Биотенсегрити. Как работают Анатомические поезда, остеопатия и кинезиология и что может сделать эти техники максимально эффективными — Грэхам Скарр

Сейчас7. Легкость движенияСтраница 184 из 199
К книге

131. Huson, A., 1997. Kinematic models and the human pelvis. In: A. Vleeming, ed.,Movement, Stability and Low Back Pain: The Essential Role of the Pelvis . New York: Churchill Livingstone; pp. 121–131.

132. Hyde, S.T., 2015. Crystals: animal, vegetable or mineral? (The Royal Society Publishing)Interface Focus , 5(4) 20150027.

133. Hyde, S.T. and Schroder-Turk, G.E., 2013. Geometry of interfaces: topological complexity in biology and materials. (The Royal Society Publishing)Interface Focus , 2(5) 529–538.

134. Iacovella, C.R., Keys, A.S. and Glotzer, S.C., 2011. Self-assembly of soft matter quasicrystals and their approximants.Proceedings of the National Academy of Sciences , 108(52) 203935-203940.

135. Ingber, D.E., 1993. Cellular tensegrity: defining new rules of biological design that govern the cytoskeleton.Journal of Cell Science 104(3) 613–627.

136. Ingber, D.E., 1998. The architecture of life.Scientific American (Jan) 30–39. Available at: https://apps. childrenshospital.org/clinical/research/ ingber/PDF/1998/SciAmer-Ingber.pdf [June 18, 2018].

137. Ingber, D.E., 2003. Tensegrity I. Cell structure and hierarchical systems biology.Journal of Cell Science , 116(7) 1157–1173.

138. Ingber, D.E., 2006a. Cellular mechanotransduction: putting all the pieces together again.The FASEB Journal , 20(7) 811–827.

139. Ingber, D.E., 2006b. Mechanical control of tissue morphogenesis during embryological development.International Journal of Developmental Biology , 50(2–3) 255–266.

140. Ingber, D.E., Madri, J.A. and Jamieson, J.D., 1981. Role of basal lamina in neoplastic disorganization of tissue architecture.Proceedings of the National Academy of Sciences , 78(6) 3901–3905.

141. Ingber, D.E., Dike, L., Hansen, L., Karp, S., Liley, H., Maniotis, A., McNamee, H., Mooney, D., Piopper, G., Sims, J. and Wang, N., 1994. Cellular tensegrity: exploring how mechanical changes in the cytoskeleton regulate cell growth, migration and tissue pattern during morphogenesis.International Review of Cytology , 150, 173–224.

142. Ingber, D.E., Wang, N. and Stamenović, D., 2014. Tensegrity, cellular biophysics and the mechanics of living systems.Reports on Progress in Physics , 77(4) 046603.

143. Iosa, M., Fusco, A., Marchetti, F., Morone, G., Caltagirone, C., Paolucci, S. and Peppe, A., 2013. The golden ratio of gait harmony: repetitive proportions of repetitive gait phases.BioMed Research International , 918642;doi: 10.1155/2013/918642.

144. Irving, G. and Segerman, H., 2013. Developing fractal curves.Journal of Mathematics and the Arts , 7(3–4) 103–121.

145. Iwatsuki, H. and Suda, M., 2010. Seven kinds of intermediate filament networks in the cytoplasm of polarized cells: structure and function.Acta Histochemica et Cytochemica , 43(2) 19–31.

146. Izard, T., varsson, A., Allen, M.D., Westphal, A.H., Perham, R.N., de Kok, A. and Hol, W.G.J., 1999. Principles of quasi-equivalence and Euclidean geometry govern the assembly of cubic and dodecahedral cores of pyruvate dehydrogenase complexes.Proceedings of the National Academy of Sciences, 96(4) 1240–1245.

Literio
Подборки

Тематические подборки для продолжения чтения

Подбираем связанные книжные коллекции…