Evidence map›Paper›PMID 37368324›Full record

ArticleNanomaterials (Basel, Switzerland)2023

Structure and Optical Anisotropy of Spider Scales and Silk: The Use of Chromaticity and Azimuth Colors to Optically Characterize Complex Biological Structures.

Denver Linklater, Arturas Vailionis, Meguya Ryu, Shuji Kamegaki, Junko Morikawa, Haoran Mu, Daniel Smith, Pegah Maasoumi, Rohan Ford, Tomas Katkus and 10 more

Abstract read
In one paragraph

Article in Nanomaterials (Basel, Switzerland), 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 2 papers.

0numbers the graph read from it
0cells of the map it votes in
2citing papers in PubMed
–field-weighted citation impact
1 · What the graph read from it

What it found

Each row is one number read from the abstract, on the scale the paper reported it, with its interval. Left of the dashed line favours the treatment, right favours the comparator. Under each row is the sentence it came from. New to these charts? A ten-minute tutorial.

The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

The trial behind it

Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.

Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.

3 · Its place in the literature

Who cites it

2 citing papers in PubMed.

  1. Article
  2. Article
4 · The record

Corrections and comments

PubMed lists nothing against this paper. Absence here is not a guarantee, only a check that was made.

5 · Who and what money

Authors and funding

20 authors.

Denver LinklaterDepartment of Biomedical Engineering, Melbourne University, Parkville, VIC 3010, Australia.ORCID 0000-0003-1433-3685
Arturas VailionisStanford Nano Shared Facilities, Stanford University, Stanford, CA 94305-4088, USA.
Meguya RyuNational Metrology Institute of Japan (NMIJ), National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba Central 3, 1-1-1 Umezono, Tsukuba 305-8563, Japan.ORCID 0000-0002-0169-6893
Shuji KamegakiCREST-JST and School of Materials and Chemical Technology, Tokyo Institute of Technology, Ookayama, Meguro-ku, Tokyo 152-8550, Japan.ORCID 0009-0000-3900-7961
Junko MorikawaCREST-JST and School of Materials and Chemical Technology, Tokyo Institute of Technology, Ookayama, Meguro-ku, Tokyo 152-8550, Japan.
Haoran MuOptical Sciences Centre (OSC), ARC Training Centre in Surface Engineering for Advanced Materials (SEAM), School of Science, Swinburne University of Technology, Hawthorn, VIC 3122, Australia.ORCID 0000-0001-6561-6293
Daniel SmithOptical Sciences Centre (OSC), ARC Training Centre in Surface Engineering for Advanced Materials (SEAM), School of Science, Swinburne University of Technology, Hawthorn, VIC 3122, Australia.ORCID 0000-0002-2543-5209
Pegah MaasoumiOptical Sciences Centre (OSC), ARC Training Centre in Surface Engineering for Advanced Materials (SEAM), School of Science, Swinburne University of Technology, Hawthorn, VIC 3122, Australia.
Rohan FordOptical Sciences Centre (OSC), ARC Training Centre in Surface Engineering for Advanced Materials (SEAM), School of Science, Swinburne University of Technology, Hawthorn, VIC 3122, Australia.
Tomas KatkusOptical Sciences Centre (OSC), ARC Training Centre in Surface Engineering for Advanced Materials (SEAM), School of Science, Swinburne University of Technology, Hawthorn, VIC 3122, Australia.
Sean BlamiresMark Wainwright Analytical Centre, University of New South Wales, Sydney, NSW 2052, Australia.ORCID 0000-0001-5953-3723
Toshiaki KondoDepartment of Mechanical Systems Engineering, Aichi University of Technology, Gamagori 443-0047, Japan.
Yoshiaki NishijimaDepartment of Electrical and Computer Engineering, Graduate School of Engineering, Yokohama National University, 79-5 Tokiwadai, Hodogaya-ku, Yokohama 240-8501, Japan.
Daniel MoraruResearch Institute of Electronics, Shizuoka University, Johoku 3-5-1, Hamamatsu 432-8011, Japan.ORCID 0000-0002-8087-8344
Michael ShribakMarine Biological Laboratory, University of Chicago, Woods Hole, MA 02543, USA.ORCID 0000-0002-5849-6294
Andrea O'ConnorDepartment of Biomedical Engineering, Melbourne University, Parkville, VIC 3010, Australia.
Elena P IvanovaCollege of STEM, School of Science, RMIT University, Melbourne, VIC 3000, Australia.ORCID 0000-0002-5509-8071
Soon Hock NgOptical Sciences Centre (OSC), ARC Training Centre in Surface Engineering for Advanced Materials (SEAM), School of Science, Swinburne University of Technology, Hawthorn, VIC 3122, Australia.ORCID 0000-0002-9164-3399
Hideki MasudaDepartment of Applied Chemistry, Tokyo Metropolitan University, Hachioji, Tokyo 192-0397, Japan.
Saulius JuodkazisWRH Program International Research Frontiers Initiative (IRFI), Tokyo Institute of Technology, Nagatsuta-cho, Midori-ku, Yokohama 226-8503, Japan.ORCID 0000-0003-3542-3874

Funding

Orientation Independent DIC and Polarization MicroscopyR01GM101701 · NIGMS · MARINE BIOLOGICAL LABORATORY · PI SHRIBAK, MICHAEL · 2012 to 2020
$3.8M
NIGMS NIH HHS R01 GM101701
6 · The paper itself

Abstract

Herein, we give an overview of several less explored structural and optical characterization techniques useful for biomaterials. New insights into the structure of natural fibers such as spider silk can be gained with minimal sample preparation. Electromagnetic radiation (EMR) over a broad range of wavelengths (from X-ray to THz) provides information of the structure of the material at correspondingly different length scales (nm-to-mm). When the sample features, such as the alignment of certain fibers, cannot be characterized optically, polarization analysis of the optical images can provide further information on feature alignment. The 3D complexity of biological samples necessitates that there be feature measurements and characterization over a large range of length scales. We discuss the issue of characterizing complex shapes by analysis of the link between the color and structure of spider scales and silk. For example, it is shown that the green-blue color of a spider scale is dominated by the chitin slab's Fabry-Pérot-type reflectivity rather than the surface nanostructure. The use of a chromaticity plot simplifies complex spectra and enables quantification of the apparent colors. All the experimental data presented herein are used to support the discussion on the structure-color link in the characterization of materials.

Indexed as

anisotropypolarimetrypolarization analysisStokes parameters

Identifiers

PMID37368324
PMCPMC10304035

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Registered trials

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.