306 results on '"Nasmyth K."'
Search Results
2. Role of Factors Downstream of Caspases in Nuclear Disassembly during Apoptotic Execution [and Discussion]
3. Molecular Mechanism of Autophagy in Yeast, Saccharomyces cerevisiae [and Discussion]
4. Two Distinct Ubiquitin-Proteolysis Pathways in the Fission Yeast Cell Cycle [and Discussion]
5. Control of NF-κ B Transcriptional Activation by Signal Induced Proteolysis of Iκ Bα [and Discussion]
6. SCF Ubiquitin Protein Ligases and Phosphorylation-Dependent Proteolysis [and Discussion]
7. The Saccharomyces cerevisiae Ubiquitin-Proteasome System [and Discussion]
8. Cdc53/cullin and the essential Hrt1 RING–H2 subunit of SCF define a ubiquitin ligase module that activates the E2 enzyme Cdc34
9. Theodor Bücher Lecture
10. GermOnline, a cross-species community knowledgebase on germ cell differentiation
11. Scc2 is a potent activator of Cohesin’s ATPase that promotes loading by binding Scc1 without Pds5
12. Cohesin Releases DNA through Asymmetric ATPase-Driven Ring Opening
13. Releasing Activity Disengages Cohesin’s Smc3/Scc1 Interface in a Process Blocked by Acetylation
14. How cohesin regulates gene expression and differentiation in non-dividing mammalian cells
15. Erratum: BAC TransgeneOmics: A high-throughput method for exploration of protein function in mammals (Nature Methods (2008) vol. 5 (409-415))
16. BAC TransgeneOmics: a high-throughput method for exploration of protein function in mammals (vol 5, pg 409, 2008)
17. Cohesin's DNA exit gate is distinct from its entrance gate and is regulated by acetylation
18. A meiotic mystery: How sister kinetochores avoid being pulled in opposite directions during the first division
19. A positively charged channel within the Smc1/Smc3 hinge required for sister chromatid cohesion
20. Cohesin regulates T cell receptor rearrangement and thymocyte differentiation
21. Sister DNA Entrapment between Juxtaposed Smc Heads and Kleisin of the Cohesin Complex
22. Biological chromodynamics: a general method for measuring protein occupancy across the genome by calibrating ChIP-seq
23. The mechanism by which chromosomal DNA molecules are held together: entrapment within cohesin rings?
24. Cohesin Releases DNA through Asymmetric ATPase-Driven Ring Opening
25. Erratum: BAC TransgeneOmics: A high-throughput method for exploration of protein function in mammals (Nature Methods (2008) vol. 5 (409-415))
26. A positively charged channel within the Smc1/Smc3 hinge required for sister chromatid cohesion
27. Role of cleavage by separase of the Rec8 kleisin subunit of cohesin during mammalian meiosis I
28. Cell-type-specific TEV protease cleavage reveals Cohesin functions in Drosophila neurons
29. Resolution of chiasmata in oocytes requires separase-mediated proteolysis.
30. Loss of the Anaphase-Promoting Complex in quiescent cells causes unscheduled hepatocyte proliferation
31. ParticleStats: open source software for the analysis of particle motility and cytoskeletal polarity
32. Splitting the Nucleus: What's Wrong with the Tripartite Ring Model?
33. Chromosome segregation one hundred years after Mendel's rediscovery
34. Whose end is destruction: cell division and the anaphase-promoting complex
35. Yeast Cohesin complex requires a conserved protein, Eco1p(Ctf7), to establish cohesion between sister chromatids during DNA replication
36. Model scenarios for evolution of the eukaryotic cell cycle
37. The anaphase-promoting complex is required in G1 arrested yeast cells to inhibit B-type cyclin accumulation and to prevent uncontrolled entry into S-phase
38. Long-range interactions at the HO promoter
39. The transcription factor Swi5 regulates expression of the cyclin kinase inhibitor p40SIC1
40. Crystal structure of the DNA-binding domain of MBP1, a transcription factor important in progression from G1 to S phase
41. Activation of S-phase-promoting CDKs in late G1 defines a "point of no return" after which Cdc6 synthesis cannot promote DNA replication in yeast.
42. TPR proteins required for anaphase progression mediate ubiquitination of mitotic B-type cyclins in yeast.
43. Switching transcription on and off during the yeast cell cycle: Cln/Cdc28 kinases activate bound transcription factor SBF (Swi4/Swi6) at start, whereas Clb/Cdc28 kinases displace it from the promoter in G2.
44. Roles and regulation of Cln-Cdc28 kinases at the start of the cell cycle of Saccharomyces cerevisiae.
45. Ste20-like protein kinases are required for normal localization of cell growth and for cytokinesis in budding yeast.
46. Cdc6 is an unstable protein whose de novo synthesis in G1 is important for the onset of S phase and for preventing a ‘reductional’ anaphase in the budding yeast Saccharomyces cerevisiae.
47. Cell cycle-regulated transcription of the CLB2 gene is dependent on Mcm1 and a ternary complex factor
48. pct1+, which encodes a new DNA-binding partner of p85cdc10, is required for meiosis in the fission yeast Schizosaccharomyces pombe.
49. Yeast G1 cyclins CLN1 and CLN2 and a GAP-like protein have a role in bud formation.
50. CLB5 and CLB6, a new pair of B cyclins involved in DNA replication in Saccharomyces cerevisiae.
Catalog
Books, media, physical & digital resources
Discovery Service for Jio Institute Digital Library
For full access to our library's resources, please sign in.