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6 - Recent Advances on Acellular Cementum Increments Composition Using Synchrotron X-Radiation

from Part I - The Biology of Cementum

Published online by Cambridge University Press:  20 January 2022

Stephan Naji
Affiliation:
New York University
William Rendu
Affiliation:
University of Bordeaux (CNRS)
Lionel Gourichon
Affiliation:
Université de Nice, Sophia Antipolis
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Summary

Acellular cementum anchors the root to the alveolar socket via the periodontal ligament and grows in layers continuously throughout life, unlike enamel and dentin. Increments are deposited in a biannual light-dark pattern correlated to age and season at death in transmitted light microscopy. This study investigates the still debated structure of individual acellular increments using x-ray fluorescence and x-ray diffraction mapping with synchrotron radiation microbeams on reindeer, red deer, cattle, and human samples. Results show that Ca or Zn x-ray fluorescent intensities and cAp diffracted intensity reveal cementum band structure. Average crystallographic texture (of cAp nanoplatelets’ orientation and collagen fibril orientations) is constant for each specimen. Microtextural variation is also present across individual bands, demonstrating that the overall collagen fibril orientation undergoes subtle changes with season. Patterns of “feast or famine” and concomitant changes in amount and intensity of PDL loading might produce altered collagen (and cAp) orientations between the “good” and the “bad” seasons for ungulates but maybe not for modern human populations.

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Publisher: Cambridge University Press
Print publication year: 2022

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References

Almer, J., & Stock, S. R. (2007). Micromechanical response of mineral and collagen phases in bone. Journal of Structural Biology, 157, 365–70.CrossRefGoogle ScholarPubMed
Colard, T., Bertrand, B., Naji, S., Delannoy, Y., & Bécart, A. (2015). Toward the adoption of cementochronology in forensic context. International Journal of Legal Medicine, 129, 18.Google Scholar
Colard, T., Falgayrac, G., Bertrand, B., … Penel, G. (2016). New insights on the composition and the structure of the acellular extrinsic fiber cementum by Raman analysis. PLOS One, 11(12): e0167316.CrossRefGoogle ScholarPubMed
Cool, S. M., Forwood, M. R., Campbell, P., & Bennett, M. B. (2002). Comparisons between bone and cementum compositions and the possible basis for their layered appearances. Bone, 30(2): 386–92.Google Scholar
Cullity, B. D., & Stock, S. R. (2001). Elements of X-Ray Diffraction, 3rd ed. Upper Saddle River, NJ: Pearson.Google Scholar
Dean, C., Le Cabec, A., Spiers, K., Zhang, Y., & Garrevoet, J. (2018). Incremental distribution of strontium and zinc in great ape and fossil hominin cementum using synchrotron X-ray fluorescence mapping. Journal of the Royal Society, Interface, 15(138): 20170626.Google Scholar
Lieberman, D. E. (1994). The biological basis for seasonal increments in dental cementum and their application to archaeological research. Journal of Archaeological Science, 21, 525–39.CrossRefGoogle Scholar
Naji, S., Colard, T., Blondiaux, J., Bertrand, B., d’Incau, E., & Bocquet-Appel, J.-P. (2016). Cementochronology, to cut or not to cut? International Journal of Paleopathology, 15, 113–19.CrossRefGoogle ScholarPubMed
Oliviera, C., Bergqvist, L., & Line, S. (2001). A comparative analysis of the structure of the dentinoenamel junction in mammals. Journal of Oral Science, 43, 277–81.Google Scholar
Pike-Tay, A. (1995). Variability and synchrony of seasonal indicators in dental cementum microstructure of the Kaminuriak caribou population. Archaeofauna, 4: 273–84.Google Scholar
Rendu, W. (2010). Hunting behavior and Neanderthal adaptability in the Late Pleistocene site of Pech-de-l’Azé I. Journal of Archaeological Science, 37(8): 17981810.Google Scholar
Renz, H., Schaefer, V., Duschner, H., & Radlanski, R. J. (1997). Incremental lines in root cementum of human teeth: An approach to their ultrastructural nature by microscopy. Advances in Dental Research, 11(4): 472–7.CrossRefGoogle ScholarPubMed
Schindelin, J., Arganda-Carreras, I., Frise, E., … Cardona, A. (2012). Fiji: An open-source platform for biological-image analysis. Nature Methods, 9(7): 676–82.Google Scholar
Smith, K. G., Strother, K. A., Rose, J. C., & Savelle, J. M. (1994). Chemical ultrastructure of cementum growth-layers of teeth of black bears. Journal of Mammalogy, 75(2): 406.Google Scholar
Stock, S. R. (2015). The mineral–collagen interface in bone. Calcified Tissue International, 97(3): 262–80.CrossRefGoogle ScholarPubMed
Stock, S. R., Finney, L. A., Telser, A., Maxey, E., Vogt, S., & Okasinski, J. S. (2017). Cementum structure in Beluga whale teeth. Acta Biomaterialia, 48, 289–99.Google Scholar
Stock, S. R., Veis, A., Telser, A., & Cai, Z. (2011). Near tubule and intertubular bovine dentin mapped at the 250 nm level. Journal of Structural Biology, 176(2): 203–11.Google Scholar
Stock, S. R., Vieira, A. E. M., Delbem, A. C. B., Cannon, M. L., Xiao, X., & Carlo, F. D. (2008). Synchrotron microcomputed tomography of the mature bovine dentinoenamel junction. Journal of Structural Biology, 161(2): 162–71.CrossRefGoogle ScholarPubMed
Whittaker, D. K. (1978). The enamel–dentine junction of human and Macaca irus teeth: A light and electron microscopic study. Journal of Anatomy, 125(Pt 2): 323–35.Google ScholarPubMed
Yamamoto, T., Hasegawa, T., Yamamoto, T., Hongo, H., & Amizuka, N. (2016). Histology of human cementum: Its structure, function, and development. Japanese Dental Science Review, 52(3): 6374.Google Scholar

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