Flies lacking all synapsins are unexpectedly healthy but are impaired in complex behaviour
- 15 July 2004
- journal article
- research article
- Published by Wiley in European Journal of Neuroscience
- Vol. 20 (3) , 611-622
- https://doi.org/10.1111/j.1460-9568.2004.03527.x
Abstract
Vertebrate synapsins are abundant synaptic vesicle phosphoproteins that have been proposed to fine‐regulate neurotransmitter release by phosphorylation‐dependent control of synaptic vesicle motility. However, the consequences of a total lack of all synapsin isoforms due to a knock‐out of all three mouse synapsin genes have not yet been investigated. In Drosophila a single synapsin gene encodes several isoforms and is expressed in most synaptic terminals. Thus the targeted deletion of the synapsin gene of Drosophila eliminates the possibility of functional knock‐out complementation by other isoforms. Unexpectedly, synapsin null mutant flies show no obvious defects in brain morphology, and no striking qualitative changes in behaviour are observed. Ultrastructural analysis of an identified ‘model’ synapse of the larval nerve muscle preparation revealed no difference between wild‐type and mutant, and spontaneous or evoked excitatory junction potentials at this synapse were normal up to a stimulus frequency of 5 Hz. However, when several behavioural responses were analysed quantitatively, specific differences between mutant and wild‐type flies are noted. Adult locomotor activity, optomotor responses at high pattern velocities, wing beat frequency, and visual pattern preference are modified. Synapsin mutant flies show faster habituation of an olfactory jump response, enhanced ethanol tolerance, and significant defects in learning and memory as measured using three different paradigms. Larval behavioural defects are described in a separate paper. We conclude that Drosophila synapsins play a significant role in nervous system function, which is subtle at the cellular level but manifests itself in complex behaviour.Keywords
This publication has 70 references indexed in Scilit:
- Memories in Drosophila Heat-box LearningLearning & Memory, 2002
- Extinction Antagonizes Olfactory Memory at the Subcellular LevelNeuron, 2002
- The Genome Sequence of Drosophila melanogasterScience, 2000
- Invertebrate Tissue Inhibitor of Metalloproteinase: Structure and Nested Gene Organization within the Synapsin Locus Is Conserved fromDrosophilato HumanGenomics, 1999
- Impaired learning in mice with abnormal short-lived plasticityCurrent Biology, 1996
- Essential functions of synapsins I and II in synaptic vesicle regulationNature, 1995
- Cellular mechanisms governing synaptic development in Drosophila melanogasterJournal of Neurobiology, 1993
- Synaptic Vesicle Phosphoproteins and Regulation of Synaptic FunctionScience, 1993
- SSB, an antigen that selectively labels morphologically distinct synaptic boutons at the Drosophila larval neuromuscular junctionJournal of Neurobiology, 1992
- Classical conditioning and retention in normal and mutantDrosophila melanogasterJournal of Comparative Physiology A, 1985