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1. Optogenetic control of YAP reveals a dynamic communication code for stem cell fate and proliferation

2. Identifying Network Motifs that Buffer Front-to-Back Signaling in Polarized Neutrophils

3. Local negative feedback of Rac activity at the leading edge underlies a pilot pseudopod-like program for amoeboid cell guidance.

4. Neutrophils actively swell to potentiate rapid migration

5. Cell confinement reveals a branched-actin independent circuit for neutrophil polarity.

6. A size-invariant bud-duration timer enables robustness in yeast cell size control.

7. Decoding of YAP levels and dynamics by pluripotency factors

8. Actin-driven protrusions generate rapid long-range membrane tension propagation in cells

9. From peptides to proteins: coiled-coil tetramers to single-chain 4-helix bundles

10. WASP integrates substrate topology and cell polarity to guide neutrophil migration

11. Membrane Tension Acts Through PLD2 and mTORC2 to Limit Actin Network Assembly During Neutrophil Migration.

12. Gβ Regulates Coupling between Actin Oscillators for Cell Polarity and Directional Migration.

13. Progressive enhancement of kinetic proofreading in T cell antigen discrimination from receptor activation to DAG generation

15. The WAVE complex associates with sites of saddle membrane curvature

16. WASP integrates substrate topology and cell polarity to guide neutrophil migration

18. Optogenetic Tuning of Protein-protein Binding in Bilayers Using LOVTRAP

19. WAVE complex self-organization templates lamellipodial formation

20. An actin-based wave generator organizes cell motility.

21. Hem-1 complexes are essential for Rac activation, actin polymerization, and myosin regulation during neutrophil chemotaxis.

22. A module for Rac temporal signal integration revealed with optogenetics

23. Cell confinement reveals a branched-actin independent circuit for neutrophil polarity

24. Multiple sources of signal amplification within the B-cell Ras/MAPK pathway

25. Live-cell imaging reveals enhancer-dependent Sox2 transcription in the absence of enhancer proximity

26. In pursuit of the mechanics that shape cell surfaces

27. Light-based tuning of ligand half-life supports kinetic proofreading model of T cell signaling

30. Chick cranial neural crest cells use progressive polarity refinement, not contact inhibition of locomotion, to guide their migration

31. Reversible Optogenetic Control of Subcellular Protein Localization in a Live Vertebrate Embryo

32. Cell confinement reveals a branched-actin independent circuit for neutrophil polarity

33. Light-based tuning of ligand half-life supports kinetic proofreading model of T cell activation

34. Live-cell imaging reveals enhancer-dependent

35. Live-Cell Imaging Reveals Enhancer-dependent Sox2 Transcription in the Absence of Enhancer Proximity

36. Nodal signaling has dual roles in fate specification and directed migration during germ layer segregation

37. A Size-invariant Bud-length Timer Enables Robustness in Yeast Cell Size Control

38. Clathrin assembly defines the onset and geometry of cortical patterning

39. Homer3 regulates the establishment of neutrophil polarity

40. Positioning the cleavage furrow: All you need is Rho

41. A size-invariant bud-duration timer enables robustness in yeast cell size control

42. Chick cranial neural crest cells migrate by progressively refining the polarity of their protrusions

43. TAEL: a zebrafish-optimized optogenetic gene expression system with fine spatial and temporal control

44. How to Understand and Outwit Adaptation

45. An optogenetic gene expression system with rapid activation and deactivation kinetics

46. Using Optogenetics to Interrogate the Dynamic Control of Signal Transmission by the Ras/Erk Module

47. A light-inducible organelle-targeting system for dynamically activating and inactivating signaling in budding yeast

48. Membrane Tension Acts Through PLD2 and mTORC2 to Limit Actin Network Assembly During Neutrophil Migration

49. Gβ Regulates Coupling between Actin Oscillators for Cell Polarity and Directional Migration

50. The promise of optogenetics in cell biology: interrogating molecular circuits in space and time

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