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Uncoupled turnover disrupts mitochondrial quality control in diabetic retinopathy
Jose R. Hombrebueno, Lauren Cairns, Louise R. Dutton, Timothy J. Lyons, Derek P. Brazil, Paul Moynagh, Tim M. Curtis, Heping Xu
Jose R. Hombrebueno, Lauren Cairns, Louise R. Dutton, Timothy J. Lyons, Derek P. Brazil, Paul Moynagh, Tim M. Curtis, Heping Xu
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Research Article Neuroscience Ophthalmology

Uncoupled turnover disrupts mitochondrial quality control in diabetic retinopathy

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Abstract

Mitochondrial quality control (MQC) is crucial for regulating CNS homeostasis, and its disruption has been implicated in the pathogenesis of some of the most common neurodegenerative diseases. In healthy tissues, the maintenance of MQC depends upon an exquisite balance between mitophagy (removal of damaged mitochondria by autophagy) and biogenesis (de novo synthesis of mitochondria). Here, we show that mitophagy is disrupted in diabetic retinopathy (DR) and decoupled from mitochondrial biogenesis during the progression of the disease. Diabetic retinas from human postmortem donors and experimental mice exhibit a net loss of mitochondrial contents during the early stages of the disease process. Using diabetic mitophagy-reporter mice (mitoQC-Ins2Akita) alongside pMitoTimer (a molecular clock to address mitochondrial age dynamics), we demonstrate that mitochondrial loss arose due to an inability of mitochondrial biogenesis to compensate for diabetes-exacerbated mitophagy. However, as diabetes duration increases, Pink1-dependent mitophagy deteriorates, leading to the build-up of mitochondria primed for degradation in DR. Impairment of mitophagy during prolonged diabetes is linked with the development of retinal senescence, a phenotype that blunted hyperglycemia-induced mitophagy in mitoQC primary Müller cells. Our findings suggest that normalizing mitochondrial turnover may preserve MQC and provide therapeutic options for the management of DR-associated complications.

Authors

Jose R. Hombrebueno, Lauren Cairns, Louise R. Dutton, Timothy J. Lyons, Derek P. Brazil, Paul Moynagh, Tim M. Curtis, Heping Xu

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Figure 5

The diabetic milieu dysregulates mitochondrial biogenesis in MIO-M1 cultures in vitro.

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The diabetic milieu dysregulates mitochondrial biogenesis in MIO-M1 cult...
MIO-M1 cells were maintained for 5 days in normal glucose (NG, 5.5 mM), high glucose (HG, 30.5 mM), or L-glucose (LG, 30.5 mM) osmotic control. (A–D) Representative confocal micrographs (A–C) and quantification (D) of mitochondrial biogenesis by incorporation of Bromodeoxyuridine (BrDU) into mtDNA (arrowheads) in different treatment groups; data are presented in box-and-whisker plots. At least 70 cells were used, obtained from n = 3 biological replicates per group. (E–H) Example immunoblot (E) and quantification (F–H) of mitochondrial biogenesis proteins in different treatment groups. Data were normalized to β-actin loading control; n = 3 biological replicates per group. PGC-1α lanes and corresponding β-actin loading controls were run on the same gel but were noncontiguous. PGC-1α shared similar β-actin loading controls to those in Figure 4C (Pink1). (I–K) Representative confocal micrographs of PGC-1α immunostaining in different treatment groups. (L) Quantification of nuclear PGC-1α mean fluorescence intensity (MFI) in different treatment groups; n = 3 biological replicates per group. Results presented as mean ± SEM in F–H and L. *P < 0.05, **P < 0.01. One-way ANOVA with Bonferroni’s correction for multiple comparisons. Scale bars: 10 μm.

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