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Splice variants of DOMINO control Drosophila circadian behavior and pacemaker neuron maintenance

Circadian clocks control daily rhythms in behavior and physiology. In Drosophila, the small ventral lateral neurons (sLN(v)s) expressing PIGMENT DISPERSING FACTOR (PDF) are the master pacemaker neurons generating locomotor rhythms. Despite the importance of sLN(v)s and PDF in circadian behavior, lit...

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Autores principales: Liu, Zhenxing, Tabuloc, Christine A., Xue, Yongbo, Cai, Yao, Mcintire, Pearson, Niu, Ye, Lam, Vu H., Chiu, Joanna C., Zhang, Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6837581/
https://www.ncbi.nlm.nih.gov/pubmed/31658266
http://dx.doi.org/10.1371/journal.pgen.1008474
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author Liu, Zhenxing
Tabuloc, Christine A.
Xue, Yongbo
Cai, Yao
Mcintire, Pearson
Niu, Ye
Lam, Vu H.
Chiu, Joanna C.
Zhang, Yong
author_facet Liu, Zhenxing
Tabuloc, Christine A.
Xue, Yongbo
Cai, Yao
Mcintire, Pearson
Niu, Ye
Lam, Vu H.
Chiu, Joanna C.
Zhang, Yong
author_sort Liu, Zhenxing
collection PubMed
description Circadian clocks control daily rhythms in behavior and physiology. In Drosophila, the small ventral lateral neurons (sLN(v)s) expressing PIGMENT DISPERSING FACTOR (PDF) are the master pacemaker neurons generating locomotor rhythms. Despite the importance of sLN(v)s and PDF in circadian behavior, little is known about factors that control sLN(v)s maintenance and PDF accumulation. Here, we identify the Drosophila SWI2/SNF2 protein DOMINO (DOM) as a key regulator of circadian behavior. Depletion of DOM in circadian neurons eliminates morning anticipatory activity under light dark cycle and impairs behavioral rhythmicity in constant darkness. Interestingly, the two major splice variants of DOM, DOM-A and DOM-B have distinct circadian functions. DOM-A depletion mainly leads to arrhythmic behavior, while DOM-B knockdown lengthens circadian period without affecting the circadian rhythmicity. Both DOM-A and DOM-B bind to the promoter regions of key pacemaker genes period and timeless, and regulate their protein expression. However, we identify that only DOM-A is required for the maintenance of sLNvs and transcription of pdf. Lastly, constitutive activation of PDF-receptor signaling rescued the arrhythmia and period lengthening of DOM downregulation. Taken together, our findings reveal that two splice variants of DOM play distinct roles in circadian rhythms through regulating abundance of pacemaker proteins and sLN(v)s maintenance.
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spelling pubmed-68375812019-11-12 Splice variants of DOMINO control Drosophila circadian behavior and pacemaker neuron maintenance Liu, Zhenxing Tabuloc, Christine A. Xue, Yongbo Cai, Yao Mcintire, Pearson Niu, Ye Lam, Vu H. Chiu, Joanna C. Zhang, Yong PLoS Genet Research Article Circadian clocks control daily rhythms in behavior and physiology. In Drosophila, the small ventral lateral neurons (sLN(v)s) expressing PIGMENT DISPERSING FACTOR (PDF) are the master pacemaker neurons generating locomotor rhythms. Despite the importance of sLN(v)s and PDF in circadian behavior, little is known about factors that control sLN(v)s maintenance and PDF accumulation. Here, we identify the Drosophila SWI2/SNF2 protein DOMINO (DOM) as a key regulator of circadian behavior. Depletion of DOM in circadian neurons eliminates morning anticipatory activity under light dark cycle and impairs behavioral rhythmicity in constant darkness. Interestingly, the two major splice variants of DOM, DOM-A and DOM-B have distinct circadian functions. DOM-A depletion mainly leads to arrhythmic behavior, while DOM-B knockdown lengthens circadian period without affecting the circadian rhythmicity. Both DOM-A and DOM-B bind to the promoter regions of key pacemaker genes period and timeless, and regulate their protein expression. However, we identify that only DOM-A is required for the maintenance of sLNvs and transcription of pdf. Lastly, constitutive activation of PDF-receptor signaling rescued the arrhythmia and period lengthening of DOM downregulation. Taken together, our findings reveal that two splice variants of DOM play distinct roles in circadian rhythms through regulating abundance of pacemaker proteins and sLN(v)s maintenance. Public Library of Science 2019-10-28 /pmc/articles/PMC6837581/ /pubmed/31658266 http://dx.doi.org/10.1371/journal.pgen.1008474 Text en © 2019 Liu et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Liu, Zhenxing
Tabuloc, Christine A.
Xue, Yongbo
Cai, Yao
Mcintire, Pearson
Niu, Ye
Lam, Vu H.
Chiu, Joanna C.
Zhang, Yong
Splice variants of DOMINO control Drosophila circadian behavior and pacemaker neuron maintenance
title Splice variants of DOMINO control Drosophila circadian behavior and pacemaker neuron maintenance
title_full Splice variants of DOMINO control Drosophila circadian behavior and pacemaker neuron maintenance
title_fullStr Splice variants of DOMINO control Drosophila circadian behavior and pacemaker neuron maintenance
title_full_unstemmed Splice variants of DOMINO control Drosophila circadian behavior and pacemaker neuron maintenance
title_short Splice variants of DOMINO control Drosophila circadian behavior and pacemaker neuron maintenance
title_sort splice variants of domino control drosophila circadian behavior and pacemaker neuron maintenance
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6837581/
https://www.ncbi.nlm.nih.gov/pubmed/31658266
http://dx.doi.org/10.1371/journal.pgen.1008474
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