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Items: 1 to 20 of 144

1.

The Dam1 kinetochore ring complex moves processively on depolymerizing microtubule ends.

Westermann S, Wang HW, Avila-Sakar A, Drubin DG, Nogales E, Barnes G.

Nature. 2006 Mar 23;440(7083):565-9. Epub 2006 Jan 15.

PMID:
16415853
2.

Architecture of the Dam1 kinetochore ring complex and implications for microtubule-driven assembly and force-coupling mechanisms.

Wang HW, Ramey VH, Westermann S, Leschziner AE, Welburn JP, Nakajima Y, Drubin DG, Barnes G, Nogales E.

Nat Struct Mol Biol. 2007 Aug;14(8):721-6. Epub 2007 Jul 22.

PMID:
17643123
3.

Mps1 phosphorylation of Dam1 couples kinetochores to microtubule plus ends at metaphase.

Shimogawa MM, Graczyk B, Gardner MK, Francis SE, White EA, Ess M, Molk JN, Ruse C, Niessen S, Yates JR 3rd, Muller EG, Bloom K, Odde DJ, Davis TN.

Curr Biol. 2006 Aug 8;16(15):1489-501.

4.

Live cell imaging of kinetochore capture by microtubules in budding yeast.

Tanaka K, Tanaka TU.

Methods Mol Biol. 2009;545:233-42. doi: 10.1007/978-1-60327-993-2_14.

PMID:
19475392
5.

Subunit organization in the Dam1 kinetochore complex and its ring around microtubules.

Ramey VH, Wong A, Fang J, Howes S, Barnes G, Nogales E.

Mol Biol Cell. 2011 Nov;22(22):4335-42. doi: 10.1091/mbc.E11-07-0659. Epub 2011 Sep 30.

6.

The human kinetochore Ska1 complex facilitates microtubule depolymerization-coupled motility.

Welburn JP, Grishchuk EL, Backer CB, Wilson-Kubalek EM, Yates JR 3rd, Cheeseman IM.

Dev Cell. 2009 Mar;16(3):374-85. doi: 10.1016/j.devcel.2009.01.011.

7.

Long tethers provide high-force coupling of the Dam1 ring to shortening microtubules.

Volkov VA, Zaytsev AV, Gudimchuk N, Grissom PM, Gintsburg AL, Ataullakhanov FI, McIntosh JR, Grishchuk EL.

Proc Natl Acad Sci U S A. 2013 May 7;110(19):7708-13. doi: 10.1073/pnas.1305821110. Epub 2013 Apr 22.

8.

The Dam1 complex confers microtubule plus end-tracking activity to the Ndc80 kinetochore complex.

Lampert F, Hornung P, Westermann S.

J Cell Biol. 2010 May 17;189(4):641-9. doi: 10.1083/jcb.200912021.

9.

In search of an optimal ring to couple microtubule depolymerization to processive chromosome motions.

Efremov A, Grishchuk EL, McIntosh JR, Ataullakhanov FI.

Proc Natl Acad Sci U S A. 2007 Nov 27;104(48):19017-22. Epub 2007 Nov 20.

10.

Cell division: running rings around the spindle.

Nath D.

Nature. 2006 Mar 23;440(7083):434. No abstract available.

PMID:
16554798
11.

Live cell approaches for studying kinetochore-microtubule interactions in Drosophila.

Buster DW, Sharp DJ.

Methods Mol Med. 2007;137:139-60.

PMID:
18085227
12.

The dynamic kinetochore-microtubule interface.

Maiato H, DeLuca J, Salmon ED, Earnshaw WC.

J Cell Sci. 2004 Nov 1;117(Pt 23):5461-77. Review.

13.
14.

Tension applied through the Dam1 complex promotes microtubule elongation providing a direct mechanism for length control in mitosis.

Franck AD, Powers AF, Gestaut DR, Gonen T, Davis TN, Asbury CL.

Nat Cell Biol. 2007 Jul;9(7):832-7. Epub 2007 Jun 17.

15.

Microtubules: a ring for the depolymerization motor.

Salmon ED.

Curr Biol. 2005 Apr 26;15(8):R299-302. Review.

16.

Modulation of microtubule stability by kinetochores in vitro.

Hyman AA, Mitchison TJ.

J Cell Biol. 1990 May;110(5):1607-16.

17.

A non-ring-like form of the Dam1 complex modulates microtubule dynamics in fission yeast.

Gao Q, Courtheoux T, Gachet Y, Tournier S, He X.

Proc Natl Acad Sci U S A. 2010 Jul 27;107(30):13330-5. doi: 10.1073/pnas.1004887107. Epub 2010 Jul 12.

18.

Yeast Dam1p has a role at the kinetochore in assembly of the mitotic spindle.

Jones MH, He X, Giddings TH, Winey M.

Proc Natl Acad Sci U S A. 2001 Nov 20;98(24):13675-80. Epub 2001 Nov 6.

19.

Yeast kinetochores do not stabilize Stu2p-dependent spindle microtubule dynamics.

Pearson CG, Maddox PS, Zarzar TR, Salmon ED, Bloom K.

Mol Biol Cell. 2003 Oct;14(10):4181-95. Epub 2003 Jul 25.

20.

Molecular mechanisms of microtubule-dependent kinetochore transport toward spindle poles.

Tanaka K, Kitamura E, Kitamura Y, Tanaka TU.

J Cell Biol. 2007 Jul 16;178(2):269-81. Epub 2007 Jul 9.

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