Autophagy collaborates with apoptosis pathways to control myelination specificity and function
Zhang, T.; Bae, H.-G.; Bhambri, A.; Zhang, Y.; Barbosa, D.; Xue, J.; Wazir, S.; Mulinyawe, S. B.; Kim, J. H.; Sun, L. O.
Show abstract
Oligodendrocytes are the sole myelin producing cells in the central nervous system. Oligodendrocyte numbers are tightly controlled across diverse brain regions to match local axon type and number, but the underlying mechanisms and functional significance remain unclear. Here, we show that autophagy, an evolutionarily conserved cellular process that promotes cell survival under canonical settings, elicits premyelinating oligodendrocyte apoptosis during development and regulates critical aspects of nerve pulse propagation. Autophagy flux is increased in premyelinating oligodendrocytes, and its genetic blockage causes ectopic oligodendrocyte survival throughout the entire brain. Autophagy acts in the TFEB-Bax/Bak pathway and elevates PUMA mRNA levels to trigger premyelinating oligodendrocyte apoptosis cell-autonomously. Autophagy continuously functions in the myelinating oligodendrocytes to limit myelin sheath numbers and fine-tune nerve pulse propagation. Our results provide in vivo evidence showing that autophagy promotes apoptosis in mammalian cells under physiological conditions and reveal key intrinsic mechanisms governing oligodendrocyte number. HIGHLIGHTSO_LIAutophagy flux increases in the premyelinating and myelinating oligodendrocytes C_LIO_LIAutophagy promotes premyelinating oligodendrocyte (pre-OL) apoptosis to control myelination location and timing C_LIO_LIAutophagy acts in the TFEB-PUMA-Bax/Bak pathway and elevates PUMA mRNA levels to determine pre-OL fate C_LIO_LIAutophagy continuously functions in the myelinating oligodendrocytes to limit myelin sheath thickness and finetune nerve pulse propagation C_LI
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Oligodendrocyte-lineage cell exocytosis and L-type prostaglandin D synthase 1 promote oligodendrocyte development and myelination 96%
- Transient regulation of focal adhesion via Tensin3 is required for nascent oligodendrocyte differentiation 96%
- Stage-specific control of oligodendrocyte survival and morphogenesis by TDP-43 95%
Similar papers in this journal
- Role of PARP1 in oligodendrocyte differentiation during developmental myelination and remyelination after myelin damage 96%
- Human glial progenitor cells effectively remyelinate the demyelinated adult brain 95%
- Distinct progenitor behavior underlying neocortical gliogenesis related to tumorigenesis 95%
Similar papers in this journal
- Insights into the mechanism of oligodendrocyte protection and remyelination enhancement by the integrated stress response 94%
- SKAP2 as a new regulator of oligodendroglial migration and myelin sheath formation 94%
- Brain injuries and complex motor learning suppress Olig2 in a subpopulation of oligodendrocyte precursor cells 94%
Similar papers in this journal
- Overcoming the inhibitory microenvironment surrounding oligodendrocyte progenitor cells following demyelination 95%
- Ten-eleven translocation 1 Mediated-DNA Hydroxymethylation is Required for Myelination and Remyelination in the Mouse Brain 95%
- Gsta4 controls apoptosis of differentiating adult oligodendrocytes during homeostasis and remyelination via the mitochondria-associated Fas/Casp8/Bid-axis 95%
Similar papers in this journal
- Sustained ErbB activation causes demyelination and hypomyelination by driving necroptosis of mature oligodendrocytes and apoptosis of oligodendrocyte precursor cells 96%
- HIFα regulates developmental myelination independent of autocrine Wnt signaling 95%
- p75NTR and DR6 regulate distinct phases of axon degeneration demarcated by spheroid rupture. 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.