Auxological and endocrine phenotype in a population-based cohort of patients with PROP1 gene defects

Jan Lebl1, Jan Vosáhlo, Roland W Pfaeffle

  • 1Department of Paediatrics, 3 Faculty of Medicine, Charles University Parague, Czech Republic. lebl@fnkv.cz

Insights

Prophetin-related protein 1 (PROP1) gene defects are a common cause of multiple pituitary hormone deficiency (MPHD). Genetic testing for PROP1 mutations in MPHD patients can help predict other pituitary hormone deficiencies.

Area of Science:

  • Genetics
  • Endocrinology
  • Pediatrics

Background:

  • Multiple pituitary hormone deficiency (MPHD) can arise from genetic defects affecting pituitary development.
  • Transcription factors like HESX1, PROP1, and POU1F1 are crucial for early pituitary formation.

Purpose of the Study:

  • To determine the prevalence of HESX1, PROP1, and POU1F1 gene defects in a Czech population-based cohort with MPHD.
  • To analyze the clinical phenotype associated with identified gene defects.

Main Methods:

  • Genomic analysis of 74 patients (children and adults) with MPHD.
  • Collection of phenotypic data from medical records and referring physicians.

Main Results:

  • One patient had a POU1F1 mutation; 18 patients (including sibling pairs) had PROP1 mutations.
  • Patients with PROP1 mutations showed reduced birth length, significant height decline, and responded well to growth hormone (GH) therapy.
  • Two young adult patients with PROP1 mutations developed ACTH deficiency.

Conclusions:

  • PROP1 gene defects are a frequent cause of MPHD.
  • Routine PROP1 mutation testing in MPHD patients is recommended to anticipate other pituitary hormone deficiencies.
Abstract

Related Concept Videos

Pleiotropy01:33

Pleiotropy

Pleiotropy is the phenomenon in which a single gene impacts multiple, seemingly unrelated phenotypic traits. For example, defects in the SOX10 gene cause Waardenburg Syndrome Type 4, or WS4, which can cause defects in pigmentation, hearing impairments, and an absence of intestinal contractions necessary for elimination. This diversity of phenotypes results from the expression pattern of SOX10 in early embryonic and fetal development. SOX10 is found in neural crest cells that form melanocytes,...
Pedigree Analysis01:35

Pedigree Analysis

Overview
Genomic Imprinting and Inheritance02:30

Genomic Imprinting and Inheritance

Diploid organisms inherit genetic material through chromosomes from both parents. Copies of the same gene are known as alleles. In most cases, both alleles are simultaneously expressed and allow various cellular processes to function optimally. If one of the alleles is missing or mutated, the expression of the other allele can compensate; however, this is not true for all genes.
The expression of some genes depends on which parent passed the gene to the offspring, through a phenomenon known as...
Genetic Lingo01:11

Genetic Lingo

Overview
Lysosomal Hydrolases01:22

Lysosomal Hydrolases

Lysosomes are the site for the degradation of macromolecules and biological polymers released during membrane trafficking events such as secretory, endocytic, autophagic, and phagocytic pathways. The membrane-enclosed area of the lysosome, called the lumen, contains hydrolytic enzymes active in an acidic environment. These acid hydrolases are functional at a pH between 4.5 and 5 and are involved in cellular processes such as cell signaling, energy metabolism, restoration of the plasma membrane,...
Lethal Alleles02:41

Lethal Alleles

Agouti: A Lethal Allele
Lucien Cuénot discovered lethal alleles in 1905 while studying the inheritance of coat color in mice. The agouti gene is responsible for the color of the coat in mice. This gene codes for an agouti-signaling protein, which is responsible for melanin distribution in mammals. The wild-type allele gives rise to gray-brown coat color in mice, while the mutant allele gives rise to yellow coat color. In addition to coat color, the agouti gene is associated with the yellow...