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1. Eukaryotic Pif1 helicase unwinds G-quadruplex and dsDNA using a conserved wedge

2. Structural basis for DNA unwinding at forked dsDNA by two coordinating Pif1 helicases

3. Genome-wide Cas9 binding specificity in Saccharomyces cerevisiae

4. A structural feature of Dda helicase which enhances displacement of streptavidin and trp repressor from <scp>DNA</scp>

5. G-quadruplex DNA inhibits unwinding activity but promotes liquid–liquid phase separation by the DEAD-box helicase Ded1p

6. G-Quadruplex loops regulate PARP-1 enzymatic activation

7. Alignment of helicases on single-stranded DNA increases activity

9. RNA helicases required for viral propagation in humans

10. Mitochondrial genetic variation is enriched in G-quadruplex regions that stall DNA synthesis in vitro

11. Direct quantification of the translocation activities of Saccharomyces cerevisiae Pif1 helicase

12. Hepatitis C virus nonstructural protein NS3 unfolds viral G-quadruplex RNA structures

13. G4 Biology

14. RNA helicases required for viral propagation in humans

15. Identifying RNA Helicase Inhibitors Using Duplex Unwinding Assays

16. DEAD-box RNA helicases Dbp2, Ded1 and Mss116 bind to G-quadruplex nucleic acids and destabilize G-quadruplex RNA

17. Primary acute lymphoblastic leukemia cells are susceptible to microtubule depolymerization in G1 and M phases through distinct cell death pathways

19. A biochemical and biophysical model of G-quadruplex DNA recognition by positive coactivator of transcription 4

20. Excessive excision of correct nucleotides during <scp>DNA</scp> synthesis explained by replication hurdles

24. Protein-protein interaction analysis for functional characterization of helicases

25. Evidence That G-quadruplex DNA Accumulates in the Cytoplasm and Participates in Stress Granule Assembly in Response to Oxidative Stress

26. N-Naphthoyl-substituted indole thio-barbituric acid analogs inhibit the helicase activity of the hepatitis C virus NS3

27. Pif1 helicase unfolding of G-quadruplex DNA is highly dependent on sequence and reaction conditions

28. Yeast Helicase Pif1 Unwinds RNA:DNA Hybrids with Higher Processivity than DNA:DNA Duplexes

29. SSB binds to the RecG and PriA helicasesin vivoin the absence of DNA

30. Melting of Duplex DNA in the Absence of ATP by the NS3 Helicase Domain through Specific Interaction with a Single-Strand/Double-Strand Junction

31. Structure and Function of Pif1 Helicase

32. A catch and release program for single-stranded DNA

33. Yeast Pif1 Accelerates Annealing of Complementary DNA Strands

34. Chemical modifications of DNA for study of helicase mechanisms

35. A CRISPR-based approach for proteomic analysis of a single genomic locus

36. Yeast Sub1 and human PC4 are G-quadruplex binding proteins that suppress genome instability at co-transcriptionally formed G4 DNA

37. G4-quadruplexes and genome instability

38. Physical and functional interaction between yeast Pif1 helicase and Rim1 single-stranded DNA binding protein

39. Binding by the Hepatitis C Virus NS3 Helicase Partially Melts Duplex DNA

40. Novel, fluorescent, SSB protein chimeras with broad utility

41. Hepatitis C Virus Nonstructural Protein 5A: Biochemical Characterization of a Novel Structural Class of RNA-Binding Proteins

42. Investigation of Translocation, DNA Unwinding, and Protein Displacement by NS3h, the Helicase Domain from the Hepatitis C Virus Helicase

43. Phosphate release contributes to the rate-limiting step for unwinding by an RNA helicase

44. Development and Evaluation of a Structural Model for SF1B Helicase Dda

45. NS3 Helicase from the Hepatitis C Virus Can Function as a Monomer or Oligomer Depending on Enzyme and Substrate Concentrations

46. RNA Unwinding Activity of the Hepatitis C Virus NS3 Helicase Is Modulated by the NS5B Polymerase

47. AAV-2 Rep78 and HPV-16 E1 Interact in Vitro, Modulating Their ATPase Activity

48. Fine tuning of a DNA fork by the RecQ helicase

49. Yeast transcription co-activator Sub1 and its human homolog PC4 preferentially bind to G-quadruplex DNA

50. DNA Unwinding by Escherichia coli DNA Helicase I (TraI) Provides Evidence for a Processive Monomeric Molecular Motor

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