Master of none: GPRC6A gene loss is more widespread than previously known

Saumya Gupta1, Ajinkya Bharatraj Patil2,3, Aswin S Soman2

  • 1Computational Evolutionary Genomics Lab, Department of Biological Sciences, IISER Bhopal, Bhauri, Madhya Pradesh, India. saumya19@iiserb.ac.in.

Genetica
|January 16, 2026
PubMed

Insights

The GPRC6A gene, involved in metabolic regulation, has been independently lost multiple times across vertebrate evolution. This suggests its function is not essential and is dispensable in specific lineages.

Area of Science:

  • Genomics
  • Evolutionary Biology
  • Metabolic Research

Background:

  • GPRC6A, a class C GPCR, is implicated in metabolic regulation but its function is debated due to conflicting studies and loss-of-function mutations.
  • Previous research noted GPRC6A gene disruption in toothed whales, contrasting with its conservation in related families.

Purpose of the Study:

  • To investigate the evolutionary loss of the GPRC6A gene across mammalian species.
  • To understand the implications of GPRC6A gene loss on metabolic regulation and niche specialization.

Main Methods:

  • Employed a synteny-informed comparative genomic approach.
  • Analyzed genomes and sequencing data from diverse vertebrate species, including monotremes, bats, and shrews.
  • Searched for independent GPRC6A gene loss events.

Main Results:

  • Identified widespread, independent loss of the GPRC6A gene in various mammalian lineages, including Bovidae and fully aquatic mammals (Sirenia).
  • Documented at least nine independent GPRC6A gene loss events across vertebrates.
  • Highlighted the lineage-specific dispensability of GPRC6A.

Conclusions:

  • The evolutionary loss of GPRC6A is likely a response to specialized diets and ecological niches.
  • Niche specialization influences gene retention and loss within the GPCR landscape.
  • GPRC6A's function may be context-dependent, explaining its dispensability in certain species.

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