard1,2, Christina Christoffersen1,2
1Department of Clinical Biochemistry, Rigshospitalet, Copenhagen, Denmark.
Abstract:
Kidney disease affects more than 10% of the population, can be both acute and chronic, and is linked to other diseases such as cardiovascular disease, diabetes, and sepsis. Despite the detrimental consequences for patients, no good treatment options directly targeting the kidney are available. Thus, a better understanding of the pathology and new treatment modalities are required. Accumulating evidence suggests that the apolipoprotein M/sphingosine-1-phosphate (apoM/S1P) axis is a likely drug target, but significant gaps in our knowledge remain. In this review, we present what has so far been elucidated about the role of apoM in normal kidney biology and describe how changes in the apoM/S1P axis are thought to affect the development of kidney disease. ApoM is primarily produced in the liver and kidneys. From the liver, apoM is secreted into circulation, where it is attached to lipoproteins (primarily HDL). Importantly, apoM is a carrier of the bioactive lipid S1P. S1P acts by binding to five different receptors. Together, apoM/S1P plays a role in several biological mechanisms, such as inflammation, endothelial cell permeability, and lipid turnover. In the kidney, apoM is primarily expressed in the proximal tubular cells. S1P can be produced locally in the kidney, and several of the five S1P receptors are present in the kidney. The functional role of kidney-derived apoM as well as plasma-derived apoM is far from elucidated and will be discussed based on both experimental and clinical studies. In summary, the current studies provide evidence that support a role for the apoM/S1P axis in kidney disease; however, additional pre-clinical and clinical studies are needed to reveal the mechanisms and target potential in the treatment of patients.
Insights
The apolipoprotein M/sphingosine-1-phosphate (apoM/S1P) axis is implicated in kidney disease development. Further research is needed to understand its mechanisms and therapeutic potential for kidney conditions.
Area of Science:
- Nephrology
- Lipid Metabolism
- Molecular Biology
Background:
- Kidney disease impacts over 10% of the population, often co-occurring with cardiovascular disease, diabetes, and sepsis.
- Current treatments for kidney disease lack direct renal targeting, necessitating a deeper understanding of disease pathology.
- The apolipoprotein M/sphingosine-1-phosphate (apoM/S1P) axis is emerging as a potential therapeutic target, but knowledge gaps persist.
Purpose of the Study:
- To review current knowledge on the role of apoM in normal kidney function.
- To describe how alterations in the apoM/S1P axis contribute to kidney disease pathogenesis.
- To discuss the potential of the apoM/S1P axis as a therapeutic target for kidney disease.
Main Methods:
- Literature review of experimental and clinical studies.
- Analysis of the biological functions of apoM and S1P in renal and systemic contexts.
- Examination of apoM expression and S1P signaling pathways in kidney tissues.
Main Results:
- ApoM, primarily synthesized in the liver and kidneys, circulates bound to lipoproteins and carries the bioactive lipid S1P.
- The apoM/S1P axis influences inflammation, endothelial permeability, and lipid metabolism.
- ApoM is expressed in proximal tubular cells, and S1P signaling occurs within the kidney, suggesting local and systemic roles.
Conclusions:
- Evidence supports a role for the apoM/S1P axis in the pathophysiology of kidney disease.
- The precise functional roles of kidney- and plasma-derived apoM require further elucidation.
- Additional pre-clinical and clinical studies are essential to validate the apoM/S1P axis as a therapeutic target for kidney disease treatment.
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