Insulin-like growth factor-1 activates AMPK to augment mitochondrial function and correct neuronal metabolism in sensory neurons in type 1 diabetes.

dc.contributor.author

Aghanoori, Mohamad-Reza

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Smith, Darrell R

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Shariati-Ievari, Shiva

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Ajisebutu, Andrew

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Nguyen, Annee

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Desmond, Fiona

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Jesus, Carlos HA

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Zhou, Xiajun

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Calcutt, Nigel A

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Aliani, Michel

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Fernyhough, Paul

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2025-09-11T12:45:55Z

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2025-09-11T12:45:55Z

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2019-02

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Objective

Diabetic sensorimotor polyneuropathy (DSPN) affects approximately half of diabetic patients leading to significant morbidity. There is impaired neurotrophic growth factor signaling, AMP-activated protein kinase (AMPK) activity and mitochondrial function in dorsal root ganglia (DRG) of animal models of type 1 and type 2 diabetes. We hypothesized that sub-optimal insulin-like growth factor 1 (IGF-1) signaling in diabetes drives loss of AMPK activity and mitochondrial function, both contributing to development of DSPN.

Methods

Age-matched control Sprague-Dawley rats and streptozotocin (STZ)-induced type 1 diabetic rats with/without IGF-1 therapy were used for in vivo studies. For in vitro studies, DRG neurons from control and STZ-diabetic rats were cultured and treated with/without IGF-1 in the presence or absence of inhibitors or siRNAs.

Results

Dysregulation of mRNAs for IGF-1, AMPKα2, ATP5a1 (subunit of ATPase), and PGC-1β occurred in DRG of diabetic vs. control rats. IGF-1 up-regulated mRNA levels of these genes in cultured DRGs from control or diabetic rats. IGF-1 treatment of DRG cultures significantly (P < 0.05) increased phosphorylation of Akt, P70S6K, AMPK and acetyl-CoA carboxylase (ACC). Mitochondrial gene expression and oxygen consumption rate (spare respiratory capacity), ATP production, mtDNA/nDNA ratio and neurite outgrowth were augmented (P < 0.05). AMPK inhibitor, Compound C, or AMPKα1-specific siRNA suppressed IGF-1 elevation of mitochondrial function, mtDNA and neurite outgrowth. Diabetic rats treated with IGF-1 exhibited reversal of thermal hypoalgesia and, in a separate study, reversed the deficit in corneal nerve profiles. In diabetic rats, IGF-1 elevated the levels of AMPK and P70S6K phosphorylation, raised Complex IV-MTCO1 and Complex V-ATP5a protein expression, and restored the enzyme activities of Complex IV and I in the DRG. IGF-1 prevented TCA metabolite build-up in nerve.

Conclusions

In DRG neuron cultures IGF-1 signals via AMPK to elevate mitochondrial function and drive axonal outgrowth. We propose that this signaling axis mediates IGF-1-dependent protection from distal dying-back of fibers in diabetic neuropathy.
dc.identifier

S2212-8778(18)30977-3

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2212-8778

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2212-8778

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https://hdl.handle.net/10161/33171

dc.language

eng

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Elsevier BV

dc.relation.ispartof

Molecular metabolism

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10.1016/j.molmet.2018.11.008

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https://creativecommons.org/licenses/by-nc/4.0

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Cells, Cultured

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Mitochondria

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Animals

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Mice

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Rats

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Rats, Sprague-Dawley

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Diabetic Neuropathies

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Diabetes Mellitus, Type 1

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Mitochondrial Proton-Translocating ATPases

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Protein Kinases

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Insulin-Like Growth Factor I

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Signal Transduction

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Female

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Male

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Sensory Receptor Cells

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Neuronal Outgrowth

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AMP-Activated Protein Kinase Kinases

dc.title

Insulin-like growth factor-1 activates AMPK to augment mitochondrial function and correct neuronal metabolism in sensory neurons in type 1 diabetes.

dc.type

Journal article

duke.contributor.orcid

Nguyen, Annee|0000-0002-5550-9053

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149

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165

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Duke

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School of Medicine

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Student

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Basic Science Departments

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Pharmacology & Cancer Biology

pubs.publication-status

Published

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20

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