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Knockout of receptor for advanced glycation end-products attenuates age-related renal lesions
Thibault Teissier1, Valentine Quersin1,2, Viviane Gnemmi3
1U995 - Lille Inflammation Research International Center, INSERM, CHU Lille, University of Lille, Lille, France.
Abstract:
Pro-aging effects of endogenous advanced glycation end-products (AGEs) have been reported, and there is increasing interest in the pro-inflammatory and -fibrotic effects of their binding to RAGE (the main AGE receptor). The role of dietary AGEs in aging remains ill-defined, but the predominantly renal accumulation of dietary carboxymethyllysine (CML) suggests the kidneys may be particularly affected. We studied the impact of RAGE invalidation and a CML-enriched diet on renal aging. Two-month-old male, wild-type (WT) and RAGE-/- C57Bl/6 mice were fed a control or a CML-enriched diet (200 μg CML/gfood ) for 18 months. Compared to controls, we observed higher CML levels in the kidneys of both CML WT and CML RAGE-/- mice, with a predominantly tubular localization. The CML-rich diet had no significant impact on the studied renal parameters, whereby only a trend to worsening glomerular sclerosis was detected. Irrespective of diet, RAGE-/- mice were significantly protected against nephrosclerosis lesions (hyalinosis, tubular atrophy, fibrosis and glomerular sclerosis) and renal senile apolipoprotein A-II (ApoA-II) amyloidosis (p < 0.001). A positive linear correlation between sclerosis score and ApoA-II amyloidosis score (r = 0.92) was observed. Compared with old WT mice, old RAGE-/- mice exhibited lower expression of inflammation markers and activation of AKT, and greater expression of Sod2 and SIRT1. Overall, nephrosclerosis lesions and senile amyloidosis were significantly reduced in RAGE-/- mice, indicating a protective effect of RAGE deletion with respect to renal aging. This could be due to reduced inflammation and oxidative stress in RAGE-/- mice, suggesting RAGE is an important receptor in so-called inflamm-aging.
Insights
Deleting the receptor for advanced glycation end-products (RAGE) protects kidneys from aging-related damage. RAGE deletion reduced inflammation and oxidative stress, highlighting its role in kidney aging.
Area of Science:
- Nephrology
- Gerontology
- Molecular Biology
Background:
- Endogenous advanced glycation end-products (AGEs) and their receptor RAGE are implicated in aging.
- The impact of dietary AGEs, particularly carboxymethyllysine (CML), on kidney aging is not well understood.
- Kidneys show predominant accumulation of dietary CML, suggesting potential vulnerability.
Purpose of the Study:
- To investigate the effects of RAGE invalidation and a CML-enriched diet on renal aging.
- To determine the role of RAGE in age-related kidney damage and inflammation.
Main Methods:
- Wild-type (WT) and RAGE-deficient (RAGE-/-) mice were fed control or CML-enriched diets for 18 months.
- Renal aging parameters, including nephrosclerosis lesions and amyloidosis, were assessed.
- Gene and protein expression of inflammation markers, oxidative stress, and key signaling pathways were analyzed.
Main Results:
- A CML-rich diet did not significantly impact renal parameters, with only a trend towards increased glomerular sclerosis.
- RAGE-/- mice showed significant protection against nephrosclerosis (hyalinosis, tubular atrophy, fibrosis, glomerular sclerosis) and renal amyloidosis, irrespective of diet.
- Old RAGE-/- mice exhibited reduced inflammation, lower AKT activation, and increased Sod2 and SIRT1 expression compared to old WT mice.
Conclusions:
- RAGE deletion significantly protects against age-related nephrosclerosis and amyloidosis.
- Dietary CML had a limited impact on renal aging in this model.
- RAGE plays a crucial role in kidney aging, potentially through mediating inflammation and oxidative stress ('inflamm-aging').
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Overview of Advanced Functional Groups
Functional groups are groups of atoms with specific chemical properties that occur within organic molecules and are sometimes denoted as “R”. Functional groups can “functionalize” a compound by enabling it to adopt different physical and chemical properties.
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The table below summarizes some of the major functional groups in organic chemistry.

