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PMID: 28304739 Published · ppublish English Journal Article

Mode and timing of body pattern formation (Regionalization) in the early embryonic development of cyclorrhaphic dipterans (Protophormia, Drosophila).

Wilhelm Roux' Archiv fur Entwicklungsmechanik der Organismen ·Vol. 172 ·No. 1 ·1973-03-00 ·Pages 1-27

Herth W, Sander K

Abstract

1. Eggs of the blowflyProtophormia spec. were separated into anterior and posterior fragments of varying sizes. The operations were carried out between oviposition and the blastoderm stage. The partial larvae produced by the fragments were scored for the cuticular pattern they had formed. 2. The cuticle of the 1st instar larva carries 11 denticle belts which correspond to the anterior borders of the thoracic and abdominal body segments. These are considered the elements of a linear longitudinal pattern which starts with the head region. 3. Egg fragments of the sizes studied did not produce the complete cuticular pattern. 4. If denticle belts were present on the partial larvae formed in egg fragments, these always included the corresponding terminal pattern element (no. 1 in anterior, no. 11 in posterior fragments). Bigger partial patterns from anterior fragments may have any belt up to no. 10 as their most posterior belt, posterior partial patterns may start anteriorly with any belt up to no. 1, i.e. behind the head region. 5. After fragmentation during early stages of development, all eggs fail to form some pattern elements. Fragmentation thus causes a gap in the pattern. Extent and position within the pattern of this gap depend on level and stage of fragmentation. 6. With increasing egg age (developmental stage) at fragmentation, the gap in the cuticular pattern becomes progressively smaller. Eggs fragmented during or after formation of the blastodermal cell walls as a rule form all pattern elements. 7. The progressive reduction of the gap in the cuticular pattern is due to formation of bigger sets of pattern elements inboth partner fragments. I.e. on the average an anterior or posterior fragment of given size will produce more pattern elements if separated from the rest of the egg at a later stage than if separated early. 8. In order to produce a given set of pattern elements, a fragment needs to be bigger on the average when separated early than when separated later on. This applies to both anteriorand posterior fragments of the fragmentation levels studied. 9. According to these results, the egg ofProtophormia cannot be considered a mosaic of determinants for the different pattern elements at oviposition. The developmental fate of at least the more equatorial egg regions appears to become specified epigenetically during the period between oviposition and blastoderm formation. 10. Once the egg has become subdivided into blastoderm cells, it reacts as a developmental mosaic with respect to the pattern studied. 11. Preliminary results inDrosophila are compatible with these conclusions. 12. The results are compared to those obtained from other insect groups, and formal models for their interpretation are discussed. Pattern specification by interaction of terminal egg regions can be considered the common denominator for a number of egg types. 13. The results demonstrate that formally comparable processes of pattern formation occur in different insect egg types at different stages of development.

Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Herth W
Biologisches Institut I (Zoologie) der Albert Ludwig-Universität Freiburg i. Br., Deutschland.
Sander K
Biologisches Institut I (Zoologie) der Albert Ludwig-Universität Freiburg i. Br., Deutschland.
References (12)
12 references, click to expand
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    Wilhelm Roux Arch Entwickl Mech Org. 1971 Dec;167(4):336-352 PMID: 28304559
  2. Wilhelm Roux Arch Entwickl Mech Org. 1960 Jan;151(5):660-707 PMID: 28354603
  3. Transplantation of nucle in Drosophila melanogaster.
    Proc Natl Acad Sci U S A. 1971 Jul;68(7):1539-41 PMID: 5283944
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  5. Wilhelm Roux Arch Entwickl Mech Org. 1959 Jan;151(4):430-497 PMID: 28354232
  6. Morphogenetic movements and segmentation of posterior egg fragmentsin vitro : Calliphora erythrocephala meig., diptera.
    Wilhelm Roux Arch Entwickl Mech Org. 1968 Sep;161(3):209-240 PMID: 28304469
  7. [Development of the malformation "double abdomen" in eggs of smittia parthenogenetica (dipt., chironomidae) partially irradiated by UV].
    Wilhelm Roux Arch Entwickl Mech Org. 1968 Jun;161(2):129-146 PMID: 28304616
  8. Studies on embryonic determination of the harlequin-fly, Chironomus dorsalis. I. Effects of centrifugation and of its combination with constriction and puncturing.
    J Embryol Exp Morphol. 1960 Jun;8:198-215 PMID: 13787068
  9. A gradient of positional information in an insect, Rhodnius.
    J Cell Sci. 1972 Nov;11(3):815-53 PMID: 4567548
  10. Wilhelm Roux Arch Entwickl Mech Org. 1934 Sep;131(3):285-323 PMID: 28354557
  11. Wilhelm Roux Arch Entwickl Mech Org. 1966 Dec;157(4):320-392 PMID: 28304481
  12. Determination of blastoderm cells in Drosophila melanogaster.
    Proc Natl Acad Sci U S A. 1971 Sep;68(9):2217-21 PMID: 5002429
Article Info
Journal
Wilhelm Roux' Archiv fur Entwicklungsmechanik der Organismen
Abbr.
Wilhelm Roux Arch Entwickl Mech Org
ISSN
0043-5546
Published
1973-03-00
Pages
1-27
Language
English
Region
Germany
NLM ID
7508795
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