Related Experiment Video
Updated: Jun 14, 2025

Mouse Fetal Liver Culture System to Dissect Target Gene Functions at the Early and Late Stages of Terminal Erythropoiesis
Published on: September 9, 2014
Defect in hematopoiesis and embryonic lethality at midgestation of Vps13a/Vps13c double knockout mice
Peng Xu1,2,3,4,5, Rubia Isler Mancuso6,7, Marianna Leonzino1,2,3,4,5
1Department of Neuroscience, Yale University School of Medicine, New Haven, Connecticut 06510, USA.
Insights
The combined loss of VPS13A and VPS13C proteins, crucial for lipid transfer, causes embryonic lethality in mice due to impaired red blood cell development and innate immune activation. This highlights their partially redundant functions in maintaining cellular integrity.
Area of Science:
- Cell Biology
- Genetics
- Immunology
Background:
- VPS13 proteins are essential for lipid transfer at membrane contact sites.
- VPS13A and VPS13C are the most recently evolved and similar VPS13 proteins, with distinct localizations and roles in neurodegenerative diseases.
Purpose of the Study:
- To investigate the functional overlap between VPS13A and VPS13C.
- To determine the consequences of combined VPS13A and VPS13C loss during embryonic development.
Main Methods:
- Generation and analysis of Vps13a/Vps13c double knockout (DKO) mice.
- Assessment of embryonic development, erythropoiesis, and innate immune responses in DKO embryos.
Main Results:
- Vps13a/Vps13c DKO mice exhibit embryonic lethality at midgestation.
- DKO embryos show developmental delays, anemia, impaired erythroid differentiation, and activated innate immunity.
- Upregulation of interferon-stimulated genes (ISGs) and dsRNA-sensing pathways (RIG-I, MDA5) was observed in DKO fetal liver.
Conclusions:
- VPS13A and VPS13C have partially redundant functions, essential for embryonic development.
- Loss of VPS13A and VPS13C leads to membrane integrity defects, triggering innate immune responses.
- The synthetic lethality of VPS13A/VPS13C loss underscores their critical, overlapping roles in lipid transport and cellular homeostasis.
Abstract:
VPS13 is the founding member of a family of proteins that mediate lipid transfer at intracellular membrane contact sites by a bridge-like mechanism. Mammalian genomes comprise 4 VPS13 genes encoding proteins with distinct localizations and function. The gene duplication resulting in VPS13A and VPS13C is the most recent in evolution and, accordingly, these two proteins are the most similar to each other. However, they have distinct subcellular localizations and their loss of function mutations in humans are compatible with life but result in two different age-dependent neurodegenerative diseases, chorea-acanthocytosis and Parkinson's disease, respectively. Thus, it remains unclear whether these two proteins have overlapping functions. Here, we show that while Vps13a KO and Vps13c KO mice are viable, embryonic development of Vps13a/Vps13c double knockout (DKO) mice is arrested at midgestation. Prior to death, DKO embryos were smaller than controls, were anemic and had a smaller liver, the key erythropoietic site at this developmental stage. Further analyses of erythroid precursor cells showed that their differentiation was impaired and that this defect was accompanied by activation of innate immunity as revealed by upregulation of interferon stimulated genes (ISGs). Additionally, the RIG-I and MDA5 components of dsRNA triggered innate immunity were found upregulated in the DKO fetal liver. Activation of innate immunity may result from loss of integrity of the membranes of intracellular organelles, such as mitochondria and autophagic lysosomes, due to the absence of these lipid transport proteins. The surprising and striking synthetic effect resulting for the combined loss of VPS13A and VPS13C suggests that despite of the different localization of these two proteins, the lipid fluxes that they mediate are partially redundant.
Related Concept Videos
In-vitro Mutagenesis
Lethal Alleles
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...

