Evolutionary history of metazoan TMEM16 family

Xuye Yuan1, Yu Zhu1, David Ruiz-Carrillo2

  • 1Department of Biological Sciences, Xi'an Jiaotong-Liverpool University, 111 Ren'ai Road, Suzhou Dushu Lake Higher Education Town, Jiangsu Province 215123, China.

Insights

The Transmembrane protein 16 (TMEM16) family evolved through gene gain and loss in animals. Its ancient subfamilies are crucial for diverse functions, with variations in inner gate structure influencing roles as CaCC or CaPLSase.

Area of Science:

  • Evolutionary genomics
  • Molecular biology
  • Biochemistry

Background:

  • The Transmembrane protein 16 (TMEM16) family is vital in eukaryotes, with members acting as calcium-activated chloride channels (CaCC) or phospholipid scramblases (CaPLSase).
  • The evolutionary origins and diversification of TMEM16 subfamilies within Metazoa remain largely unexplored.

Purpose of the Study:

  • To investigate the evolutionary history and diversification of the TMEM16 protein family across Metazoa.
  • To identify ancient and species-specific TMEM16 subfamilies and understand their evolutionary trajectories.

Main Methods:

  • Phylogenomic analysis of 398 TMEM16 proteins from 74 invertebrate species.
  • Comparative genomics to identify gene duplication events.
  • AlphaFold2 prediction of anoctamin domain structures for invertebrate TMEM16 proteins.

Main Results:

  • Identified vertebrate-specific (TMEM16C-F, J) and ancient metazoan subfamilies (TMEM16A/B, G, H, K).
  • Discovered ancient (TMEM16L, M), Cnidaria-specific (TMEM16N), and Ecdysozoa-specific (TMEM16O) subfamilies.
  • Structural analysis revealed conserved Ca2+-binding motifs and variable inner gate structures, suggesting functional adaptation.

Conclusions:

  • The TMEM16 family evolved in Metazoa via gene gain and loss, with significant subfamily diversification.
  • Variations in TMEM16 protein structure, particularly the inner gate, likely dictate CaCC or CaPLSase function.
  • Genes are generally under purifying selection, maintaining essential protein structures and physiological roles.

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