» Articles » PMID: 12228638

Temperature Affects Expansion Rate of Maize Leaves Without Change in Spatial Distribution of Cell Length (Analysis of the Coordination Between Cell Division and Cell Expansion)

Overview
Journal Plant Physiol
Specialty Physiology
Date 1995 Nov 1
PMID 12228638
Citations 58
Authors
Affiliations
Soon will be listed here.
Abstract

We have analyzed the way in which temperature affects leaf elongation rate of maize (Zea mays L.) leaves, while spatial distributions (observed at a given time) of cell length and of proportion of cells in DNA replication are unaffected. We have evaluated, in six growth chamber experiments with constant temperatures (from 13 to 34[deg]C) and two field experiments with fluctuating temperatures, (a) the spatial distributions of cell length and of leaf elongation rate, and (b) the distribution of cell division, either by using the continuity equation or by flow cytometry. Leaf elongation rate was closely related to meristem temperature, with a common relationship in the field and in the growth chamber. Cell division and cell elongation occurred in the first 20 and 60 mm after the ligule, respectively, at all temperatures. Similar quantitative responses to temperature were observed for local cell division and local tissue expansion rates (common x intercept and normalized slope), and both responses were spatially uniform over the whole expanding zone (common time courses in thermal time). As a consequence, faster cell elongation matched faster cell division rate and faster elongation was compensated for by faster cell displacement, resulting in temperature-invariant profiles of cell length and of proportion of dividing cells. Cell-to-cell communication, therefore, was not necessary to account for coordination.

Citing Articles

Functional retrogression of LOFSEPs in specifying floral organs in barley.

Shen C, Yang X, Wang D, Li G, Tucker M aBIOTECH. 2025; 6(1):1-11.

PMID: 40060184 PMC: 11889289. DOI: 10.1007/s42994-024-00182-4.


Temperature-sensing riboceptors.

Anbalagan S RNA Biol. 2024; 21(1):1-6.

PMID: 39016038 PMC: 11259075. DOI: 10.1080/15476286.2024.2379118.


Cellular dynamics in the maize leaf growth zone during recovery from chilling depends on the leaf developmental stage.

Laine C, AbdElgawad H, Beemster G Plant Cell Rep. 2024; 43(2):38.

PMID: 38200224 DOI: 10.1007/s00299-023-03116-4.


Identification of Morphogenesis-Related NDR Kinase Signaling Network and Its Regulation on Cold Tolerance in Maize.

Tian R, Xie S, Zhang J, Liu H, Li Y, Hu Y Plants (Basel). 2023; 12(20).

PMID: 37896102 PMC: 10610150. DOI: 10.3390/plants12203639.


Genomic-regions associated with cold stress tolerance in Asia-adapted tropical maize germplasm.

Shikha K, Madhumal Thayil V, Shahi J, Zaidi P, Seetharam K, Nair S Sci Rep. 2023; 13(1):6297.

PMID: 37072497 PMC: 10113201. DOI: 10.1038/s41598-023-33250-8.


References
1.
Schnyder H, Nelson C, Coutts J . Assessment of spatial distribution of growth in the elongation zone of grass leaf blades. Plant Physiol. 1987; 85(1):290-3. PMC: 1054243. DOI: 10.1104/pp.85.1.290. View

2.
Bernstein N, Lauchli A, Silk W . Kinematics and Dynamics of Sorghum (Sorghum bicolor L.) Leaf Development at Various Na/Ca Salinities (I. Elongation Growth). Plant Physiol. 1993; 103(4):1107-1114. PMC: 159095. DOI: 10.1104/pp.103.4.1107. View

3.
Lopez-Saez J, Gimenez-Martin G, Gonzalez-Fernandez A . Duration of the cell division cycle and its dependence on temperature. Z Zellforsch Mikrosk Anat. 1966; 75(3):591-600. DOI: 10.1007/BF00341516. View

4.
Gastal F, Nelson C . Nitrogen Use within the Growing Leaf Blade of Tall Fescue. Plant Physiol. 1994; 105(1):191-197. PMC: 159345. DOI: 10.1104/pp.105.1.191. View

5.
MacAdam J, Volenec J, Nelson C . Effects of nitrogen on mesophyll cell division and epidermal cell elongation in tall fescue leaf blades. Plant Physiol. 1989; 89(2):549-56. PMC: 1055880. DOI: 10.1104/pp.89.2.549. View