Search

Your search keyword '"Stoppin-Mellet V"' showing total 25 results

Search Constraints

Start Over You searched for: Author "Stoppin-Mellet V" Remove constraint Author: "Stoppin-Mellet V" Language english Remove constraint Language: english
25 results on '"Stoppin-Mellet V"'

Search Results

2. Stable GDP-tubulin islands rescue dynamic microtubules.

3. VASH1-SVBP and VASH2-SVBP generate different detyrosination profiles on microtubules.

4. Stress-induced phosphorylation of CLIP-170 by JNK promotes microtubule rescue.

5. Plant and mouse EB1 proteins have opposite intrinsic properties on the dynamic instability of microtubules.

6. Studying Tau-Microtubule Interaction Using Single-Molecule TIRF Microscopy.

7. Adenomatous Polyposis Coli as a Scaffold for Microtubule End-Binding Proteins.

8. Tau can switch microtubule network organizations: from random networks to dynamic and stable bundles.

9. A TIRF microscopy assay to decode how tau regulates EB's tracking at microtubule ends.

10. TIRF assays for real-time observation of microtubules and actin coassembly: Deciphering tau effects on microtubule/actin interplay.

11. Phosphorylation of MAP65-1 by Arabidopsis Aurora Kinases Is Required for Efficient Cell Cycle Progression.

12. Tau antagonizes end-binding protein tracking at microtubule ends through a phosphorylation-dependent mechanism.

13. MAP65/Ase1 promote microtubule flexibility.

14. MAP65 coordinate microtubule growth during bundle formation.

15. Arabidopsis kinetochore fiber-associated MAP65-4 cross-links microtubules and promotes microtubule bundle elongation.

16. Two microtubule-associated proteins of Arabidopsis MAP65s promote antiparallel microtubule bundling.

17. Arabidopsis katanin binds microtubules using a multimeric microtubule-binding domain.

18. Katanin's severing activity favors bundling of cortical microtubules in plants.

19. Interactions of tobacco microtubule-associated protein MAP65-1b with microtubules.

20. Plant katanin, a microtubule severing protein.

21. Functional evidence for in vitro microtubule severing by the plant katanin homologue.

22. The plant Spc98p homologue colocalizes with gamma-tubulin at microtubule nucleation sites and is required for microtubule nucleation.

23. Higher plant cells: gamma-tubulin and microtubule nucleation in the absence of centrosomes.

24. Characterization of microsome-associated tobacco BY-2 centrins.

25. Tobacco BY-2 cell-free extracts induce the recovery of microtubule nucleating activity of inactivated mammalian centrosomes.

Catalog

Books, media, physical & digital resources