Go to The Journal of Clinical Investigation
  • About
  • Editors
  • Consulting Editors
  • For authors
  • Journal stats
  • Publication ethics
  • Publication alerts by email
  • Transfers
  • Advertising
  • Job board
  • Contact
  • Physician-Scientist Development
  • Current issue
  • Past issues
  • By specialty
    • COVID-19
    • Cardiology
    • Immunology
    • Metabolism
    • Nephrology
    • Oncology
    • Pulmonology
    • All ...
  • Videos
  • Collections
    • In-Press Preview
    • Resource and Technical Advances
    • Clinical Research and Public Health
    • Research Letters
    • Editorials
    • Perspectives
    • Physician-Scientist Development
    • Reviews
    • Top read articles

  • Current issue
  • Past issues
  • Specialties
  • In-Press Preview
  • Resource and Technical Advances
  • Clinical Research and Public Health
  • Research Letters
  • Editorials
  • Perspectives
  • Physician-Scientist Development
  • Reviews
  • Top read articles
  • About
  • Editors
  • Consulting Editors
  • For authors
  • Journal stats
  • Publication ethics
  • Publication alerts by email
  • Transfers
  • Advertising
  • Job board
  • Contact
Reduced dosage of Kmt2d modifies Tbx1 haploinsufficiency toward phenotypes of 22q11.2DS
Daniella Miller, Kevyn Jackson, Timothy C. Cox, Bernice E. Morrow
Daniella Miller, Kevyn Jackson, Timothy C. Cox, Bernice E. Morrow
View: Text | PDF
Research Article Cardiology Development Genetics

Reduced dosage of Kmt2d modifies Tbx1 haploinsufficiency toward phenotypes of 22q11.2DS

  • Text
  • PDF
Abstract

Haploinsufficiency of TBX1, which occurs in 22q11.2 deletion syndrome (22q11.2DS), leads to a heterogeneous spectrum of clinical manifestations, including craniofacial anomalies, immunodeficiency, and congenital heart defects. The variability in syndromic presentation between patients may be partially explained by variants in chromatin regulatory genes that act to further modify TBX1 function. To investigate this relationship, we selected KMT2D as a candidate gene because of its role in the etiology of Kabuki syndrome, which shares overlapping features with 22q11.2DS. We demonstrate that conditional inactivation of Kmt2d in the Tbx1 lineage in Tbx1-heterozygous mice leads to fully penetrant perinatal lethality and increased incidence of craniofacial dysmorphism, thymus and parathyroid gland hypoplasia, and aortic arch anomalies. At early stages, mutant embryos were found to have defects of the caudal pharyngeal apparatus, including abnormal patterning of the third pouch endoderm, hypoplastic fourth arches, and defective fourth arch arteries. Finally, analysis of single-cell RNA sequencing revealed dysregulation, and largely downregulation, of genes involved in basic cellular functions, suggesting that Tbx1 and Kmt2d developmentally converge upon essential biological processes. Overall, these results indicate that reduced dosage of Kmt2d perturbs the developmental landscape of the Tbx1 heterozygote, eliciting phenotypes that are shared between 22q11.2DS and Kabuki syndrome.

Authors

Daniella Miller, Kevyn Jackson, Timothy C. Cox, Bernice E. Morrow

×

Figure 1

Inactivation of Kmt2d in the Tbx1 lineage leads to fully penetrant perinatal lethality.

Options: View larger image (or click on image) Download as PowerPoint
Inactivation of Kmt2d in the Tbx1 lineage leads to fully penetrant perin...
(A) Embryos at E16.5 show no gross morphological defects (n = >10 per genotype). (B) There was no difference in Mendelian ratios between control (Kmt2dfl/+, Kmt2dfl/fl; without Cre), cHet, and cKO embryos in utero (E17.5, n = 191) or at time of birth (P0, n = 339). Dashed line separates fetal from neonatal life. P0, P1, and P7 genotypes represent sequential data from the same litters. All cKO pups died by P1, and no significant difference in survival was found in the remaining genotypes at P7. (C) Micro-CT scans of embryos at E17.5 showing full-body scans, skeletal structure, and cranial bones of the different genotypes of interest (n = 6). (D) Graph of head width/mandibular width showing a significant decrease in cKO compared with control embryos (n = 6 per genotype). (E) Graph of mandibular width/mandibular length showing a significant increase in cKO embryos compared with controls (n = 6 per genotype). (F) Graph of midface length/mandibular length showing a significant increase in cKO embryos compared with both controls and cHets (n = 6 per genotype). (G) Lethality curve showing time of death in control (n = 23) versus cKO (n = 21) pups over the course of P0 in 6-hour intervals. (H) Control stomach at P0.75 showing presence of milk as compared with cKO embryos, which had absence of milk (n = 8 for both genotypes). (I) Palates of control (n = 8) and cKO (n = 7) embryos at E18.5 and P0 show reduced closure of the posterior palate in cKO embryos and neonates. Scale bars: (A) 2 mm, (H) 5 mm, (I) 1 mm. *P < 0.05; **P < 0.01. Statistical analysis was performed using 3-way ANOVA.

Copyright © 2026 American Society for Clinical Investigation
ISSN 2379-3708

Sign up for email alerts