Abstract
The study of gravisensing would be greatly enhanced if physiological events associated with gravity sensing could be detected separately from subsequent growth processes. This report presents a means to discriminate sensing from the growth processes. By using a vibrating probe, we have found an electric current generated by the gravity sensing region of the root cap of maize (Zea mays cv Merit) in response to gravistimulation. On the upper surface of the root cap, the change from the endogenous current has a density of 0.55 microampere per square centimeter away from gravity. The onset of the current shift has a characteristic of lag of three to four minutes after gravistimulation, which corresponds to the presentation time for gravity sensing in this tissue. A description of the current provides some information about the sensing mechanism, as well as being a valuable means to detect gravity sensing independently of differential growth.
Keywords
NASA Discipline Number 40-10
NASA Discipline Plant Biology
NASA Program Space Biology
Non-NASA Center
MeSH Terms
Electric Conductivity
Electrophysiology
Gravitropism/physiology
Gravity Sensing/physiology
Plant Root Cap/growth & development,physiology
Plant Roots/physiology
Proton Pumps
Signal Transduction/physiology
Time Factors
Zea mays/growth & development,physiology
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Björkman T
Boyce Thompson Institute for Plant Research, Cornell University, Ithaca, New York 14853-1801, USA.
Leopold A C
Investigators
1 investigators, click to expand
Leopold A C
Cornell U, Ithaca, NY
References (14)
14 references, click to expand
-
Natural H Currents Traverse Growing Roots and Root Hairs of Barley (Hordeum vulgare L.).
Plant Physiol. 1979 Sep;64(3):512-8
PMID: 16661000
-
Geotropism in corn roots: evidence for its mediation by differential Acid efflux.
Science. 1981 Apr 3;212(4490):70-1
PMID: 17747632
-
POLARIZATION AND STIMULATION OF THE ONION ROOT BY DIRECT CURRENT.
Plant Physiol. 1943 Jul;18(3):372-96
PMID: 16653859
-
Gravity-Induced Polar Transport of Calcium across Root Tips of Maize.
Plant Physiol. 1983 Dec;73(4):874-6
PMID: 16663333
-
Electrical controls of development.
Annu Rev Biophys Bioeng. 1977;6:445-76
PMID: 326151
-
CHANGES IN ELECTRICAL POLARITY IN THE AVENA COLEOPTILE AS AN ANTECEDENT TO HORMONE ACTION IN GEOTROPIC RESPONSE.
Plant Physiol. 1945 Jan;20(1):133-6
PMID: 16653960
-
An ultrasensitive vibrating probe for measuring steady extracellular currents.
J Cell Biol. 1974 Nov;63(2 Pt 1):614-28
PMID: 4421919
-
ELECTRICAL AND CURVATURE RESPONSES OF THE AVENA COLEOPTILE TO TRANSVERSELY APPLIED DIRECT CURRENT.
Plant Physiol. 1948 Apr;23(2):188-200
PMID: 16654153
-
Ionic currents traverse the slime mould physarum.
Cell Biol Int Rep. 1981 Apr;5(4):375-9
PMID: 7226252
-
PROOF OF THE PRINCIPLE OF SUMMATION OF CELL E.M.F.'S.
Plant Physiol. 1935 Apr;10(2):209-24
PMID: 16653267
-
Amyloplast sedimentation kinetics in gravistimulated maize roots.
Planta. 1985;165:295-300
PMID: 11540854
-
Gravity and intracellular differences in membrane potentials of plant cells.
Plant Physiol. 1972 Jun;49(6):1019-20
PMID: 16658069
-
Localization of ionic pathways in the teleost opercular membrane by extracellular recording with a vibrating probe.
J Membr Biol. 1983;75(3):193-203
PMID: 6313928
-
Rapid Changes in the Pattern of Electric Current around the Root Tip of Lepidium sativum L. following Gravistimulation.
Plant Physiol. 1982 Oct;70(4):1079-83
PMID: 16662617