Literature DB >> 1238403

Microtubular origin of mitotic spindle form birefringence. Demonstration of the applicability of Wiener's equation.

H Sato, G W Ellis, S Inoué.   

Abstract

Meiosis I metaphase spindles were isolated from oocytes of the sea-star Pisaster ochraceus by a method that produced no detectable net loss in spindle birefringence. Some of the spindles were fixed immediately and embedded and sectioned for electron microscopy. Others were laminated between gelatine pellicles in a perfusion chamber, then fixed and sequentially and reversibly imbibed with a series of media of increasing refractive indices. Electron microscopy showed little else besides microtubules in the isolates, and no other component present could account for the observed form birefringence. An Ambronn plot of the birefringent retardation measured during imbibition was a good least squares fit to a computer generated theoretical curve based on the Bragg-Pippard rederivation of the Wiener curve for form birefringence. The data were best fit by the curve for rodlet index (n1) = 1.512, rodlet volume fraction (f) = 0.0206, and coefficient of intrinsic birefringence = 4.7 X 10(-5). The value obtained for n1 is unequivocal and is virtually as good as the refractometer determinations of imbibing medium index on which it is based. The optically interactive volume of the microtubule subunit, calculated from our electron microscope determination of spindle microtubule distribution (106/mum2), 13 protofilaments per microtubules, an 8 nm repeat distance and our best value for f, is compatible with known subunit dimensions as determined by other means. We also report curves fitted to the results of Ambronn imbibition of Bouin's-fixed Lytechinus spindles and to the Noll and Weber muscle imbibition data.

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Year:  1975        PMID: 1238403      PMCID: PMC2111675          DOI: 10.1083/jcb.67.3.501

Source DB:  PubMed          Journal:  J Cell Biol        ISSN: 0021-9525            Impact factor:   10.539


  31 in total

1.  Functional organization of mitotic microtubules. Physical chemistry of the in vivo equilibrium system.

Authors:  S Inoué; J Fuseler; E D Salmon; G W Ellis
Journal:  Biophys J       Date:  1975-07       Impact factor: 4.033

2.  X-ray patterns from microtubules.

Authors:  C Cohen; D DeRosier; S C Harrison; R E Stephens; J Thomas
Journal:  Ann N Y Acad Sci       Date:  1975-06-30       Impact factor: 5.691

3.  Birefringence and fine structure of spindles in spermatocytes of Nephrotoma suturalis at metaphase of first meiotic division.

Authors:  J R LaFountain
Journal:  J Ultrastruct Res       Date:  1974-02

Review 4.  Microtubules.

Authors:  J B Olmsted; G G Borisy
Journal:  Annu Rev Biochem       Date:  1973       Impact factor: 23.643

5.  Pattern of birefringence in the giant amoeba, Chaos carolinensis.

Authors:  R D Allen
Journal:  Exp Cell Res       Date:  1972-05       Impact factor: 3.905

6.  X-ray diffraction from microtubules.

Authors:  C Cohen; S C Harrison; R E Stephens
Journal:  J Mol Biol       Date:  1971-07-28       Impact factor: 5.469

7.  The structure and some properties of the isolated mitotic apparatus.

Authors:  R D Goldman; L I Rebhun
Journal:  J Cell Sci       Date:  1969-01       Impact factor: 5.285

8.  In vitro polymerization of microtubules into asters and spindles in homogenates of surf clam eggs.

Authors:  R C Weisenberg; A C Rosenfeld
Journal:  J Cell Biol       Date:  1975-01       Impact factor: 10.539

9.  The concentrations of dry matter in mitotic apparatuses in vivo and after isolation from sea-urchin zygotes.

Authors:  A Forer; R D Goldman
Journal:  J Cell Sci       Date:  1972-03       Impact factor: 5.285

10.  Growth and lability of Chaetopterus oocyte mitotic spindles isolated in the presence of porcine brain tubulin.

Authors:  S Inoué; G G Borisy; D P Kiehart
Journal:  J Cell Biol       Date:  1974-07       Impact factor: 10.539

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  39 in total

1.  Microtubule bundling and nested buckling drive stripe formation in polymerizing tubulin solutions.

Authors:  Yifeng Liu; Yongxing Guo; James M Valles; Jay X Tang
Journal:  Proc Natl Acad Sci U S A       Date:  2006-07-03       Impact factor: 11.205

2.  Analysis of microtubule dynamics by polarized light.

Authors:  Rudolf Oldenbourg
Journal:  Methods Mol Med       Date:  2007

Review 3.  Living Cells and Dynamic Molecules Observed with the Polarized Light Microscope: the Legacy of Shinya Inoué.

Authors:  Tomomi Tani; Michael Shribak; Rudolf Oldenbourg
Journal:  Biol Bull       Date:  2016-08       Impact factor: 1.818

4.  Birefringence imaging directly reveals architectural dynamics of filamentous actin in living growth cones.

Authors:  K Katoh; K Hammar; P J Smith; R Oldenbourg
Journal:  Mol Biol Cell       Date:  1999-01       Impact factor: 4.138

5.  The susceptibility of pure tubulin to high magnetic fields: a magnetic birefringence and x-ray fiber diffraction study.

Authors:  W Bras; G P Diakun; J F Díaz; G Maret; H Kramer; J Bordas; F J Medrano
Journal:  Biophys J       Date:  1998-03       Impact factor: 4.033

6.  Orientation-dependent visibility of long thin objects in polarization-based microscopy.

Authors:  R Arimoto; J M Murray
Journal:  Biophys J       Date:  1996-06       Impact factor: 4.033

7.  Polarized Fluorescence Microscopy to Study Cytoskeleton Assembly and Organization in Live Cells.

Authors:  Molly McQuilken; Shalin B Mehta; Amitabh Verma; Grant Harris; Rudolf Oldenbourg; Amy S Gladfelter
Journal:  Curr Protoc Cell Biol       Date:  2015-06-01

8.  Image simulation for biological microscopy: microlith.

Authors:  Shalin B Mehta; Rudolf Oldenbourg
Journal:  Biomed Opt Express       Date:  2014-05-13       Impact factor: 3.732

9.  Birefringence Changes of Dendrites in Mouse Hippocampal Slices Revealed with Polarizing Microscopy.

Authors:  Maki Koike-Tani; Takashi Tominaga; Rudolf Oldenbourg; Tomomi Tani
Journal:  Biophys J       Date:  2020-04-04       Impact factor: 4.033

10.  Effects of griseofulvin on mitosis in PtK1 cells.

Authors:  J M Mullins; J A Snyder
Journal:  Chromosoma       Date:  1979-04-05       Impact factor: 4.316

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