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1. Esperanto for histones: CENP-A, not CenH3, is the centromeric histone H3 variant.

2. Mapping protein-DNA interactions with DiMeLo-seq.

3. Conserved chromatin and repetitive patterns reveal slow genome evolution in frogs.

4. Epigenetic inheritance and boundary maintenance at human centromeres.

5. Global mapping of RNA-chromatin contacts reveals a proximity-dominated connectivity model for ncRNA-gene interactions.

6. Repression of CENP-A assembly in metaphase requires HJURP phosphorylation and inhibition by M18BP1.

7. Molecular conflicts disrupting centromere maintenance contribute to Xenopus hybrid inviability.

8. Centromere Identity and the Regulation of Chromosome Segregation.

9. DiMeLo-seq: a long-read, single-molecule method for mapping protein-DNA interactions genome wide.

10. From telomere to telomere: The transcriptional and epigenetic state of human repeat elements.

11. CENP-N promotes the compaction of centromeric chromatin.

12. Complete genomic and epigenetic maps of human centromeres.

13. The DNA-to-cytoplasm ratio broadly activates zygotic gene expression in Xenopus.

14. Identification and characterization of centromeric sequences in Xenopus laevis .

15. Mapping Transcriptome-Wide and Genome-Wide RNA-DNA Contacts with Chromatin-Associated RNA Sequencing (ChAR-seq).

16. Chromatin-Associated RNA Sequencing (ChAR-seq).

17. CDK phosphorylation of Xenopus laevis M18BP1 promotes its metaphase centromere localization.

18. Centromere and Kinetochore Assembly in Xenopus laevis Egg Extract.

19. Chromatin-associated RNA sequencing (ChAR-seq) maps genome-wide RNA-to-DNA contacts.

20. Measurement of Mesoscale Conformational Dynamics of Freely Diffusing Molecules with Tracking FCS.

21. Constitutive centromere-associated network contacts confer differential stability on CENP-A nucleosomes in vitro and in the cell.

22. RNA-dependent stabilization of SUV39H1 at constitutive heterochromatin.

23. Xenopus laevis M18BP1 Directly Binds Existing CENP-A Nucleosomes to Promote Centromeric Chromatin Assembly.

25. RNA-mediated regulation of heterochromatin.

26. Form and function of topologically associating genomic domains in budding yeast.

27. Variable chromatin structure revealed by in situ spatially correlated DNA cleavage mapping.

28. The Power of Xenopus Egg Extract for Reconstitution of Centromere and Kinetochore Function.

29. Chromosome Segregation: Reconstituting the Kinetochore.

30. Acetylation of histone H4 lysine 5 and 12 is required for CENP-A deposition into centromeres.

31. MIS12/MIND Control at the Kinetochore.

32. In Vitro Kinetochore Assembly.

33. Condensing chromosome condensation.

34. A cell-free CENP-A assembly system defines the chromatin requirements for centromere maintenance.

35. Histone titration against the genome sets the DNA-to-cytoplasm threshold for the Xenopus midblastula transition.

36. Regulating the timing of CENP-A nucleosome assembly by phosphorylation.

37. The centromere: epigenetic control of chromosome segregation during mitosis.

39. Swapping CENP-A at the centromere.

40. Functions of the centromere and kinetochore in chromosome segregation.

41. CENP-A confers a reduction in height on octameric nucleosomes.

42. A conserved mechanism for centromeric nucleosome recognition by centromere protein CENP-C.

43. Fluorescent protein applications in microscopy.

44. A cell-free system for functional centromere and kinetochore assembly.

45. Imaging nanometre-scale structure in cells using in situ aberration correction.

46. The split personality of CENP-A nucleosomes.

47. Dynamics of CENP-N kinetochore binding during the cell cycle.

48. CENP-C recruits M18BP1 to centromeres to promote CENP-A chromatin assembly.

49. In vitro centromere and kinetochore assembly on defined chromatin templates.

50. Local geometry and elasticity in compact chromatin structure.

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