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Research Paper

Comparative analysis of tools for live cell imaging of actin network architecture

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Pages 189-202 | Received 28 Mar 2015, Accepted 31 Mar 2015, Published online: 28 Aug 2015

References

  • De La Cruz, EM, Pollard, TD. Transient kinetic analysis of rhodamine phalloidin binding to actin filaments. Biochemistry 1994; 33:14387-14392
  • Riedl, J., Crevenna, AH, Kessenbrock, K., Yu, JH, Neukirchen, D., Bista, M., Bradke, F., Jenne, D., Holak, TA, Werb, Z., Sixt, M., Wedlich-Soldner, R. Lifeact: a versatile marker to visualize F-actin. Nat. Meth. 2008; 5:606-607
  • Burkel, BM, Von Dassow, G. and Bement, WM Versatile fluorescent probes for actin filaments based on the actin-binding domain of utrophin. Cell Motil. Cytoskeleton 2007; 64:822-832
  • Schell, MJ, Erneux, C., Irvine, RF Inositol 1,4,5-trisphosphate 3-kinase A associates with F-actin and dendritic spines via its N terminus. J. Biol. Chem. 2001; 276(40):37537-46
  • Chen, Q., Nag, S., TD. Formins filter modified actin subunits during processive elongation. J Struct Biol. 2012; 177(1):32-9
  • Sanders, TA, Llagostera, E., Barna, M. Specialized filopodia direct long-range transport of SHH during vertebrate tissue patterning. Nature 2013; 497(7451)
  • Munsie, LN, Caron, N., Desmond, CR, Truant, R. Lifeact cannot visualize some forms of stress-induced twisted F-actin. Nat. Methods 2009; 6(317)
  • Belin, BJ, Cimini, BA, Blackburn, EH, Mullins, RD. Visualization of actin filaments and monomers in somatic cell nuclei. Mol. Biol. Cell 2013; 24(7):982-94
  • Spracklen, AJ, Fagan, TN, Lovander, KE, Tootle, TL. The pros and cons of common actin labeling tools for visualizing actin dynamics during Drosophila oogenesis. Dev. Biol. 2014; 393(2):209-26
  • Iwasa, JH, Mullins, RD. Spatial and temporal relationships between actin-filament nucleation, capping and disassembly. Curr. Biol. 2007; 17(5):395-406
  • Ponti, A., Machacek, M., Gupton, SL, Waterman-Storer, CL, Danuser, G. Two distinct actin networks drive the protrusion of migrating cells. Science 2004; 305(5691):1782-6
  • Goins, LM, Mullins, RD. A novel tropomyosin isoform functions at the mitotic spindle and Golgi in Drosophila. Mol Biol Cell. 2015; 26(13):2491-504.
  • Kondylis, V., van Nispen tot Pannerden, HE, Herpers, B., Friggi-Grelin, F., Rabouille, C. The Golgi comprises a paired stack that is separated at G2 by Modulation of the Actin Cytoskeleton through ABi and Scar/WAVE. Dev. Cell 2007; 12:901-915
  • Percival, JM, Hughes, JA, Brown, DL, Schevzov, G., Heimann, K., Vrhovski, B., Bryce, N., Stow, JL, Gunning, PW. Targeting of a tropomyosin isoform to short microfilaments associated with the Golgi complex. Mol. Biol. Cell 2004; 15:268-280
  • Hotulainen, P., Lappalainen, P. Stress fibers are generated by two distinct actin assembly mechanisms in motile cells. J. Cell Biol. 2008; 17(3):383-394
  • Hotulainen, P., Paunola, E., Vartiainen, MK, Lappalainen, P. Actin-depolymerizing factor and cofilin-1 play overlapping roles in promoting rapid F-actin depolymerization in mammalian nonmuscle cells. Mol. Biol. Cell 2005; 16(2):649-664
  • Gurel, PS., Hatch, AL, Higgs, HN. Connecting the cytoskeleton to the endoplasmic reticulum and Golgi. Curr. Biol. 2014; 24(14):R660-R672
  • Minamide, LS, Striegl, A.M., Boyle, JA, Meberg, PJ, Bamburg, JR. Neurodegenerative stimuli induce persistent ADF/cofilin-actin rods that disrupt distal neurite function. Nat. Cell Biol. 2000; 2:628-636
  • McGough, A., Pope, B., Chiu, W., Weeds, A. Cofilin changes the twist of F-actin: implications for actin filament dynamics and cellular function. J. Cell Biol. 1997; 138(4):771-781
  • Rogers, SL, Wiedemann, U., Stuurman, N., Vale, RD. Molecular requirements for actin-based lamella formation in Drosophila S2 cells. J. Cell Biol. 2003; 162(6): 1079