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Updated: Aug 8, 2026

Glomerular Outgrowth as an Ex Vivo Assay to Analyze Pathways Involved in Parietal Epithelial Cell Activation
Published on: August 19, 2020
Monoclonal light chain--mesangial cell interactions: early signaling events and subsequent pathologic effects
W J Russell1, J Cardelli, E Harris
1Department of Pathology, Louisiana State University Health Sciences Center, Shreveport, Louisiana 71130, USA.
Insights
Glomerulopathic light chains (G-LC) trigger kidney cell changes, unlike tubulopathic chains. Understanding these G-LC interactions with mesangial cells is key to preventing kidney damage.
Area of Science:
- Nephrology
- Cell Biology
- Immunology
Background:
- Monoclonal light chains (LC) cause kidney disease through interactions with glomerular cells.
- Glomerulopathic (G)-LC from light chain deposition disease (LCDD) and amyloidosis (AL-Am) impact mesangial cells (MC), while tubulopathic (T)-LC from myeloma cast nephropathy do not.
- Understanding early G-LC and MC interactions is crucial for therapeutic development.
Purpose of the Study:
- To investigate the early cellular and molecular events following G-LC interaction with MC.
- To differentiate the effects of G-LC from LCDD and AL-Am on MC.
- To identify potential therapeutic targets for G-LC-mediated glomerular injury.
Main Methods:
- Primary human MC in culture were exposed to purified G-LC and T-LC from patients.
- Analyzed cellular changes including cytoskeleton, cell shape, and proliferation marker Ki-67.
- Assessed signaling pathways such as PDGF-beta, c-fos, NF-kappa beta, and MCP-1 production.
Main Results:
- G-LC, but not T-LC, induced cytoskeletal alterations, cell shape changes, and increased Ki-67 expression in MC.
- G-LC activated PDGF-beta signaling, c-fos, NF-kappa beta, and MCP-1 production.
- Amyloidogenic LC were internalized by MC, while LCDD-LC acted on MC surface receptors.
Conclusions:
- G-LC binding to MC initiates signaling cascades leading to cellular changes and inflammation.
- Distinct G-LC subtypes (amyloidogenic vs. LCDD) interact differently with MC.
- Targeting MC surface receptors or downstream signaling pathways offers potential therapeutic strategies for G-LC nephropathies.
Abstract:
Glomerulopathic monoclonal light chains (G-LC) interact with mesangial cells (MC), resulting in alterations of mesangial homeostasis. Early signaling events control mitogenic activities and cytokine production, which in turn participate in the subsequent pathologic events. Mesangial homeostasis is affected in two very different ways, depending on whether the G-LC is from a patient with light chain deposition disease (LCDD) or light chain-related amyloidosis (AL-Am). In contrast, tubulopathic (T)-LC chains from patients with myeloma cast nephropathy do not significantly interact with MC and result in no alterations in mesangial homeostasis. Therefore, understanding early events in the monoclonal LC-MC interactions is fundamental. MC in culture were exposed to LC obtained and purified from the urine of patients with plasma cell dyscrasias and biopsy-proven renal disease, including LCDD, AL-Am, and myeloma cast nephropathy. Incubation of MC with G-LC, but not T-LC, resulted in cytoskeletal and cell shape changes, activation of platelet-derived growth factor-beta (PDGF-beta) and its corresponding receptor, cytoplasmic to nuclear migration of c-fos and NF-kappa beta signals, and production of monocyte chemoattractant protein-1 (MCP-1), as well as increased expression of Ki-67, a proliferation marker. Although NF-kappa beta activation was directly related to MCP-1 production, c-fos activation regulated proliferative signals and cytoskeletal changes in MC. Amyloidogenic LC were avidly internalized by the MC, whereas LCDD-LC effector targets were located at the MC surface. These cellular events are likely initiated as a result of interactions of the G-LC with yet-uncharacterized MC surface receptors. Dissecting the events taking place when G-LC interact with MC may define potential important targets for selective therapeutic manipulation to ameliorate or prevent the glomerular injury that ensues.
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