Javascript must be enabled to continue!
LRP2 controls sonic hedgehog-dependent differentiation of cardiac progenitor cells during outflow tract formation
View through CrossRef
ABSTRACT
Conotruncal malformations are a major cause of congenital heart defects in newborn infants. Recently, genetic screens in humans and mouse models have identified mutations in
LRP2
as a novel cause of a common arterial trunk, a severe form of outflow tract (OFT) defect. Yet, the underlying mechanism why the morphogen receptor LRP2 is essential for OFT development remained unexplained. Studying LRP2-deficient mouse models, we now show that LRP2 is expressed in the cardiac progenitor niche of the anterior second heart field (SHF) that contributes to elongation of the OFT during separation into aorta and pulmonary trunk. Loss of LRP2 in mutant mice results in depletion of a pool of sonic hedgehog-dependent progenitor cells in the SHF due to premature differentiation into cardiomyocytes as they migrate into the OFT myocardium. Depletion of this cardiac progenitor cell pool results in aberrant shortening of the OFT, the cause of CAT formation in affected mice. Our findings identified the molecular mechanism whereby LRP2 controls maintenance of progenitor cell fate in the anterior SHF essential for OFT separation, and why receptor dysfunction is a novel cause of conotruncal malformation.
Title: LRP2 controls sonic hedgehog-dependent differentiation of cardiac progenitor cells during outflow tract formation
Description:
ABSTRACT
Conotruncal malformations are a major cause of congenital heart defects in newborn infants.
Recently, genetic screens in humans and mouse models have identified mutations in
LRP2
as a novel cause of a common arterial trunk, a severe form of outflow tract (OFT) defect.
Yet, the underlying mechanism why the morphogen receptor LRP2 is essential for OFT development remained unexplained.
Studying LRP2-deficient mouse models, we now show that LRP2 is expressed in the cardiac progenitor niche of the anterior second heart field (SHF) that contributes to elongation of the OFT during separation into aorta and pulmonary trunk.
Loss of LRP2 in mutant mice results in depletion of a pool of sonic hedgehog-dependent progenitor cells in the SHF due to premature differentiation into cardiomyocytes as they migrate into the OFT myocardium.
Depletion of this cardiac progenitor cell pool results in aberrant shortening of the OFT, the cause of CAT formation in affected mice.
Our findings identified the molecular mechanism whereby LRP2 controls maintenance of progenitor cell fate in the anterior SHF essential for OFT separation, and why receptor dysfunction is a novel cause of conotruncal malformation.
Related Results
Control of somite patterning by Sonic hedgehog and its downstream signal response genes
Control of somite patterning by Sonic hedgehog and its downstream signal response genes
ABSTRACT
In the avian embryo, previous work has demonstrated that the notochord provides inductive signals to activate myoD and pax1 regulatory genes, which are expr...
Abstract 1711: Regulation of hedgehog signaling by the estrogen receptors
Abstract 1711: Regulation of hedgehog signaling by the estrogen receptors
Abstract
The likelihood of developing prostate cancer increases with age; hence with the increasing lifespan of Americans the prevalence of prostate cancer is also i...
Hedgehog Signaling and Embryonic Craniofacial Disorders
Hedgehog Signaling and Embryonic Craniofacial Disorders
Since its initial discovery in a Drosophila mutagenesis screen, the Hedgehog pathway has been revealed to be instrumental in the proper development of the vertebrate face. Vertebra...
Hedgehog Signaling Alters Adipocyte Maturation of Human Mesenchymal Stem Cells
Hedgehog Signaling Alters Adipocyte Maturation of Human Mesenchymal Stem Cells
Abstract
Human stem cells are powerful tools by which to investigate molecular mechanisms of cell growth and differentiation under normal and pathological conditions...
Hedgehog Ligands and Receptors Are Deregulated in Myelodysplastic Syndromes
Hedgehog Ligands and Receptors Are Deregulated in Myelodysplastic Syndromes
Abstract
Abstract 3817
Background:
The Hedgehog pathway has an important role in self-renew of normal and leukemi...
Multiple essential roles for primary cilia in heart development
Multiple essential roles for primary cilia in heart development
Abstract
Background
The primary cilium is a microtubule-based, plasma membrane-ensheathed protrusion projecting from the basal bodies of almost a...
Targeting the Sonic Hedgehog Signaling Pathway of Cancer Stem Cells to Treat Glioblastoma
Targeting the Sonic Hedgehog Signaling Pathway of Cancer Stem Cells to Treat Glioblastoma
Glioblastoma is an aggressive malignant brain tumor, and its five-year relative survival rate for patients is only 6.8 percent. In addition, almost all glioblastomas recur even aft...
FAP-intrinsic Hedgehog signaling controls intramuscular adipogenesis, fibrosis, and myofiber regeneration
FAP-intrinsic Hedgehog signaling controls intramuscular adipogenesis, fibrosis, and myofiber regeneration
Summary
Fibro/adipogenic progenitors (FAPs) are multipotent stromal cells that support myofiber regeneration, but can also give rise to intramusc...

