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Echinodermata: The complex immune system in echinoderms

  • L. Courtney Smith*
  • , Vincenzo Arizza
  • , Megan A. Barela Hudgell
  • , Gianpaolo Barone
  • , Andrea G. Bodnar
  • , Katherine M. Buckley
  • , Vincenzo Cunsolo
  • , Nolwenn M. Dheilly
  • , Nicola Franchi
  • , Sebastian D. Fugmann
  • , Ryohei Furukawa
  • , Jose Garcia-Arraras
  • , John H. Henson
  • , Taku Hibino
  • , Zoe H. Irons
  • , Chun Li
  • , Cheng Man Lun
  • , Audrey J. Majeske
  • , Matan Oren
  • , Patrizia Pagliara
  • Annalisa Pinsino, David A. Raftos, Jonathan P. Rast, Bakary Samasa, Domenico Schillaci, Catherine S. Schrankel, Loredana Stabili, Klara Stensväg, Elisse Sutton
*Corresponding author for this work
  • George Washington University
  • University of Palermo
  • Bermuda Institute of Ocean Sciences
  • Gloucester Marine Genomics Institute
  • University of Catania
  • Stony Brook University
  • University of Padua
  • Keio University
  • University of Puerto Rico
  • Dickinson College, Pennsylvania
  • Saitama University
  • University of Tromsø – The Arctic University of Norway
  • National Institutes of Health
  • University of Puerto Rico
  • Emory University
  • Ariel University
  • University of Salento
  • National Research Council of Italy
  • Macquarie University
  • University of Toronto
  • University of California at San Diego

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

88 Scopus citations

Abstract

The Echinodermata are an ancient phylum of benthic marine invertebrates with a dispersal-stage planktonic larva. These animals have innate immune systems characterized initially by clearance of foreign particles, including microbes, from the body cavity of both larvae and adults, and allograft tissue rejection in adults. Immune responsiveness is mediated by a variety of adult coelomocytes and larval mesenchyme cells. Echinoderm diseases from a range of pathogens can lead to mass die-offs and impact aquaculture, but some individuals can recover. Genome sequences of several echinoderms have identified genes with immune function, including expanded families of Toll-like receptors, NOD-like receptors, and scavenger receptors with cysteine-rich domains, plus signaling pathways and cytokines. The set of transcription factors that regulate proliferation and differentiation of the cellular immune system are conserved and indicate the ancestral origins of hematopoiesis. Both larval and adult echinoderms are in constant contact with potential pathogens in seawater, and they respond to infection by phagocytosis and encapsulation, and employ proteins that function in immune detection and response. Antipathogen responses include activation of the SpTransformer genes, a complement system, and the production of many types of antimicrobial peptides. Echinoderms have homologues of the recombinase activating genes plus all associated genes that function in vertebrates for immunoglobulin gene family rearrangement, although their gene targets are unknown. The echinoderm immune system has been characterized as unexpectedly complex, robust, and flexible. Many echinoderms have very long life-spans that correlate with an excellent capacity for cell damage repair. In many marine ecosystems, echinoderms are keystone predators and herbivores, and therefore are species that can serve as optimal sentinels of environmental health. Coelomocytes can be employed in sensor systems to test for the presence of marine pollutants. When Elie Metchnikoff inserted a rose prickle into a larval sea star and observed chemotaxis, phagocytosis, and encapsulation by the mesenchyme cells, he initiated not only the field of immunology but also that of comparative immunology, of which the echinoderms have been an important part.

Original languageEnglish
Title of host publicationAdvances in Comparative Immunology
PublisherSpringer International Publishing
Pages409-501
Number of pages93
ISBN (Electronic)9783319767680
ISBN (Print)9783319767673
DOIs
StatePublished - 01 01 2018

Bibliographical note

Publisher Copyright:
© Springer International Publishing AG.

UN SDGs

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

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being
  2. SDG 14 - Life Below Water
    SDG 14 Life Below Water

Keywords

  • Asteroidea
  • Brittle stars
  • Coelomocytes
  • Crinoidea
  • Diseases
  • Echinoidea
  • Genomics
  • Holothuroidea
  • Immune development
  • Immune responses
  • Immuno-toxicology
  • Larval immune cells
  • Ophiuroidea
  • Proteomics
  • Sea cucumbers
  • Sea lilies
  • Sea stars
  • Sea urchins
  • Senescence

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