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Phenotypic expansion in KIF1A-related dominant disorders: A description of novel variants and review of published cases

  • Ximena Montenegro-Garreaud
    ,
  • Adam W. Hansen
    ,
  • Michael M. Khayat
    ,
  • Varuna Chander
    ,
  • Christopher M. Grochowski
    ,
  • Yunyun Jiang
  • Baylor College of Medicine
    ,
  • Instituto Nacional de Salud del Niño
    ,
  • Instituto de Medicina Genética
    ,
  • UPMC Children's Hospital of Pittsburgh
    ,
  • Kanuni Sultan Suleyman Training and Research Hospital
    ,
Research Output:
Contribution to journal
Article
Peer-review

Open access

Publication Information

Output type

Research Output:
Contribution to journal
Article
Peer-review

Original language

English

Pages from-to (Number of pages)

Pages 2094-2104 (11 pages)

Journal (Volume, Issue Number)

Human Mutation (Volume 41, Issue 12)

Publication milestones

  • Published - 12/2020

Publication status

Published - 12/2020

ISSN

1059-7794

Publication IDs

  • Scopus: 85092158304
  • PubMed: 32935419

Abstract

KIF1A is a molecular motor for membrane-bound cargo important to the development and survival of sensory neurons. KIF1A dysfunction has been associated with several Mendelian disorders with a spectrum of overlapping phenotypes, ranging from spastic paraplegia to intellectual disability. We present a novel pathogenic in-frame deletion in the KIF1A molecular motor domain inherited by two affected siblings from an unaffected mother with apparent germline mosaicism. We identified eight additional cases with heterozygous, pathogenic KIF1A variants ascertained from a local data lake. Our data provide evidence for the expansion of KIF1A-associated phenotypes to include hip subluxation and dystonia as well as phenotypes observed in only a single case: gelastic cataplexy, coxa valga, and double collecting system. We review the literature and suggest that KIF1A dysfunction is better understood as a single neuromuscular disorder with variable involvement of other organ systems than a set of discrete disorders converging at a single locus.

Funding Details

We thank Fritz Sedlazeck, Medhat Mahmoud, and Moez Dawood for their insight with regard to data analysis. We thank the patients and their families for participating in this study. This study was supported in part by grants UM1 HG008898 from the National Human Genome Research Institute (NHGRI) to the Baylor College of Medicine Center for Common Disease Genetics and UM1 HG006542 from the NHGRI/National Heart, Lung, and Blood Institute (NHLBI) to the Baylor Hopkins Center for Mendelian Genomics. A. W. H. was supported in part by NIH T32 GM08307‐26 and the Cullen Foundation. T. M. is supported by the Uehara Memorial Foundation. J. E. P. was supported by NHGRI K08 HG008986. D. P. was supported by the Clinical Research Training Scholarship in Neuromuscular Disease partnered by the American Academy of Neurology (AAN), American Brain Foundation (ABF), and Muscle Study Group (MSG), and the International Rett Syndrome Foundation (IRSF grant #3701‐1).
FundersFunding numbers
Baylor College of Medicine Center for Common Disease Genetics
UM1 HG006542
NIH
T32 GM08307‐26
NHLBI
-
NHGRI
UM1HG008898
Cullen Foundation
-
IRSF
3701‐1
ABF
-
AAN
-
Uehara Memorial Foundation
K08 HG008986
BHCMG
-

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