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  5. Cell wall composition determines handedness reversal in helicoidal cellulose architectures of Pollia condensata fruits.

Cell wall composition determines handedness reversal in helicoidal cellulose architectures of Pollia condensata fruits.

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Resource type
Journal article
Creator (person)
Chang, Yin
Middleton, Rox
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Ogawa, Yu
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Gregory, Tom
Steiner, Lisa M.
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Kovalev, Alexander
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Karanja, Rebecca H. N.
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Rudall, Paula J.
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Glover, Beverley J.
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Gorb, Stanislav N.
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Vignolini, Silvia
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Date published
December 15, 2021
Abstract
Chiral asymmetry is important in a wide variety of disciplines and occurs across length scales. While several natural chiral biomolecules exist only with single handedness, they can produce complex hierarchical structures with opposite chiralities. Understanding how the handedness is transferred from molecular to the macroscopic scales is far from trivial. An intriguing example is the transfer of the handedness of helicoidal organizations of cellulose microfibrils in plant cell walls. These cellulose helicoids produce structural colors if their dimension is comparable to the wavelength of visible light. All previously reported examples of a helicoidal structure in plants are left-handed except, remarkably, in the fruit; both left- and right-handed helicoidal cell walls are found in neighboring cells of the same tissue. By simultaneously studying optical and mechanical responses of cells with different handednesses, we propose that the chirality of helicoids results from differences in cell wall composition. In detail, here we showed statistical substantiation of three different observations: 1) light reflected from right-handed cells is red shifted compared to light reflected from left-handed cells, 2) right-handed cells occur more rarely than left-handed ones, and 3) right-handed cells are located mainly in regions corresponding to interlocular divisions. Finally, 4) right-handed cells have an average lower elastic modulus compared to left-handed cells of the same color. Our findings, combined with mechanical simulation, suggest that the different chiralities of helicoids in the cell wall may result from different chemical composition, which strengthens previous hypotheses that hemicellulose might mediate the rotations of cellulose microfibrils.
Funder
Funder nameAwards
Engineering and Physical Sciences Research Council, United Kingdom
NanoDTC - EP/G037221/1 - EP/R513179/
Cambridge Trust, United Kingdom
Biotechnology and Biological Sciences Research Council, United Kingdom
David Phillips Fellowship BB/K014617/1
European Research Council, European Union
SeSaME ERC-2014-STG H2020 639088
Cambridge-Africa ALBORADA Research Fund
Journal title
Proceedings of the National Academy of Sciences
Volume
118
Issue
51
Article number
e2111723118
Publisher
National Academy of Sciences
Place of publication
US
ISSN
0027-8424
eISSN
1091-6490
Date accepted
October 31, 2021
Official URL
https://www.pnas.org/content/118/51/e2111723118/
Related URL
https://doi.org/10.1073/pnas.2111723118
Rights statement
In Copyright
Licence
https://creativecommons.org/licenses/by-nc-nd/4.0/
DOI
10.1073/pnas.2111723118
Keywords
Chirality
Mechanical properties of plant cell wall
Cellulose–hemicellulose interaction
Fruits
Pollia condensata
Structural colors
Helicoidal cell wall
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