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Published in: Anatomical Science International 4/2018

01-09-2018 | Original Article

From the primitive streak to the somitic mesoderm: labeling the early stages of chick embryos using EGFP transfection

Authors: Haiming Fan, Nobuyuki Sakamoto, Hirohiko Aoyama

Published in: Anatomical Science International | Issue 4/2018

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Abstract

Mesoderm is derived from the primitive streak. The rostral region of the primitive streak forms the somitic mesoderm. We have previously shown the developmental origin of each level of the somitic mesoderm using DiI fluorescence labeling of the primitive streak. We found that the more caudal segments were derived from the primitive streak during the later developmental stages. DiI labeled several pairs of somites and showed the distinct rostral boundary; however, the fluorescence gradually disappeared in the caudal region. This finding can be explained in two ways: the primitive streak at a specific developmental stage is primordial of only a certain number of pairs of somites, or the DiI fluorescent dye was gradually diluted within the primitive streak by cell division. Here, we traced the development of the primitive streak cells using enhanced green fluorescent protein (EGFP) transfection. We confirmed that, the later the EGFP transfection stage, the more caudal the somites labeled. Different from DiI labeling, EGFP transfection performed at any developmental stage labeled the entire somitic mesoderm from the anterior boundary to the tail bud in 4.5-day-old embryos. Furthermore, the secondary neural tube was also labeled, suggesting that not only the somite precursor cells but also the axial stem cells were labeled.
Literature
go back to reference Bortier H, Vakaet LCA (1992) Fate mapping the neural plate and the intraembryonic mesoblast in the upper layer of the chicken blastoderm with xenografting and time-lapse videography. Development (suppl.) 116:93–97 Bortier H, Vakaet LCA (1992) Fate mapping the neural plate and the intraembryonic mesoblast in the upper layer of the chicken blastoderm with xenografting and time-lapse videography. Development (suppl.) 116:93–97
go back to reference Brown JM, Storey KG (2000) A region of the vertebrate neural plate in which neighbouring cells can adopt neural or epidermal fates. Curr Biol 10:869–872CrossRefPubMed Brown JM, Storey KG (2000) A region of the vertebrate neural plate in which neighbouring cells can adopt neural or epidermal fates. Curr Biol 10:869–872CrossRefPubMed
go back to reference Catala M, Teillet M-A, De Robertis EM, Le Douarin NM (1996) A spinal cord fate map in the avian embryo: while regressing, Hensen’s node lays down the notochord and floor plate thus joining the spinal cord lateral walls. Development 122:2599–2610PubMed Catala M, Teillet M-A, De Robertis EM, Le Douarin NM (1996) A spinal cord fate map in the avian embryo: while regressing, Hensen’s node lays down the notochord and floor plate thus joining the spinal cord lateral walls. Development 122:2599–2610PubMed
go back to reference Chuai M, Weijer CJ (2009) Regulation of cell migration during chick gastrulation. Curr Opin Genet Dev 19:343–349CrossRefPubMed Chuai M, Weijer CJ (2009) Regulation of cell migration during chick gastrulation. Curr Opin Genet Dev 19:343–349CrossRefPubMed
go back to reference Garcia-Martinez V, Schoenwolf GC (1993) Primitive-streak origin of the cardiovascular system in avian embryos. Dev Biol 159:706–719CrossRefPubMed Garcia-Martinez V, Schoenwolf GC (1993) Primitive-streak origin of the cardiovascular system in avian embryos. Dev Biol 159:706–719CrossRefPubMed
go back to reference Gilbert SF, Barresi MJF (2016) Developmental biology, 11th edn. Sinauer Associates, Sunderland Gilbert SF, Barresi MJF (2016) Developmental biology, 11th edn. Sinauer Associates, Sunderland
go back to reference Griffith CM, Wiley MJ, Sanders EJ (1992) The vertebrate tail bud: three germ layers from one tissue. Anat Embryol (Berl) 185:101–113CrossRef Griffith CM, Wiley MJ, Sanders EJ (1992) The vertebrate tail bud: three germ layers from one tissue. Anat Embryol (Berl) 185:101–113CrossRef
go back to reference Hamburger V, Hamilton H (1951) A series of normal stages in the development of the chick embryo. J Morph 88:49–92CrossRefPubMed Hamburger V, Hamilton H (1951) A series of normal stages in the development of the chick embryo. J Morph 88:49–92CrossRefPubMed
go back to reference Hatada Y, Stern CD (1994) A fate map of the epiblast of the early chick embryo. Development 120:2879–2889PubMed Hatada Y, Stern CD (1994) A fate map of the epiblast of the early chick embryo. Development 120:2879–2889PubMed
go back to reference Kondoh H, Takemoto T (2012) Axial stem cells deriving both posterior neural and mesodermal tissues during gastrulation. Curr Opin Genet Dev 22:374–380CrossRefPubMed Kondoh H, Takemoto T (2012) Axial stem cells deriving both posterior neural and mesodermal tissues during gastrulation. Curr Opin Genet Dev 22:374–380CrossRefPubMed
