Unknown

Dataset Information

0

Motor neuron mitochondrial dysfunction in spinal muscular atrophy.


ABSTRACT: Spinal muscular atrophy (SMA), the leading genetic cause of infant mortality, predominantly affects high metabolic tissues including motor neurons, skeletal muscles and the heart. Although the genetic cause of SMA has been identified, mechanisms underlying tissue-specific vulnerability are not well understood. To study these mechanisms, we carried out a deep sequencing analysis of the transcriptome of spinal motor neurons in an SMA mouse model, in which we unexpectedly found changes in many genes associated with mitochondrial bioenergetics. Importantly, functional measurement of mitochondrial activities showed decreased basal and maximal mitochondrial respiration in motor neurons from SMA mice. Using a reduction-oxidation sensitive GFP and fluorescence sensors specifically targeted to mitochondria, we found increased oxidative stress level and impaired mitochondrial membrane potential in motor neurons affected by SMA. In addition, mitochondrial mobility was impaired in SMA disease conditions, with decreased retrograde transport but no effect on anterograde transport. We also found significantly increased fragmentation of the mitochondrial network in primary motor neurons from SMA mice, with no change in mitochondria density. Electron microscopy study of SMA mouse spinal cord revealed mitochondria fragmentation, edema and concentric lamellar inclusions in motor neurons affected by the disease. Intriguingly, these functional and structural deficiencies in the SMA mouse model occur during the presymptomatic stage of disease, suggesting a role in initiating SMA. Altogether, our findings reveal a critical role for mitochondrial defects in SMA pathogenesis and suggest a novel target for improving tissue health in the disease.

SUBMITTER: Miller N 

PROVIDER: S-EPMC5179954 | biostudies-literature | 2016 Aug

REPOSITORIES: biostudies-literature

altmetric image

Publications

Motor neuron mitochondrial dysfunction in spinal muscular atrophy.

Miller Nimrod N   Shi Han H   Zelikovich Aaron S AS   Ma Yong-Chao YC  

Human molecular genetics 20160803 16


Spinal muscular atrophy (SMA), the leading genetic cause of infant mortality, predominantly affects high metabolic tissues including motor neurons, skeletal muscles and the heart. Although the genetic cause of SMA has been identified, mechanisms underlying tissue-specific vulnerability are not well understood. To study these mechanisms, we carried out a deep sequencing analysis of the transcriptome of spinal motor neurons in an SMA mouse model, in which we unexpectedly found changes in many gene  ...[more]

Similar Datasets

| S-EPMC10119066 | biostudies-literature
| S-EPMC9503857 | biostudies-literature
2024-05-09 | PXD045401 | JPOST Repository
2023-03-08 | GSE207890 | GEO
| S-EPMC4090017 | biostudies-literature
2017-04-10 | GSE86908 | GEO
| S-EPMC3696827 | biostudies-other
| S-EPMC3845193 | biostudies-literature
2020-08-10 | GSE140018 | GEO
| S-EPMC5747328 | biostudies-literature