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The helmeted hornbill casque is reinforced by a bundle of exceptionally thick, rod-like trabeculae

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

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Abstract

Among hornbill birds, the critically endangered helmeted hornbill (Rhinoplax vigil) is notable for its casque (a bulbous beak protrusion) being filled with trabeculae and fronted by a very thick keratin layer. Casque function is debated but appears central to aerial jousting, where birds (typically males) collide casques at high speeds in a mid-flight display that is audible for more than 100 m. We characterized the structural relationship between the skull and casque anatomy using X-ray microtomography and quantitative trabecular network analysis to examine how the casque sustains extreme impact. The casque comprises a keratin veneer (rhamphotheca, ∼8× thicker than beak keratin), which slots over the internal bony casque like a tight-fitting sheath. The bony casque's central cavity contains a network of trabeculae—heavily aligned and predominantly rod-like, among the thickest described in vertebrates—forming a massive rostrocaudal strut spanning the casque's length, bridging rostral (impact), and caudal (braincase) surfaces. Quantitative network characterizations indicate no differences between male and female trabecular architectures. This suggests that females may also joust or that casques play other roles. Our results argue that the casque's impact loading demands and shapes a high-safety-factor construction that involves extreme trabecular morphologies among vertebrates, architectures that also have the potential for informing the design of collision-resistant materials. © 2025 The New York Academy of Sciences.
Original languageEnglish
Pages (from-to)78-91
JournalAnnals of the New York Academy of Sciences
Volume1544
Issue number1
Online published6 Jan 2025
DOIs
Publication statusPublished - Feb 2025

Funding

We thank the Hong Kong Agriculture, Fisheries & Conservation Department (AFCD) for the donation of material; K.C. Chan for his support and X-ray microtomography scanning at The Hong Kong Polytechnic University; and Justin Grubb and Aurore Maxey (Planet Indonesia, https://www.planetindonesia.org/) for use of the lovely hornbill image in Figure 1A. Many thanks to Maria Jose Robles Malagamba for hornbill insights, enthusiasm, and help with specimens. In Melbourne, we thank the Melbourne TrACEES (Trace Analysis for Chemical, Earth and Environmental Sciences) Platform for access to the micro-CT scanner, Dr. Jay Black for scanning technical support, and Di Bray and Martin Gomon for specimen assistance. We thank Sylke Frahnert (Museum für Naturkunde Berlin) for the loan of the Berlin specimen, John Nyakatura for access to the x-ray microtomography scanner in the Department of Comparative Zoology (Institute of Biology, Humboldt University of Berlin), and Léo Botton-Divet for his time and expertise performing the scans. A grant to M.N.D. from the Joint Research Scheme sponsored by the Research Grants Council (RGC) of the Hong Kong Special Administrative Region, China, and the German Academic Exchange Service (G-CityU103/22) supported work in Berlin. We thank Christine Böhmer, her Zoology and Functional Morphology of Vertebrates group, and Romy Kreschel for access to the Buceros specimen at the Zoological Institute, Christian-Albrechts-Universität zu Kiel. Mélanie Debiais-Thibaud and Mehdi Mouana generously provided access to the Bycanistes specimen, which was scanned via a grant to M.N.D. from the Joint Research Scheme sponsored by the RGC and the Consulate General of France in Hong Kong (F-CityU103/21); scanning was performed at the Montpellier MRI platform, a member of the national infrastructure France-BioImaging supported by the French National Research Agency (ANR-10-INBS-04, “Investments for the future”), the Labex CEMEB (ANR-10-LABX-0004), and NUMEV (ANR-10-LABX-0020). V.A.S. and M.S. were supported by an HFSP Program grant (RGP0010-2020) to M.N.D. This work was also funded in part by a Strategic Interdisciplinary Research Grant of City University of Hong Kong (#7020042) awarded to M.N.D.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 15 - Life on Land
    SDG 15 Life on Land

Research Keywords

  • biomaterials
  • illegal wildlife trade
  • impact resistance
  • Rhinoplax vigil
  • trabecular bone
  • traumatic brain injury

Publisher's Copyright Statement

  • This full text is made available under CC-BY-NC 4.0. https://creativecommons.org/licenses/by-nc/4.0/

RGC Funding Information

  • RGC-funded

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