go back to reference McGrew MJ, Dale JK, Fraboulet S, Pourquié O (1998) The lunatic Fringe gene is a target of the molecular clock linked to somite segmentation in avian embryos. Curr Biol 8:979–982CrossRefPubMed McGrew MJ, Dale JK, Fraboulet S, Pourquié O (1998) The lunatic Fringe gene is a target of the molecular clock linked to somite segmentation in avian embryos. Curr Biol 8:979–982CrossRefPubMed
go back to reference Momose T, Tanegawa A, Takeuchi J, Ogawa H, Umesono K, Yasuda K (1999) Efficient targeting of gene expression in chick embryos by microelectroporation. Dev Growth Differ 41:335–344CrossRefPubMed Momose T, Tanegawa A, Takeuchi J, Ogawa H, Umesono K, Yasuda K (1999) Efficient targeting of gene expression in chick embryos by microelectroporation. Dev Growth Differ 41:335–344CrossRefPubMed
go back to reference Psychoyos D, Stern CD (1996) Fates and migratory routes of primitive streak cells in the chick embryo. Development 122:1523–1534PubMed Psychoyos D, Stern CD (1996) Fates and migratory routes of primitive streak cells in the chick embryo. Development 122:1523–1534PubMed
go back to reference Sato Y, Kasai T, Nakagawa S, Tanabe K, Watanabe T, Kawakami K, Takahashi Y (2007) Stable integration and conditional expression of electroporated transgenes in chicken embryos. Dev Biol 305:616–624CrossRefPubMed Sato Y, Kasai T, Nakagawa S, Tanabe K, Watanabe T, Kawakami K, Takahashi Y (2007) Stable integration and conditional expression of electroporated transgenes in chicken embryos. Dev Biol 305:616–624CrossRefPubMed
go back to reference Sawada K, Aoyama H (1999) Fate maps of the primitive streak in chick and quail embryo: ingression timing of progenitor cells of each rostro-caudal axial level of somites. Int J Dev Biol 43:809–815PubMed Sawada K, Aoyama H (1999) Fate maps of the primitive streak in chick and quail embryo: ingression timing of progenitor cells of each rostro-caudal axial level of somites. Int J Dev Biol 43:809–815PubMed
go back to reference Schoenwolf GC, Smith JL (1990) Mechanisms of neurulation: traditional viewpoint and recent advances. Development 109:243–270PubMed Schoenwolf GC, Smith JL (1990) Mechanisms of neurulation: traditional viewpoint and recent advances. Development 109:243–270PubMed
go back to reference Schoenwolf GC, Garcia-Martinez V, Dias MS (1992) Mesoderm movement and fate during avian gastrulation and neurulation. Dev Dyn 193:235–248CrossRefPubMed Schoenwolf GC, Garcia-Martinez V, Dias MS (1992) Mesoderm movement and fate during avian gastrulation and neurulation. Dev Dyn 193:235–248CrossRefPubMed
go back to reference Shimokita E, Takahashi Y (2011) Secondary neurulation: fate-mapping and gene manipulation of the neural tube in tail bud. Dev Growth Differ 53:401–410CrossRefPubMed Shimokita E, Takahashi Y (2011) Secondary neurulation: fate-mapping and gene manipulation of the neural tube in tail bud. Dev Growth Differ 53:401–410CrossRefPubMed
go back to reference Takemoto T, Uchikawa M, Yoshida M, Bell DM, Badge RL, Papaioannou VE, Kondoh H (2011) Tbx6-dependent Sox2 regulation determines neural or mesodermal fate in axial stem cells. Nature 470:394–398CrossRefPubMedPubMedCentral Takemoto T, Uchikawa M, Yoshida M, Bell DM, Badge RL, Papaioannou VE, Kondoh H (2011) Tbx6-dependent Sox2 regulation determines neural or mesodermal fate in axial stem cells. Nature 470:394–398CrossRefPubMedPubMedCentral
go back to reference Tenin G, Wright D, Ferjentsik Z, Bone R, McGrew MJ, Maroto M (2010) The chick somitogenesis oscillator is arrested before all paraxial mesoderm is segmented into somites. MBC Dev Biol 10:24 Tenin G, Wright D, Ferjentsik Z, Bone R, McGrew MJ, Maroto M (2010) The chick somitogenesis oscillator is arrested before all paraxial mesoderm is segmented into somites. MBC Dev Biol 10:24
go back to reference Wilson V, Olivera-Martinez I, Storey KG (2009) Stem cells, signals and vertebrate body axis extension. Development 136:1591–1604CrossRefPubMed Wilson V, Olivera-Martinez I, Storey KG (2009) Stem cells, signals and vertebrate body axis extension. Development 136:1591–1604CrossRefPubMed
go back to reference Wright D, Ferjentsik Z, Chong SW, Qiu XH, Yun JJ, Malapert P, Pourquié O, Hateren NV, Wilson SA, Franco C, Gerhardt H, Dale JK, Maroto M (2009) Cyclic Nrarp mRNA expression is regulated by the somitic oscillator but nrarp protein levels do not oscillate. Dev Dyn 238:3043–3055CrossRefPubMedPubMedCentral Wright D, Ferjentsik Z, Chong SW, Qiu XH, Yun JJ, Malapert P, Pourquié O, Hateren NV, Wilson SA, Franco C, Gerhardt H, Dale JK, Maroto M (2009) Cyclic Nrarp mRNA expression is regulated by the somitic oscillator but nrarp protein levels do not oscillate. Dev Dyn 238:3043–3055CrossRefPubMedPubMedCentral
Metadata
Title
From the primitive streak to the somitic mesoderm: labeling the early stages of chick embryos using EGFP transfection
Authors
Haiming Fan
Nobuyuki Sakamoto
Hirohiko Aoyama
Publication date
01-09-2018
Publisher
Springer Singapore
Published in
Anatomical Science International / Issue 4/2018
Print ISSN: 1447-6959
Electronic ISSN: 1447-073X
DOI
https://doi.org/10.1007/s12565-018-0429-y

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