Gelatinous fibers are widespread in coiling tendrils and twining vines.
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[1] S. Thitamadee,et al. Microtubule basis for left-handed helical growth in Arabidopsis , 2002, Nature.
[2] M. Jaffe. On the Mechanism of Contact Coiling of Tendrils , 1980 .
[3] N. Michele Holbrook,et al. Temporal and spatial patterns of twining force and lignification in stems of Ipomoea purpurea , 2001, Planta.
[4] A. Wardrop. The Reaction Anatomy of Arborescent Angiosperms , 1964 .
[5] Gerhard Wanner,et al. Functional anatomy of the mechanoreceptor cells in tendrils of Bryonia dioica Jacq. , 1995, Planta.
[6] H. Meier,et al. Physical and Chemical Properties of the Gelatinous Layer in Tension Wood Fibres of Aspen (Populus tremula L.) , 1966 .
[7] Charles Darwin,et al. The movements and habits of climbing plants, by Charles Darwin. , 1876 .
[8] I. Staff. The occurrence of reaction fibres inXanthorrhoea australis R. Br. , 1974, Protoplasma.
[9] P. Hussey. Cytoskeleton: Microtubules do the twist , 2002, Nature.
[10] F. Ishiguri,et al. Anatomy and lignin distribution of reaction wood in two Magnolia species , 2000, Wood Science and Technology.
[11] A. Bowling,et al. Unusual trichome structure and composition in mericarps of catchweed bedstraw (Galium aparine) , 2008, Protoplasma.
[12] C. Darwin. The Movements and Habits of Climbing Plants , 1875, Nature.
[13] A. Bowling,et al. Structural and immunocytochemical characterization of the adhesive tendril of Virginia creeper (Parthenocissus quinquefolia [L.] Planch.) , 2008, Protoplasma.
[14] E. Weiler. Octadecanoid‐derived Signaling Molecules Involved in Touch Perception in a Higher Plant , 1993 .
[15] M. Hahn,et al. Analysis of the Golgi Apparatus in Arabidopsis Seed Coat Cells during Polarized Secretion of Pectin-Rich Mucilage[W][OA] , 2008, The Plant Cell Online.
[16] George Jeronimidis,et al. Stress generation in the tension wood of poplar is based on the lateral swelling power of the G-layer. , 2008, The Plant journal : for cell and molecular biology.
[17] M Hubbard,et al. Axial forces and normal distributed loads in twining stems of morning glory. , 1991, Journal of biomechanics.
[18] A W Galston,et al. The Physiology of Tendrils , 1968 .
[19] A. Bowling,et al. Immunocytochemical characterization of tension wood: Gelatinous fibers contain more than just cellulose. , 2008, American journal of botany.
[20] A. Gentry. The Biology of Vines : The distribution and evolution of climbing plants , 1992 .
[21] N. Holbrook,et al. The importance of frictional interactions in maintaining the stability of the twining habit. , 2005, American journal of botany.
[22] E. Weiler,et al. Touch- and Methyl Jasmonate-induced Lignification in Tendrils of Bryonia dioica Jacq. , 1994 .
[23] J. Engelberth,et al. Mechanosensing and signal transduction in tendrils. , 2003, Advances in space research : the official journal of the Committee on Space Research.
[24] P. Tomlinson. Development of gelatinous (reaction) fibers in stems of Gnetum gnemon (Gnetales). , 2003, American journal of botany.
[25] D. White,et al. Gelatinous Fibres in Ash (Fraxinus excelsior L.) , 1965, Nature.
[26] T. E. Timell,et al. A contribution to the ultrastructure of tension wood fibers , 1969, Wood Science and Technology.
[27] K. Vaughn,et al. A cortical band of gelatinous fibers causes the coiling of redvine tendrils: a model based upon cytochemical and immunocytochemical studies , 2006, Planta.
[28] J. Fisher. Anatomy of axis contraction in seedlings from a fire prone habitat. , 2008, American journal of botany.