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The unique hypusine modification of eIF5A promotes islet β cell inflammation and dysfunction in mice
Bernhard Maier, Takeshi Ogihara, Anthony P. Trace, Sarah A. Tersey, Reiesha D. Robbins, Swarup K. Chakrabarti, Craig S. Nunemaker, Natalie D. Stull, Catherine A. Taylor, John E. Thompson, Richard S. Dondero, Eli C. Lewis, Charles A. Dinarello, Jerry L. Nadler, Raghavendra G. Mirmira
Bernhard Maier, Takeshi Ogihara, Anthony P. Trace, Sarah A. Tersey, Reiesha D. Robbins, Swarup K. Chakrabarti, Craig S. Nunemaker, Natalie D. Stull, Catherine A. Taylor, John E. Thompson, Richard S. Dondero, Eli C. Lewis, Charles A. Dinarello, Jerry L. Nadler, Raghavendra G. Mirmira
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Research Article

The unique hypusine modification of eIF5A promotes islet β cell inflammation and dysfunction in mice

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Abstract

In both type 1 and type 2 diabetes, pancreatic islet dysfunction results in part from cytokine-mediated inflammation. The ubiquitous eukaryotic translation initiation factor 5A (eIF5A), which is the only protein to contain the amino acid hypusine, contributes to the production of proinflammatory cytokines. We therefore investigated whether eIF5A participates in the inflammatory cascade leading to islet dysfunction during the development of diabetes. As described herein, we found that eIF5A regulates iNOS levels and that eIF5A depletion as well as the inhibition of hypusination protects against glucose intolerance in inflammatory mouse models of diabetes. We observed that following knockdown of eIF5A expression, mice were resistant to β cell loss and the development of hyperglycemia in the low-dose streptozotocin model of diabetes. The depletion of eIF5A led to impaired translation of iNOS-encoding mRNA within the islet. A role for the hypusine residue of eIF5A in islet inflammatory responses was suggested by the observation that inhibition of hypusine synthesis reduced translation of iNOS-encoding mRNA in rodent β cells and human islets and protected mice against the development of glucose intolerance the low-dose streptozotocin model of diabetes. Further analysis revealed that hypusine is required in part for nuclear export of iNOS-encoding mRNA, a process that involved the export protein exportin1. These observations identify the hypusine modification of eIF5A as a potential therapeutic target for preserving islet function under inflammatory conditions.

Authors

Bernhard Maier, Takeshi Ogihara, Anthony P. Trace, Sarah A. Tersey, Reiesha D. Robbins, Swarup K. Chakrabarti, Craig S. Nunemaker, Natalie D. Stull, Catherine A. Taylor, John E. Thompson, Richard S. Dondero, Eli C. Lewis, Charles A. Dinarello, Jerry L. Nadler, Raghavendra G. Mirmira

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Figure 5

Inhibition of hypusination impairs cytokine-induced Nos2 translation in INS-1 (832/13) β cells and human islets.

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Inhibition of hypusination impairs cytokine-induced Nos2 translation in ...
(A) Mouse islets and INS-1 cells that were treated with GC7 overnight were pulsed with 3H-spermidine for 4 hours and subjected to electrophoresis and fluorography. (B) Representative immunoblots of actin and eIF5A from INS-1 cell extracts following overnight treatment with GC7. The arrowhead identifies an upper band of decreasing intensity. (C) Representative immunoblot of iNOS and actin from INS-1 cell extracts. The bar graph shows quantitation of iNOS protein levels, normalized to actin levels (n = 3). (D) Nitrite levels in INS-1 cell medium (n = 3). (C and D) *P < 0.05, compared with the non-cytokine–treated sample. (E) Nos2 transcript levels in INS-1 cells. Data were normalized to Actb mRNA levels and are reported as fold induction relative to non-cytokine, non-GC7–treatment. Data are the mean ± SEM from 3 independent experiments. (F) Representative immunoblots of iNOS and actin from human islets. (G) Nos2 transcript levels in human islets. Data were normalized to Actb mRNA levels and are reported as fold induction relative to non-cytokine, non-GC7–treatment (n = 3 experiments from a single human islet donor). (H) Representative immunoblots for iNOS, actin, and eIF5A from INS-1 cells transfected with the siRNAs indicated.

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

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