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Mechanism and prevention of acute kidney injury from cast nephropathy in a rodent model
Wei-Zhong Ying, Christopher E. Allen, Lisa M. Curtis, Kristal J. Aaron, Paul W. Sanders
Wei-Zhong Ying, Christopher E. Allen, Lisa M. Curtis, Kristal J. Aaron, Paul W. Sanders
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Research Article

Mechanism and prevention of acute kidney injury from cast nephropathy in a rodent model

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Abstract

A common renal complication of multiple myeloma is “myeloma kidney,” a condition also known as cast nephropathy. The renal lesions (casts) are directly related to the production of monoclonal immunoglobulin free light chains (FLCs), which coprecipitate with Tamm-Horsfall glycoprotein (THP) in the lumen of the distal nephron, obstructing tubular fluid flow. Here, we report that analysis of the binding interaction between FLCs and THP demonstrates that the secondary structure and key amino acid residues on the complementarity-determining region 3 (CDR3) of FLCs are critically important determinants of the molecular interaction with THP. The findings permitted development of a cyclized competitor peptide that demonstrated strong inhibitory capability in the binding of FLCs to THP in vitro. When used in a rodent model of cast nephropathy, this cyclized peptide construct served as an effective inhibitor of intraluminal cast formation and prevented the functional manifestations of acute kidney injury in vivo. These experiments provide proof of concept that intraluminal cast formation is integrally involved in the pathogenesis of acute kidney injury from cast nephropathy. Further, the data support a clinically relevant approach to the management of renal failure in the setting of multiple myeloma.

Authors

Wei-Zhong Ying, Christopher E. Allen, Lisa M. Curtis, Kristal J. Aaron, Paul W. Sanders

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Figure 1

Key amino acid residues in the CDR3 of the VL domain determine binding to THP.

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Key amino acid residues in the CDR3 of the VL domain determine binding t...
A construct that permitted ligation of the CDR3 of interest between portions of framework 2 and framework 3 from an FLC (LKPBLL53) that did not interact with THP was used to test the interaction of the CDR3 with THP (A). As predicted, the construct that did not contain a CDR3 insert (no insert) did not interact with THP in the yeast 2-hybrid assay (B). Also as expected, the CDR3 from LKPBLL53 did not interact with THP. Binding was strongest with CDR3 (LSADSSGSYLYV) from ITPBLL86. Binding was also demonstrated with the use of the CDR3 (QVWDSTSDHYV) from ITPBLL1, but the interaction was markedly reduced with the use of the CDR3 (QVWHSSSDHYV) from ITPBLL2. These regions differ in only 2 amino residues, which are underlined in the figure. *P < 0.05, compared with no insert; †P < 0.05, compared with ITPBLL2 CDR3 construct. n = 6–8 experiments in each group. Data are shown as mean ± SEM.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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