Mucolipidosis types II and III and non-syndromic stuttering are associated with different variants in the same genes

M Hashim Raza1, Carlos E F Domingues1, Ronald Webster2

  • 1Laboratory of Communication Disorders, National Institute on Deafness and Other Communication Disorders, National Institutes of Health, Porter Neuroscience Research Center, Bethesda, MD, USA.

Insights

Rare variants in GNPTAB, GNPTG, and NAGPA genes are linked to persistent stuttering. These genetic variations, distinct from those causing mucolipidosis, may explain up to 16% of stuttering cases.

Area of Science:

  • Genetics
  • Neurodevelopmental disorders

Background:

  • Mucolipidosis II (ML II) and ML III are lysosomal storage disorders caused by homozygous mutations in GNPTAB and GNPTG.
  • Recently, variants in GNPTAB, GNPTG, and NAGPA have been implicated in non-syndromic persistent stuttering.

Purpose of the Study:

  • To investigate the association between rare non-synonymous coding variants in GNPTAB, GNPTG, and NAGPA and persistent stuttering.
  • To compare the frequency and location of these variants with those found in mucolipidosis and population controls.

Main Methods:

  • Analysis of a worldwide sample of 1013 unrelated individuals with persistent stuttering.
  • Comparison of variant frequencies with population-matched controls and genomic databases (1000 Genomes, Exome Sequencing Project).
  • Examination of variant locations relative to those reported in mucolipidosis.

Main Results:

  • 164 out of 1013 stuttering individuals carried rare non-synonymous coding variants in GNPTAB, GNPTG, or NAGPA.
  • Stuttering subjects showed an excess of these variants compared to controls.
  • 81 distinct variants were identified in stuttering cases, predominantly missense substitutions, with only one previously linked to mucolipidosis.

Conclusions:

  • Rare non-synonymous variants in GNPTAB, GNPTG, and NAGPA may contribute to approximately 16% of persistent stuttering cases.
  • These stuttering-associated variants appear to have less severe effects on protein function compared to loss-of-function mutations causing ML II and ML III.

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