Literature DB >> 23407156

Laser-inflicted injury of zebrafish embryonic skeletal muscle.

Cécile Otten1, Salim Abdelilah-Seyfried.   

Abstract

Various experimental approaches have been used in mouse to induce muscle injury with the aim to study muscle regeneration, including myotoxin injections (bupivacaine, cardiotoxin or notexin), muscle transplantations (denervation-devascularization induced regeneration), intensive exercise, but also murine muscular dystrophy models such as the mdx mouse (for a review of these approaches see). In zebrafish, genetic approaches include mutants that exhibit muscular dystrophy phenotypes (such as runzel or sapje) and antisense oligonucleotide morpholinos that block the expression of dystrophy-associated genes. Besides, chemical approaches are also possible, e.g. with Galanthamine, a chemical compound inhibiting acetylcholinesterase, thereby resulting in hypercontraction, which eventually leads to muscular dystrophy. However, genetic and pharmacological approaches generally affect all muscles within an individual, whereas the extent of physically inflicted injuries are more easily controlled spatially and temporally. Localized physical injury allows the assessment of contralateral muscle as an internal control. Indeed, we recently used laser-mediated cell ablation to study skeletal muscle regeneration in the zebrafish embryo, while another group recently reported the use of a two-photon laser (822 nm) to damage very locally the plasma membrane of individual embryonic zebrafish muscle cells. Here, we report a method for using the micropoint laser (Andor Technology) for skeletal muscle cell injury in the zebrafish embryo. The micropoint laser is a high energy laser which is suitable for targeted cell ablation at a wavelength of 435 nm. The laser is connected to a microscope (in our setup, an optical microscope from Zeiss) in such a way that the microscope can be used at the same time for focusing the laser light onto the sample and for visualizing the effects of the wounding (brightfield or fluorescence). The parameters for controlling laser pulses include wavelength, intensity, and number of pulses. Due to its transparency and external embryonic development, the zebrafish embryo is highly amenable for both laser-induced injury and for studying the subsequent recovery. Between 1 and 2 days post-fertilization, somitic skeletal muscle cells progressively undergo maturation from anterior to posterior due to the progression of somitogenesis from the trunk to the tail. At these stages, embryos spontaneously twitch and initiate swimming. The zebrafish has recently been recognized as an important vertebrate model organism for the study of tissue regeneration, as many types of tissues (cardiac, neuronal, vascular etc.) can be regenerated after injury in the adult zebrafish.

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Mesh:

Year:  2013        PMID: 23407156      PMCID: PMC3582513          DOI: 10.3791/4351

Source DB:  PubMed          Journal:  J Vis Exp        ISSN: 1940-087X            Impact factor:   1.355


  12 in total

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3.  Stages of embryonic development of the zebrafish.

Authors:  C B Kimmel; W W Ballard; S R Kimmel; B Ullmann; T F Schilling
Journal:  Dev Dyn       Date:  1995-07       Impact factor: 3.780

Review 4.  Somite development in zebrafish.

Authors:  H L Stickney; M J Barresi; S H Devoto
Journal:  Dev Dyn       Date:  2000-11       Impact factor: 3.780

5.  Dynamic somite cell rearrangements lead to distinct waves of myotome growth.

Authors:  Frank Stellabotte; Betsy Dobbs-McAuliffe; Daniel A Fernández; Xuesong Feng; Stephen H Devoto
Journal:  Development       Date:  2007-02-21       Impact factor: 6.868

6.  Characterization of zebrafish dysferlin by morpholino knockdown.

Authors:  Genri Kawahara; Peter R Serafini; Jennifer A Myers; Matthew S Alexander; Louis M Kunkel
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7.  Identification of a zebrafish model of muscular dystrophy.

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Journal:  Clin Exp Pharmacol Physiol       Date:  2004-08       Impact factor: 2.557

8.  The use of zebrafish mutants to identify secondary target effects of acetylcholine esterase inhibitors.

Authors:  Martine Behra; Christelle Etard; Xavier Cousin; Uwe Strähle
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Review 9.  Cardiac regeneration.

Authors:  Wen-Yee Choi; Kenneth D Poss
Journal:  Curr Top Dev Biol       Date:  2012       Impact factor: 4.897

10.  Xirp proteins mark injured skeletal muscle in zebrafish.

Authors:  Cécile Otten; Peter F van der Ven; Ilka Lewrenz; Sandeep Paul; Almut Steinhagen; Elisabeth Busch-Nentwich; Jenny Eichhorst; Burkhard Wiesner; Derek Stemple; Uwe Strähle; Dieter O Fürst; Salim Abdelilah-Seyfried
Journal:  PLoS One       Date:  2012-02-15       Impact factor: 3.240

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  5 in total

1.  Mechanical vessel injury in zebrafish embryos.

Authors:  Hilary Clay; Shaun R Coughlin
Journal:  J Vis Exp       Date:  2015-02-17       Impact factor: 1.355

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Review 3.  The Diversity of Muscles and Their Regenerative Potential across Animals.

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Journal:  Cells       Date:  2020-08-19       Impact factor: 6.600

4.  Live imaging of wound angiogenesis reveals macrophage orchestrated vessel sprouting and regression.

Authors:  David B Gurevich; Charlotte E Severn; Catherine Twomey; Alexander Greenhough; Jenna Cash; Ashley M Toye; Harry Mellor; Paul Martin
Journal:  EMBO J       Date:  2018-06-04       Impact factor: 11.598

5.  Establishing a new animal model for muscle regeneration studies.

Authors:  Hossein Pourghadamyari; Mohammad Rezaei; Ali Ipakchi-Azimi; Shahram Eisa-Beygi; Mohsen Basiri; Yaser Tahamtani; Hossein Baharvand
Journal:  Mol Biol Res Commun       Date:  2019-12
  5 in total

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