Comparative developmental transcriptomics of Drosophila mushroom body neurons highlights the mevalonate pathway as a regulator of axon growth
Fahdan, L.; Meltzer, H.; Wigoda, N.; Rotkopf, R.; Schuldiner, O.
Show abstract
The ability of neurons to extend axons is governed by tightly regulated genetic programs that vary across developmental stages and cell types. Understanding the molecular features that control axon growth potential is critical for uncovering how neural circuits form, mature, and respond to injury or disease. The Drosophila mushroom body (MB) offers a powerful model to dissect axon growth programs, as lineage-related Kenyon cells (KCs) undergo different developmental events under shared spatiotemporal conditions. During metamorphosis, {gamma}-KCs undergo axon pruning, followed by developmental regrowth at the same time-frame as /{beta}-KCs initiate axon growth - thus providing a unique opportunity to compare these distinct growth paradigms. We thus performed RNA-sequencing of /{beta}-and {gamma}-KCs during their initial growth and developmental regrowth, respectively, revealing dynamic transcriptional changes and identifying 300 shared genes upregulated during both growth states. A targeted loss-of-function screen revealed genes specifically required for either /{beta} initial growth, {gamma} regrowth, or both. Focusing on one such candidate, Pmvk, we found that it plays a crucial role in axon regrowth by acting within the mevalonate pathway. Notably, other enzymes in this pathway were also required, suggesting that the entire metabolic pathway is essential for supporting regrowth. Genetic mutant analyses and rescue exepriements suggest that Pmvk likely controls axon regrowth via Rheb, an effector of the TOR pathway, which we previously found to be required for regrowth. Our developmental transcriptomic atlas not only advances understanding of intrinsic axon growth programs, but also provides candidate genes and a valuable framework for future studies aimed at enhancing axon regeneration in the adult nervous system.
Matching journals
The top 1 journal accounts for 50% of the predicted probability mass.
Similar papers in this journal
- Modular transcriptional programs separately define axon and dendrite connectivity 97%
- A locomotor neural circuit persists and functions similarly in larvae and adult Drosophila 97%
- Editing of endogenous tubulins reveals varying effects of tubulin posttranslational modifications on axonal growth and regeneration 97%
Similar papers in this journal
- Simultaneous suppression of ribosome biogenesis and Tor activation by TRIM-NHL proteins promotes terminal differentiation 97%
- isoTarget: a genetic method for analyzing the functional diversity of splicing isoforms in vivo 97%
- Widespread non-apoptotic activation of Drosophila Caspase-2/9 limits JNK signaling, macrophage proliferation and growth of wound-like tumors 97%
Similar papers in this journal
- Drebrin Regulates Collateral Axon Branching in Cortical Layer II/III Somatosensory Neurons 96%
- Constitutive and conditional epitope-tagging of endogenous G protein coupled receptors in Drosophila 96%
- Impairment of the glial phagolysosomal system drives prion-like propagation in a Drosophila model of Huntington's disease 96%
Similar papers in this journal
Similar papers in this journal
- Discoidin domain receptor regulates ensheathment, survival, and caliber of peripheral axons 97%
- Seven-up acts in neuroblasts to specify adult central complex neuron identity and initiate neuroblast decommissioning 97%
- Castor is a temporal transcription factor that specifies early born central complex neuron identity 97%
"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.