Abstract
Fibers are one of the mechanical tissues that provide structural support to the plant body. To understand how the normal mechanical strength of fibers is regulated, we isolated an Arabidopsis fragile fiber (fra2) mutant defective in the mechanical strength of interfascicular fibers in the inflorescence stems. Anatomical and chemical analyses showed that the fra2 mutation caused a reduction in fiber cell length and wall thickness, a decrease in cellulose and hemicellulose contents, and an increase in lignin condensation, indicating that the fragile fiber phenotype of fra2 is a result of alterations in fiber cell elongation and cell wall biosynthesis. In addition to the effects on fibers, the fra2 mutation resulted in a remarkable reduction in cell length and an increase in cell width in all organs, which led to a global alteration in plant morphology. The FRA2 gene was shown to encode a protein with high similarity to katanin (hence FRA2 was renamed AtKTN1), a protein shown to be involved in regulating microtubule disassembly by severing microtubules. Consistent with the putative function of AtKTN1 as a microtubule-severing protein, immunolocalization demonstrated that the fra2 mutation caused delays in the disappearance of perinuclear microtubule array and in the establishment of transverse cortical microtubule array in interphase and elongating cells. Together, these results suggest that AtKTN1, a katanin-like protein, is essential not only for normal cell wall biosynthesis and cell elongation in fiber cells but also for cell expansion in all organs.
MeSH Terms
Adenosine Triphosphatases/genetics,metabolism
Amino Acid Sequence
Arabidopsis/cytology,genetics,metabolism
Arabidopsis Proteins
Cell Wall/metabolism
Cellulose/biosynthesis
DNA, Complementary/isolation & purification
Immunohistochemistry
Katanin
Lignin/biosynthesis
Mass Spectrometry
Microscopy, Electron, Scanning
Microtubules/metabolism
Molecular Sequence Data
Mutation
Phenotype
Plant Proteins/genetics,metabolism
Polysaccharides/biosynthesis
Sequence Alignment
Chemicals
Arabidopsis Proteins
DNA, Complementary
Plant Proteins
Polysaccharides
hemicellulose
Cellulose
Lignin
Adenosine Triphosphatases
KTN1 protein, Arabidopsis
Katanin
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Burk D H
Department of Botany, University of Georgia, Athens, Georgia 30602, USA.
Liu B
Zhong R
Morrison W H
Ye Z H
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