Sequential and additive expression of miR-9 precursors control timing of neurogenesis

Author:

Soto Ximena1ORCID,Burton Joshua2ORCID,Manning Cerys S.1ORCID,Minchington Thomas3,Lea Robert1,Lee Jessica4,Kursawe Jochen5,Rattray Magnus2ORCID,Papalopulu Nancy1ORCID

Affiliation:

1. School of Medical Sciences, Faculty of Biology, Medicine and Health, The University of Manchester 1 Division of Developmental Biology and Medicine , , Oxford Road, Manchester, M13 9PT , UK

2. The University of Manchester 5 Division of Informatics, Imaging and Data Sciences, Faculty of Biology, Medicine and Health , , Oxford Road, Manchester M13 9PT , UK

3. Institute of Science and Technology Austria (IST Austria) 2 , Am Campus 1, 3400 Klosterneuburg , Austria

4. Discovery Department, Medicines Discovery Catapult 3 , Block 35, Mereside, Alderley Park, Alderley Edge, Cheshire, SK10 4TG , UK

5. School of Mathematics and Statistics, University of St Andrews 4 , North Haugh, St Andrews, KY16 9SS , UK

Abstract

ABSTRACT MicroRNAs (miRs) have an important role in tuning dynamic gene expression. However, the mechanism by which they are quantitatively controlled is unknown. We show that the amount of mature miR-9, a key regulator of neuronal development, increases during zebrafish neurogenesis in a sharp stepwise manner. We characterize the spatiotemporal profile of seven distinct microRNA primary transcripts (pri-mir)-9s that produce the same mature miR-9 and show that they are sequentially expressed during hindbrain neurogenesis. Expression of late-onset pri-mir-9-1 is added on to, rather than replacing, the expression of early onset pri-mir-9-4 and -9-5 in single cells. CRISPR/Cas9 mutation of the late-onset pri-mir-9-1 prevents the developmental increase of mature miR-9, reduces late neuronal differentiation and fails to downregulate Her6 at late stages. Mathematical modelling shows that an adaptive network containing Her6 is insensitive to linear increases in miR-9 but responds to stepwise increases of miR-9. We suggest that a sharp stepwise increase of mature miR-9 is created by sequential and additive temporal activation of distinct loci. This may be a strategy to overcome adaptation and facilitate a transition of Her6 to a new dynamic regime or steady state.

Funder

Wellcome Trust

Medical Research Council

The University of Manchester

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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