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Two intrinsic timing mechanisms set start and end times for dendritic arborization of a nociceptive neuron

Choreographic dendritic arborization takes place within a defined time frame, but the timing mechanism is currently not known. Here, we report that the precisely timed lin-4-lin-14 regulatory circuit triggers an initial dendritic growth activity, whereas the precisely timed lin-28-let-7-lin-41 regul...

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Autores principales: Suzuki, Nobuko, Zou, Yan, Sun, HaoSheng, Eichel, Kelsie, Shao, Meiyu, Shih, Mushaine, Shen, Kang, Chang, Chieh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9659368/
https://www.ncbi.nlm.nih.gov/pubmed/36322763
http://dx.doi.org/10.1073/pnas.2210053119
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author Suzuki, Nobuko
Zou, Yan
Sun, HaoSheng
Eichel, Kelsie
Shao, Meiyu
Shih, Mushaine
Shen, Kang
Chang, Chieh
author_facet Suzuki, Nobuko
Zou, Yan
Sun, HaoSheng
Eichel, Kelsie
Shao, Meiyu
Shih, Mushaine
Shen, Kang
Chang, Chieh
author_sort Suzuki, Nobuko
collection PubMed
description Choreographic dendritic arborization takes place within a defined time frame, but the timing mechanism is currently not known. Here, we report that the precisely timed lin-4-lin-14 regulatory circuit triggers an initial dendritic growth activity, whereas the precisely timed lin-28-let-7-lin-41 regulatory circuit signals a subsequent developmental decline in dendritic growth ability, hence restricting dendritic arborization within a set time frame. Loss-of-function mutations in the lin-4 microRNA gene cause limited dendritic outgrowth, whereas loss-of-function mutations in its direct target, the lin-14 transcription factor gene, cause precocious and excessive outgrowth. In contrast, loss-of-function mutations in the let-7 microRNA gene prevent a developmental decline in dendritic growth ability, whereas loss-of-function mutations in its direct target, the lin-41 tripartite motif protein gene, cause further decline. lin-4 and let-7 regulatory circuits are expressed in the right place at the right time to set start and end times for dendritic arborization. Replacing the lin-4 upstream cis-regulatory sequence at the lin-4 locus with a late-onset let-7 upstream cis-regulatory sequence delays dendrite arborization, whereas replacing the let-7 upstream cis-regulatory sequence at the let-7 locus with an early-onset lin-4 upstream cis-regulatory sequence causes a precocious decline in dendritic growth ability. Our results indicate that the lin-4-lin-14 and the lin-28-let-7-lin-41 regulatory circuits control the timing of dendrite arborization through antagonistic regulation of the DMA-1 receptor level on dendrites. The LIN-14 transcription factor likely directly represses dma-1 gene expression through a transcriptional means, whereas the LIN-41 tripartite motif protein likely indirectly promotes dma-1 gene expression through a posttranscriptional means.
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spelling pubmed-96593682023-05-02 Two intrinsic timing mechanisms set start and end times for dendritic arborization of a nociceptive neuron Suzuki, Nobuko Zou, Yan Sun, HaoSheng Eichel, Kelsie Shao, Meiyu Shih, Mushaine Shen, Kang Chang, Chieh Proc Natl Acad Sci U S A Biological Sciences Choreographic dendritic arborization takes place within a defined time frame, but the timing mechanism is currently not known. Here, we report that the precisely timed lin-4-lin-14 regulatory circuit triggers an initial dendritic growth activity, whereas the precisely timed lin-28-let-7-lin-41 regulatory circuit signals a subsequent developmental decline in dendritic growth ability, hence restricting dendritic arborization within a set time frame. Loss-of-function mutations in the lin-4 microRNA gene cause limited dendritic outgrowth, whereas loss-of-function mutations in its direct target, the lin-14 transcription factor gene, cause precocious and excessive outgrowth. In contrast, loss-of-function mutations in the let-7 microRNA gene prevent a developmental decline in dendritic growth ability, whereas loss-of-function mutations in its direct target, the lin-41 tripartite motif protein gene, cause further decline. lin-4 and let-7 regulatory circuits are expressed in the right place at the right time to set start and end times for dendritic arborization. Replacing the lin-4 upstream cis-regulatory sequence at the lin-4 locus with a late-onset let-7 upstream cis-regulatory sequence delays dendrite arborization, whereas replacing the let-7 upstream cis-regulatory sequence at the let-7 locus with an early-onset lin-4 upstream cis-regulatory sequence causes a precocious decline in dendritic growth ability. Our results indicate that the lin-4-lin-14 and the lin-28-let-7-lin-41 regulatory circuits control the timing of dendrite arborization through antagonistic regulation of the DMA-1 receptor level on dendrites. The LIN-14 transcription factor likely directly represses dma-1 gene expression through a transcriptional means, whereas the LIN-41 tripartite motif protein likely indirectly promotes dma-1 gene expression through a posttranscriptional means. National Academy of Sciences 2022-11-02 2022-11-08 /pmc/articles/PMC9659368/ /pubmed/36322763 http://dx.doi.org/10.1073/pnas.2210053119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Suzuki, Nobuko
Zou, Yan
Sun, HaoSheng
Eichel, Kelsie
Shao, Meiyu
Shih, Mushaine
Shen, Kang
Chang, Chieh
Two intrinsic timing mechanisms set start and end times for dendritic arborization of a nociceptive neuron
title Two intrinsic timing mechanisms set start and end times for dendritic arborization of a nociceptive neuron
title_full Two intrinsic timing mechanisms set start and end times for dendritic arborization of a nociceptive neuron
title_fullStr Two intrinsic timing mechanisms set start and end times for dendritic arborization of a nociceptive neuron
title_full_unstemmed Two intrinsic timing mechanisms set start and end times for dendritic arborization of a nociceptive neuron
title_short Two intrinsic timing mechanisms set start and end times for dendritic arborization of a nociceptive neuron
title_sort two intrinsic timing mechanisms set start and end times for dendritic arborization of a nociceptive neuron
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9659368/
https://www.ncbi.nlm.nih.gov/pubmed/36322763
http://dx.doi.org/10.1073/pnas.2210053119
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