Genome-wide translation control analysis of developing human neurons
Érico Moreto Lins, Natássia Cristina Martins Oliveira, Osvaldo Reis, Adriano Ferrasa, Roberto Herai, Alysson R. Muotri, Katlin Brauer Massirer, Mário Henrique Bengtson
ARTIGO
Inglês
Agradecimentos: We thank the staff of the Life Sciences Core Facility (LaCTAD) from State University of Campinas (UNICAMP), for the next generation sequencing technical support. This work was funded by the Brazilian agencies FAPESP (Grants n. 2014/21704-9 and n. 2014/50897-0 to M.H.B., n....
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Agradecimentos: We thank the staff of the Life Sciences Core Facility (LaCTAD) from State University of Campinas (UNICAMP), for the next generation sequencing technical support. This work was funded by the Brazilian agencies FAPESP (Grants n. 2014/21704-9 and n. 2014/50897-0 to M.H.B., n. 2012/0195-3 to K.B.M and PhD fellowship n. 2015/21433-8 to E.M.L.), CAPES (postdoc fellowship n. 465651/2014-3 to N.C.M.O and fellowship 88887.625309/2021–00 to E.M.L.) and CNPq (postdoc fellowship n. 152164/2016-2 to N.C.M.O and grant n. 421722/2016-9 to M.H.B.)
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Abstract: During neuronal differentiation, neuroprogenitor cells become polarized, change shape, extend axons, and form complex dendritic trees. While growing, axons are guided by molecular cues to their final destination, where they establish synaptic connections with other neuronal cells. Several...
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Abstract: During neuronal differentiation, neuroprogenitor cells become polarized, change shape, extend axons, and form complex dendritic trees. While growing, axons are guided by molecular cues to their final destination, where they establish synaptic connections with other neuronal cells. Several layers of regulation are integrated to control neuronal development properly. Although control of mRNA translation plays an essential role in mammalian gene expression, how it contributes temporarily to the modulation of later stages of neuronal differentiation remains poorly understood. Here, we investigated how translation control affects pathways and processes essential for neuronal maturation, using H9-derived human neuro progenitor cells differentiated into neurons as a model. Through Ribosome Profiling (Riboseq) combined with RNA sequencing (RNAseq) analysis, we found that translation control regulates the expression of critical hub genes. Fundamental synaptic vesicle secretion genes belonging to SNARE complex, Rab family members, and vesicle acidification ATPases are strongly translationally regulated in developing neurons. Translational control also participates in neuronal metabolism modulation, particularly affecting genes involved in the TCA cycle and glutamate synthesis/catabolism. Importantly, we found translation regulation of several critical genes with fundamental roles regulating actin and microtubule cytoskeleton pathways, critical to neurite generation, spine formation, axon guidance, and circuit formation. Our results show that translational control dynamically integrates important signals in neurons, regulating several aspects of its development and biology
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FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULO - FAPESP
2012/0195-3; 2014/21704-9; 2014/50897-0; 2015/21433-8
COORDENAÇÃO DE APERFEIÇOAMENTO DE PESSOAL DE NÍVEL SUPERIOR - CAPES
88887.625309/2021–00
CONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICO - CNPQ
465651/2014-3; 152164/2016-2; 421722/2016-9
Aberto
Genome-wide translation control analysis of developing human neurons
Érico Moreto Lins, Natássia Cristina Martins Oliveira, Osvaldo Reis, Adriano Ferrasa, Roberto Herai, Alysson R. Muotri, Katlin Brauer Massirer, Mário Henrique Bengtson
Genome-wide translation control analysis of developing human neurons
Érico Moreto Lins, Natássia Cristina Martins Oliveira, Osvaldo Reis, Adriano Ferrasa, Roberto Herai, Alysson R. Muotri, Katlin Brauer Massirer, Mário Henrique Bengtson
Fontes
Molecular brain (Fonte avulsa) |