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A Pipeline to Characterize Structural Heart Defects in the Fetal Mouse
Published on: December 16, 2022
Embryonic Lethality Due to Arrested Cardiac Development in Psip1/Hdgfrp2 Double-Deficient Mice
Hao Wang1, Ming-Chieh Shun1, Amy K Dickson1
1Department of Cancer Immunology and AIDS, Dana-Farber Cancer Institute and Department of Medicine, Harvard Medical School, Boston, Massachusetts, 02215, United States of America.
Abstract:
Hepatoma-derived growth factor (HDGF) related protein 2 (HRP2) and lens epithelium-derived growth factor (LEDGF)/p75 are closely related members of the HRP2 protein family. LEDGF/p75 has been implicated in numerous human pathologies including cancer, autoimmunity, and infectious disease. Knockout of the Psip1 gene, which encodes for LEDGF/p75 and the shorter LEDGF/p52 isoform, was previously shown to cause perinatal lethality in mice. The function of HRP2 was by contrast largely unknown. To learn about the role of HRP2 in development, we knocked out the Hdgfrp2 gene, which encodes for HRP2, in both normal and Psip1 knockout mice. Hdgfrp2 knockout mice developed normally and were fertile. By contrast, the double deficient mice died at approximate embryonic day (E) 13.5. Histological examination revealed ventricular septal defect (VSD) associated with E14.5 double knockout embryos. To investigate the underlying molecular mechanism(s), RNA recovered from ventricular tissue was subjected to RNA-sequencing on the Illumina platform. Bioinformatic analysis revealed several genes and biological pathways that were significantly deregulated by the Psip1 knockout and/or Psip1/Hdgfrp2 double knockout. Among the dozen genes known to encode for LEDGF/p75 binding factors, only the expression of Nova1, which encodes an RNA splicing factor, was significantly deregulated by the knockouts. However the expression of other RNA splicing factors, including the LEDGF/p52-interacting protein ASF/SF2, was not significantly altered, indicating that deregulation of global RNA splicing was not a driving factor in the pathology of the VSD. Tumor growth factor (Tgf) β-signaling, which plays a key role in cardiac morphogenesis during development, was the only pathway significantly deregulated by the double knockout as compared to control and Psip1 knockout samples. We accordingly speculate that deregulated Tgf-β signaling was a contributing factor to the VSD and prenatal lethality of Psip1/Hdgfrp2 double-deficient mice.
Insights
Hepatoma-derived growth factor (HDGF) related protein 2 (HRP2) and lens epithelium-derived growth factor (LEDGF)/p75 double knockout mice exhibit ventricular septal defects and embryonic lethality. Deregulated TGF-β signaling is implicated in these developmental defects.
Area of Science:
- Developmental Biology
- Molecular Genetics
- Cardiovascular Biology
Background:
- Lens epithelium-derived growth factor (LEDGF)/p75 is involved in various human pathologies.
- The function of the related Hepatoma-derived growth factor (HDGF) related protein 2 (HRP2) was largely unknown.
- LEDGF/p75 knockout (Psip1 knockout) in mice results in perinatal lethality.
Purpose of the Study:
- To investigate the role of HRP2 in mammalian development.
- To determine the function of HRP2 in conjunction with LEDGF/p75.
- To elucidate the molecular mechanisms underlying developmental defects in double knockout mice.
Main Methods:
- Generation of Hdgfrp2 knockout mice and double knockout mice with Psip1 knockout.
- Histological examination of embryonic tissues.
- RNA sequencing and bioinformatic analysis of ventricular tissue.
Main Results:
- Hdgfrp2 knockout mice developed normally.
- Psip1/Hdgfrp2 double knockout mice exhibited embryonic lethality around E13.5.
- Ventricular septal defects (VSD) were observed in double knockout embryos.
- RNA sequencing revealed deregulation of TGF-β signaling in double knockout embryos.
Conclusions:
- HRP2 is not essential for normal mouse development but is crucial in the presence of LEDGF/p75 deficiency.
- Combined deficiency of HRP2 and LEDGF/p75 leads to VSD and embryonic lethality.
- Deregulated TGF-β signaling is a likely contributor to the observed developmental defects and lethality.

