Search bioRxiv⌕ Search

Biology subjects

Madhwani, K. R.

Publications and source records attributed to Madhwani, K. R..

2 recordsLinked to original sources

tRNA modification enzyme-dependent redox homeostasis regulates synapse formation and memory

Post-transcriptional modification of RNA regulates gene expression at multiple levels. ALKBH8 is a tRNA modifying enzyme that methylates wobble uridines in specific tRNAs to modulate translation. Through methylation of tRNA-selenocysteine, ALKBH8 promotes selenoprotein synthesis and regulates redox homeostasis. Pathogenic variants in ALKBH8 have been linked to intellectual disability disorders in the human population, but the role of ALKBH8 in the nervous system is unknown. Through in vivo studies in Drosophila, we show that ALKBH8 controls oxidative stress in the brain to restrain synaptic growth and support learning and memory. ALKBH8 null animals lack wobble uridine methylation and exhibit a global reduction in protein synthesis, including a specific decrease in selenoprotein levels. Loss of ALKBH8 or independent disruption of selenoprotein synthesis results in ectopic synapse formation. Genetic expression of antioxidant enzymes fully suppresses synaptic overgrowth in ALKBH8 null animals, confirming oxidative stress as the underlying cause of dysregulation. ALKBH8 animals also exhibit associative learning and memory impairments that are reversed by pharmacological antioxidant treatment. Together, these findings demonstrate the critical role of tRNA modification in redox homeostasis in the nervous system and reveal antioxidants as a potential therapy for ALKBH8-associated intellectual disability. Significance StatementtRNA modifying enzymes are emerging as important regulators of nervous system development and function due to their growing links to neurological disorders. Yet, their roles in the nervous system remain largely elusive. Through in vivo studies in Drosophila, we link tRNA methyltransferase-regulated selenoprotein synthesis to synapse development and associative memory. These findings demonstrate the key role of tRNA modifiers in redox homeostasis during nervous system development and highlight the potential therapeutic benefit of antioxidant-based therapies for cognitive disorders linked to dysregulation of tRNA modification.

cell biology↗

Expanded tRNA methyltransferase family member TRMT9B regulates synaptic growth and function

Nervous system function relies on the formation and function of synaptic connections between neurons. Through a genetic screen in Drosophila for new conserved synaptic genes, we identified CG42261/Fid/ TRMT9B as a negative regulator of synaptogenesis. TRMT9B has been studied for its role as a tumor suppressor in multiple carcinomas and is one of two metazoan homologs of yeast tRNA methyltransferase 9 (Trm9), which methylates tRNA wobble uridines. Members of the expanded family of tRNA methyltransferases are increasingly being associated with neurological disorders and new biochemical functions. Interestingly, whereas Trm9 homolog ALKBH8/CG17807 is ubiquitously expressed, we find that TRMT9B is enriched in the nervous system, including at synapses. However, in the absence of animal models the role of TRMT9B in the nervous system has remained unknown. Here, we generated null alleles of TRMT9B and ALKBH8, and through liquid chromatography-mass spectrometry find that ALKBH8 is responsible for canonical tRNA wobble uridine methylation under basal conditions. In the nervous system, we find that TRMT9B negatively regulates synaptogenesis through a methyltransferase-dependent mechanism in agreement with our modeling studies. Finally, we find that neurotransmitter release is impaired in TRMT9B mutants. Our findings reveal a role for TRMT9B in regulating synapse formation and function, and highlight the importance of the expanded family of tRNA methyltransferases in the nervous system.

neuroscience↗