Literature DB >> 22956837

Characterization of Drosophila larval crawling at the level of organism, segment, and somatic body wall musculature.

Ellie S Heckscher1, Shawn R Lockery, Chris Q Doe.   

Abstract

Understanding rhythmic behavior at the developmental and genetic levels has important implications for neurobiology, medicine, evolution, and robotics. We studied rhythmic behavior--larval crawling--in the genetically and developmentally tractable organism, Drosophila melanogaster. We used narrow-diameter channels to constrain behavior to simple, rhythmic crawling. We quantified crawling at the organism, segment, and muscle levels. We showed that Drosophila larval crawling is made up of a series of periodic strides. Each stride consists of two phases. First, while most abdominal segments remain planted on the substrate, the head, tail, and gut translocate; this "visceral pistoning" moves the center of mass. The movement of the center of mass is likely powered by muscle contractions in the head and tail. Second, the head and tail anchor while a body wall wave moves each abdominal segment in the direction of the crawl. These two phases can be observed occurring independently in embryonic stages before becoming coordinated at hatching. During forward crawls, abdominal body wall movements are powered by simultaneous contraction of dorsal and ventral muscle groups, which occur concurrently with contraction of lateral muscles of the adjacent posterior segment. During reverse crawls, abdominal body wall movements are powered by phase-shifted contractions of dorsal and ventral muscles; and ventral muscle contractions occur concurrently with contraction of lateral muscles in the adjacent anterior segment. This work lays a foundation for use of Drosophila larva as a model system for studying the genetics and development of rhythmic behavior.

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Year:  2012        PMID: 22956837      PMCID: PMC3711835          DOI: 10.1523/JNEUROSCI.0222-12.2012

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  28 in total

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Authors:  J W Wang; A W Sylwester; D Reed; D A Wu; D R Soll; C F Wu
Journal:  J Neurogenet       Date:  1997-11       Impact factor: 1.250

3.  Embryonic assembly of a central pattern generator without sensory input.

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5.  Hox genes and the regulation of movement in Drosophila.

Authors:  Richa Dixit; K Vijayraghavan; Michael Bate
Journal:  Dev Neurobiol       Date:  2008-02-15       Impact factor: 3.964

6.  A sensory feedback circuit coordinates muscle activity in Drosophila.

Authors:  Cynthia L Hughes; John B Thomas
Journal:  Mol Cell Neurosci       Date:  2007-04-06       Impact factor: 4.314

7.  Motor patterns associated with crawling in a soft-bodied arthropod.

Authors:  Michael A Simon; Steven J Fusillo; Kara Colman; Barry A Trimmer
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8.  A new genetic model of activity-induced Ras signaling dependent pre-synaptic plasticity in Drosophila.

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Journal:  Brain Res       Date:  2010-02-26       Impact factor: 3.252

9.  Nociceptive neurons protect Drosophila larvae from parasitoid wasps.

Authors:  Richard Y Hwang; Lixian Zhong; Yifan Xu; Trevor Johnson; Feng Zhang; Karl Deisseroth; W Daniel Tracey
Journal:  Curr Biol       Date:  2007-11-29       Impact factor: 10.834

10.  Microfluidic devices for analysis of spatial orientation behaviors in semi-restrained Caenorhabditis elegans.

Authors:  Kathryn E McCormick; Bryn E Gaertner; Matthew Sottile; Patrick C Phillips; Shawn R Lockery
Journal:  PLoS One       Date:  2011-10-12       Impact factor: 3.240

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  78 in total

1.  Gap Junction-Mediated Signaling from Motor Neurons Regulates Motor Generation in the Central Circuits of Larval Drosophila.

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Journal:  J Neurosci       Date:  2017-01-23       Impact factor: 6.167

2.  Aversive and Appetitive Learning in Drosophila Larvae: A Simple and Powerful Suite of Laboratory Modules for Classroom or Open-ended Research Projects.

Authors:  Austin Pavin; Kevin Fain; Allison DeHart; Divya Sitaraman
Journal:  J Undergrad Neurosci Educ       Date:  2018-06-15

3.  Coordinated Movement: Watching Proprioception Unfold.

Authors:  Craig Montell
Journal:  Curr Biol       Date:  2019-03-18       Impact factor: 10.834

Review 4.  Midline axon guidance in the Drosophila embryonic central nervous system.

Authors:  LaFreda J Howard; Haley E Brown; Benjamin C Wadsworth; Timothy A Evans
Journal:  Semin Cell Dev Biol       Date:  2017-11-27       Impact factor: 7.727

5.  Coordinated crawling via reinforcement learning.

Authors:  Shruti Mishra; Wim M van Rees; L Mahadevan
Journal:  J R Soc Interface       Date:  2020-08-26       Impact factor: 4.118

6.  Mechanical Properties of a Drosophila Larval Chordotonal Organ.

Authors:  Achintya Prahlad; Christian Spalthoff; Deqing Kong; Jörg Großhans; Martin C Göpfert; Christoph F Schmidt
Journal:  Biophys J       Date:  2017-12-19       Impact factor: 4.033

7.  Direction Selectivity in Drosophila Proprioceptors Requires the Mechanosensory Channel Tmc.

Authors:  Liping He; Sarun Gulyanon; Mirna Mihovilovic Skanata; Doycho Karagyozov; Ellie S Heckscher; Michael Krieg; Gavriil Tsechpenakis; Marc Gershow; W Daniel Tracey
Journal:  Curr Biol       Date:  2019-03-07       Impact factor: 10.834

8.  Input-Specific Plasticity and Homeostasis at the Drosophila Larval Neuromuscular Junction.

Authors:  Zachary L Newman; Adam Hoagland; Krishan Aghi; Kurtresha Worden; Sabrina L Levy; Jun Ho Son; Luke P Lee; Ehud Y Isacoff
Journal:  Neuron       Date:  2017-03-09       Impact factor: 17.173

9.  Transient BK outward current enhances motoneurone firing rates during Drosophila larval locomotion.

Authors:  Dimitrios Kadas; Stefanie Ryglewski; Carsten Duch
Journal:  J Physiol       Date:  2015-10-02       Impact factor: 5.182

10.  Quantitative neuroanatomy for connectomics in Drosophila.

Authors:  Casey M Schneider-Mizell; Stephan Gerhard; Mark Longair; Tom Kazimiers; Feng Li; Maarten F Zwart; Andrew Champion; Frank M Midgley; Richard D Fetter; Stephan Saalfeld; Albert Cardona
Journal:  Elife       Date:  2016-03-18       Impact factor: 8.140

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