Affiliation:
1. Department of Neuroscience, Sussex Neuroscience, School of Life Sciences, University of Sussex
Abstract
Movement is a key feature of animal systems, yet its embryonic origins are not fully understood. Here we investigate the genetic basis underlying the embryonic onset of movement in
Drosophila
focusing on the role played by small non-coding RNAs (microRNAs, miRNAs). To this end, we first develop a quantitative behavioural pipeline capable of tracking embryonic movement in large populations of fly embryos, and using this system, discover that the
Drosophila
miRNA
miR-2b-1
plays a role in the emergence of movement. Through the combination of spectral analysis of embryonic motor patterns, cell sorting and RNA
in situs
, genetic reconstitution tests, and neural optical imaging we define that
miR-2b-1
influences the emergence of embryonic movement by exerting actions in the developing nervous system. Furthermore, through the combination of bioinformatics coupled to genetic manipulation of miRNA expression and phenocopy tests we identify a previously uncharacterised (but evolutionarily conserved) chloride channel encoding gene – which we term
Mo
vement Modula
tor
(
Motor)
– as a genetic target that mechanistically links
miR-2b-1
to the onset of movement. Cell-specific genetic reconstitution of
miR-2b-1
expression in a null miRNA mutant background, followed by behavioural assays and target gene analyses, suggest that
miR-2b-1
affects the emergence of movement through effects in sensory elements of the embryonic circuitry, rather than in the motor domain. Our work thus reports the first miRNA system capable of regulating embryonic movement, suggesting that other miRNAs are likely to play a role in this key developmental process in
Drosophila
as well as in other species.
Publisher
eLife Sciences Publications, Ltd