Cell-type-specific profiling of brain mitochondria reveals functional and molecular diversity.
Caroline FecherLaura TrovòStephan A MüllerNicolas SnaideroJennifer WettmarshausenSylvia HeinkOskar OrtizIngrid WagnerRalf KühnJana HartmannRosa Maria KarlArthur KonnerthThomas KornWolfgang WurstDoron MerklerStefan F LichtenthalerFabiana PerocchiThomas MisgeldPublished in: Nature neuroscience (2019)
Mitochondria vary in morphology and function in different tissues; however, little is known about their molecular diversity among cell types. Here we engineered MitoTag mice, which express a Cre recombinase-dependent green fluorescent protein targeted to the outer mitochondrial membrane, and developed an isolation approach to profile tagged mitochondria from defined cell types. We determined the mitochondrial proteome of the three major cerebellar cell types (Purkinje cells, granule cells and astrocytes) and identified hundreds of mitochondrial proteins that are differentially regulated. Thus, we provide markers of cell-type-specific mitochondria for the healthy and diseased mouse and human central nervous systems, including in amyotrophic lateral sclerosis and Alzheimer's disease. Based on proteomic predictions, we demonstrate that astrocytic mitochondria metabolize long-chain fatty acids more efficiently than neuronal mitochondria. We also characterize cell-type differences in mitochondrial calcium buffering via the mitochondrial calcium uniporter (Mcu) and identify regulator of microtubule dynamics protein 3 (Rmdn3) as a determinant of endoplasmic reticulum-mitochondria proximity in Purkinje cells. Our approach enables exploring mitochondrial diversity in many in vivo contexts.
Keyphrases
- endoplasmic reticulum
- oxidative stress
- cell death
- induced apoptosis
- cell cycle arrest
- single cell
- reactive oxygen species
- cell therapy
- endothelial cells
- fatty acid
- stem cells
- transcription factor
- multiple sclerosis
- type diabetes
- small molecule
- mesenchymal stem cells
- cerebral ischemia
- quantum dots
- insulin resistance
- mild cognitive impairment
- pi k akt