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Updated: Dec 10, 2025

Glucose-Stimulated Insulin Secretion via Perfusion through the Mice Vasculature with an Intact Pancreas
Published on: July 25, 2025
β-Cell-specific ablation of sirtuin 4 does not affect nutrient-stimulated insulin secretion in mice
Frank K Huynh1, Brett S Peterson2,3, Kristin A Anderson2,3
1Department of Biological Sciences, San Jose State University, San Jose, California.
Abstract:
Sirtuins are a family of proteins that regulate biological processes such as cellular stress and aging by removing posttranslational modifications (PTMs). We recently identified several novel PTMs that can be removed by sirtuin 4 (SIRT4), which is found in mitochondria. We showed that mice with a global loss of SIRT4 [SIRT4-knockout (KO) mice] developed an increase in glucose- and leucine-stimulated insulin secretion, and this was followed by accelerated age-induced glucose intolerance and insulin resistance. Because whole body SIRT4-KO mice had alterations to nutrient-stimulated insulin secretion, we hypothesized that SIRT4 plays a direct role in regulating pancreatic β-cell function. Thus, we tested whether β-cell-specific ablation of SIRT4 would recapitulate the elevated insulin secretion seen in mice with a global loss of SIRT4. Tamoxifen-inducible β-cell-specific SIRT4-KO mice were generated, and their glucose tolerance and glucose- and leucine-stimulated insulin secretion were measured over time. These mice exhibited normal glucose- and leucine-stimulated insulin secretion and maintained normal glucose tolerance even as they aged. Furthermore, 832/13 β-cells with a CRISPR/Cas9n-mediated loss of SIRT4 did not show any alterations in nutrient-stimulated insulin secretion. Despite the fact that whole body SIRT4-KO mice demonstrated an age-induced increase in glucose- and leucine-stimulated insulin secretion, our current data indicate that the loss of SIRT4 specifically in pancreatic β-cells, both in vivo and in vitro, does not have a significant impact on nutrient-stimulated insulin secretion. These data suggest that SIRT4 controls nutrient-stimulated insulin secretion during aging by acting on tissues external to the β-cell, which warrants further study.
Insights
Mitochondrial sirtuin 4 (SIRT4) removal of posttranslational modifications (PTMs) impacts aging. Loss of SIRT4 in pancreatic beta cells did not affect insulin secretion, suggesting SIRT4 acts on other tissues to regulate nutrient response.
Area of Science:
- Mitochondrial biology
- Endocrinology
- Aging research
Background:
- Sirtuins, including sirtuin 4 (SIRT4), are key regulators of cellular processes like aging and stress response.
- SIRT4, localized in mitochondria, removes various posttranslational modifications (PTMs).
- Global SIRT4 knockout mice exhibit altered insulin secretion and accelerated age-related metabolic dysfunction.
Purpose of the Study:
- To investigate the direct role of SIRT4 in pancreatic beta-cell function and insulin secretion.
- To determine if beta-cell-specific SIRT4 deficiency recapitulates the metabolic phenotypes observed in global SIRT4 knockout mice.
Main Methods:
- Generation of tamoxifen-inducible beta-cell-specific SIRT4 knockout mice.
- Assessment of glucose tolerance and glucose- and leucine-stimulated insulin secretion in vivo over time.
- In vitro analysis of nutrient-stimulated insulin secretion in 832/13 beta-cells with CRISPR/Cas9n-mediated SIRT4 loss.
Main Results:
- Beta-cell-specific SIRT4 knockout mice maintained normal glucose tolerance and insulin secretion throughout aging.
- Loss of SIRT4 in beta-cells, both in vivo and in vitro, did not significantly alter nutrient-stimulated insulin secretion.
- Global SIRT4 knockout mice showed age-induced increases in insulin secretion, contrasting with beta-cell-specific knockout results.
Conclusions:
- SIRT4's role in regulating nutrient-stimulated insulin secretion during aging is not mediated directly by pancreatic beta-cells.
- These findings suggest SIRT4 influences insulin secretion through mechanisms involving tissues external to the beta-cell.
- Further research is warranted to elucidate the extra-beta-cell functions of SIRT4 in metabolic regulation.

