INVESTIGADORES
CANTERO Maria Del Rocio
artículos
Título:
Electrical Oscillations in Two-Dimensional Microtubular Structures
Autor/es:
CANTERO, MR; PEREZ, PL; SMOLER M; VILLA ETCHEGOYEN, C; CANTIELLO, HF
Revista:
SCIENTIFIC REPORTS
Editorial:
NATURE PUBLISHING GROUP
Referencias:
Año: 2016
ISSN:
2045-2322
Resumen:
Abstract. Microtubules (MTs) are unique components of the cytoskeleton formed by hollow cylindrical structures of αβ tubulin dimeric units. The structural wall of the MT is interspersed by nanopores formed by the lateral arrangement of its subunits. MTs are also highly charged polar polyelectrolytes, capable of amplifying electrical signals. The actual nature of these electrodynamic capabilities remains largely unknown. Herein we applied the patch clamp technique to two-dimensional MT sheets, to characterize their electrical properties. Voltage-clamped MT sheets generated cation-selective oscillatory electrical currents whose magnitude depended on both the holding potential, and ionic strength and composition. The oscillations progressed through various modes including single and double periodic regimes and more complex behaviours, being prominent a fundamental frequency at 29 Hz. In physiological K+ (140 mM), oscillations represented, in average a 640% change in conductance that was also affected by the prevalent anion. Current injection induced voltage, thus showing excitability akin with action potentials. The electrical oscillations were entirely blocked by taxol, with pseudo Michaelis-Menten kinetics a KD of ~1.29 μM. The findings suggest a functional role of the nanopores in the MT wall on the genesis of electrical oscillations that offer new insights into the nonlinear behaviour of the cytoskeleton.