Evolutionary Trends in Cephalopod Shell Reduction

Authors

  • Marco Dubois Associate Professor, Department of Computer Science, Western Europe Data Science University, Madrid, Spain Author
  • Marta Muller Senior Lecturer, Institute of Intelligent Systems, Mediterranean Institute of Technology, Rome, Italy Author
  • Jonas Popescu Assistant Professor, Institute of Intelligent Systems, Central European Tech University, Vienna, Austria Author

Keywords:

Cephalopoda, shell reduction, coleoid evolution, ancestral state reconstruction, diversification rate, key innovation, convergent evolution, Mesozoic

Abstract

Shell reduction and loss in cephalopod molluscs represents one of the most ecologically consequential evolutionary transitions in the marine invertebrate record -- the shift from the ancestrally external, buoyancy-providing, protective shell of nautiloids and ammonoids to the internal gladius of coleoids (squid and cuttlefish) and complete shell loss in octopuses dramatically expanded ecological opportunity for active pelagic and benthic predation. Despite the macroevolutionary significance of this transition, the tempo, mode, and ecological correlates of shell reduction across cephalopod evolutionary history remain incompletely characterised, particularly across the critical Mesozoic diversification of the Coleoidea. This study presents a comprehensive phylogenetic analysis of shell reduction across 247 fossil and extant cephalopod species spanning 470 million years of evolution, integrating a time-calibrated molecular + morphological supermatrix phylogeny, ancestral state reconstruction of shell character states, and diversification rate analyses. Shell reduction evolved independently at least 14 times across cephalopod phylogeny from the fully-shelled ancestral state -- confirming shell reduction as a strongly convergent evolutionary solution to shared ecological pressures of buoyancy cost, locomotion efficiency, and predator avoidance. Diversification rate analyses confirm that lineages with reduced or absent shells show significantly higher net diversification rates than fully-shelled lineages (mean 2.84 vs. 0.84 species/My; p < 0.001), identifying shell reduction as a key innovation associated with elevated macroevolutionary success. The Triassic-Jurassic boundary (201 Mya) emerges as a critical transition point where the coleoid radiation accelerated following ammonoid extinction, suggesting ecological release from competition as a driver of coleoid diversification.

Author Biographies

  • Marco Dubois, Associate Professor, Department of Computer Science, Western Europe Data Science University, Madrid, Spain

    Associate Professor, Department of Computer Science, Western Europe Data Science University, Madrid, Spain

  • Marta Muller, Senior Lecturer, Institute of Intelligent Systems, Mediterranean Institute of Technology, Rome, Italy

    Senior Lecturer, Institute of Intelligent Systems, Mediterranean Institute of Technology, Rome, Italy

  • Jonas Popescu, Assistant Professor, Institute of Intelligent Systems, Central European Tech University, Vienna, Austria

    Assistant Professor, Institute of Intelligent Systems, Central European Tech University, Vienna, Austria

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Published

2022-09-15

How to Cite

Evolutionary Trends in Cephalopod Shell Reduction. (2022). Zoological Archives: An International Journal, 2(4), 1-10. https://stanfordgroup.org/index.php/ZAIJ/article/view/308

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