Abstract
The differentiating mouse oviduct has been used for the study of centriole morphogenesis because its epithelium is extensively ciliated and centriole formation occurs in a brief period after birth. Proliferative elements, consisting of an extensive fibrillar meshwork encrusted with 75 mmicro granules, were encountered at all ages, but were the only centriole precursors present in younger animals (2-3 days). These large aggregates were found either physically associated with a mature centriole or alone, but never associated with procentrioles. It is likely, therefore, that although proliferative elements may be derived from preexisting centrioles, they do not directly produce new centrioles. An intermediate structure, the condensation form, found primarily in older animals (4-6 days), and produced by the packing of the proliferative element material, gives rise to daughter procentrioles. This association of procentriole and condensation form has been called a generative complex. Condensation forms undergo various stages of depletion, producing hollow spheres with thin walls or small osmiophilic aggregates as procentrioles grow in length and assemble their microtubules. From these observations it is concluded that synthesis of microtubular precursor protein is mediated by the mature centriole and that this protein is packaged into many condensation forms in order to allow the rapid assembly of a large number of centrioles in a brief period of time.
MeSH Terms
Age Factors
Animals
Cell Differentiation
Cilia
Cytoplasmic Granules
Endoplasmic Reticulum
Epithelial Cells
Epithelium/growth & development
Female
Mice
Mice, Inbred Strains
Microscopy, Electron
Microtubules
Morphogenesis
Oviducts/cytology,growth & development
Ribosomes
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Dirksen E R
References (16)
16 references, click to expand
-
[An up-to-now unknown way of centriole propagation].
Z Zellforsch Mikrosk Anat. 1965 Dec 10;68(5):733-40
PMID: 5875049
-
Incomplete microtubules observed in mammalian blood platelets during microtubule polymerization.
J Cell Biol. 1967 Aug;34(2):697-701
PMID: 6035655
-
The ameba-to-flagellate transformation in Tetramitus rostratus. II. Microtubular morphogenesis.
J Cell Biol. 1967 Nov;35(2):323-46
PMID: 4861775
-
An electron microscopic study of ciliogenesis in developing epidermis and trachea in the embryo of Xenopus laevis.
Am J Anat. 1968 Jan;122(1):19-55
PMID: 5654501
-
Reconstructions of centriole formation and ciliogenesis in mammalian lungs.
J Cell Sci. 1968 Jun;3(2):207-30
PMID: 5661997
-
Fine structure of cell division in Chlamydomonas reinhardi. Basal bodies and microtubules.
J Cell Biol. 1968 Aug;38(2):403-25
PMID: 5664210
-
The development of basal bodies in paramecium.
Proc Natl Acad Sci U S A. 1968 Oct;61(2):461-8
PMID: 4176480
-
Development of order during ciliogenesis.
Anat Rec. 1968 Oct;162(2):221-32
PMID: 5726142
-
The morphogenesis of basal bodies and accessory structures of the cortex of the ciliated protozoan Tetrahymena pyriformis.
J Cell Biol. 1969 Mar;40(3):716-33
PMID: 5765762
-
Centriole replication during ciliogenesis in the chick tracheal epithelium.
Z Zellforsch Mikrosk Anat. 1969;100(1):1-30
PMID: 5354183
-
Inhibitory effects of colchicine on ciliogenesis in ectoderm of Xenopus laevis.
J Ultrastruct Res. 1970 Feb;30(3):423-40
PMID: 5461419
-
Thermal fractionation of outer fiber doublet microtubules into A- and B-subfiber components. A- and B-tubulin.
J Mol Biol. 1970 Feb 14;47(3):353-63
PMID: 5461463
-
Formation of centriole and centriole-like structures during meiosis and mitosis in Labyrinthula sp. (Rhizopodea, Labyrinthulida). An electron-microscope study.
J Cell Sci. 1970 May;6(3):629-53
PMID: 5452087
-
Flagellar elongation and shortening in chlamydomonas. II. Re-utilization of flagellar proteins.
J Cell Biol. 1970 Dec;47(3):777-81
PMID: 5497553
-
Electron microscopic observations of bronchial epithelium. II. Filosomes.
Exp Mol Pathol. 1967 Aug;7(1):92-104
PMID: 4952068
-
The presence of centrioles in artificially activated sea urchin eggs.
J Biophys Biochem Cytol. 1961 Oct;11:244-7
PMID: 13886557