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Updated: Jul 30, 2026

Phenotypic Characterization of Macrophages from Rat Kidney by Flow Cytometry
Published on: October 18, 2016
Glomerular macrophages in nephrotoxic serum nephritis are activated to oxidize low-density lipoprotein
J Rie1, S Silbiger, J Neugarten
1Department of Medicine, Montefiore Medical Center, Bronx, NY, USA.
Abstract:
Studies were undertaken to investigate the hypothesis that infiltrating glomerular macrophages in experimental glomerulonephritis are activated to produce oxygen-free radicals that are capable of enhancing oxidation of low-density lipoprotein (LDL). Low-density lipoprotein oxidation was assessed by increased electrophoretic mobility on agarose gel electrophoresis and by the generation of thiobarbituric acid-reactive substances. Lipoprotein uptake, degradation, and re-esterification by macrophages were assessed by measuring 14C-oleic acid incorporation into cholesteryl oleate. Both peritoneal and glomerular macrophages have the ability to oxidize LDL to a form showing increased mobility on agarose gel electrophoresis. However, LDL incubated with glomerular macrophages underwent greater oxidation, resulting in increased generation of thiobarbituric acid-reactive substances (15.1 +/- 1.2 nmol malondialdehyde/mg LDL protein v 7.2 +/- 2.1 nmol malondialdehyde/mg LDL protein; P < 0.01). In addition, glomerular macrophages modified LDL to a form that greatly enhanced cellular synthesis of cholesteryl oleate compared with peritoneal macrophage-modified LDL (30 +/- 11 pmol/10(6) cells/hr v 10 +/- 4 pmol/10(6) cells/hr; P < 0.01). Superoxide dismutase, a scavenger of superoxide anion, inhibited macrophage-mediated oxidation of LDL. These results suggest that glomerular macrophages from nephritic rats are activated to modify LDL to a form avidly taken up by macrophage scavenger receptors. Thus, enhanced formation of oxidized LDL by infiltrating glomerular macrophages may contribute to glomerular injury in nephrotoxic serum nephritis.
Insights
Glomerular macrophages in experimental glomerulonephritis oxidize low-density lipoprotein (LDL), creating a modified form readily absorbed by scavenger receptors. This enhanced oxidized LDL formation may contribute to kidney injury in nephrotoxic serum nephritis.
Area of Science:
- Nephrology
- Immunology
- Cardiovascular Research
Background:
- Glomerulonephritis involves infiltrating macrophages in kidney glomeruli.
- Macrophage activation and their role in lipoprotein modification are not fully understood.
- Oxidized low-density lipoprotein (LDL) is implicated in various inflammatory conditions.
Purpose of the Study:
- To investigate if glomerular macrophages in experimental glomerulonephritis produce oxygen-free radicals.
- To determine if these radicals enhance LDL oxidation.
- To assess the impact of macrophage-modified LDL on cellular processes.
Main Methods:
- Assessing LDL oxidation via electrophoretic mobility and thiobarbituric acid-reactive substances.
- Measuring 14C-oleic acid incorporation to evaluate lipoprotein uptake and re-esterification.
- Utilizing superoxide dismutase to inhibit macrophage-mediated LDL oxidation.
Main Results:
- Glomerular macrophages induced greater LDL oxidation than peritoneal macrophages, evidenced by increased thiobarbituric acid-reactive substances.
- Macrophage-modified LDL significantly enhanced cholesteryl oleate synthesis, indicating increased cellular uptake.
- Superoxide dismutase inhibited LDL oxidation, suggesting a role for superoxide anions.
Conclusions:
- Activated glomerular macrophages in nephritic rats modify LDL, increasing its uptake by scavenger receptors.
- Enhanced formation of oxidized LDL by infiltrating glomerular macrophages may contribute to glomerular injury.
- These findings highlight a potential mechanism linking macrophage activity to kidney damage in glomerulonephritis.
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