Efficient terminal erythroid differentiation requires the APC/C cofactor Cdh1 to limit replicative stress in
Myriam Cuadrado1,2, Javier Garzón1,3, Sergio Moreno4
1Instituto de Biología Funcional y Genómica (IBFG), CSIC/Universidad de Salamanca, C/Zacarías González 2, 37007, Salamanca, Spain.
Insights
The APC/C-Cdh1 complex is essential for red blood cell production. Its absence causes anemia by impairing cell division and leading to DNA damage in developing red blood cells.
Area of Science:
- Cell Biology
- Hematology
- Molecular Biology
Background:
- The APC/C-Cdh1 complex regulates protein degradation, controlling cell cycle progression.
- It is known to influence cell differentiation, but its role in red blood cell formation (erythropoiesis) was unexplored.
Purpose of the Study:
- To investigate the function of APC/C-Cdh1 in erythropoiesis.
- To determine the impact of Cdh1 loss on red blood cell development and function.
Main Methods:
- Utilized mouse models with Cdh1 gene deletion.
- Analyzed erythroid differentiation, cell cycle progression, DNA damage, and replication dynamics in fetal liver cells.
Main Results:
- Cdh1 deficiency resulted in impaired terminal erythroid differentiation and mild anemia.
- Loss of Cdh1 led to DNA damage and cell cycle delays in erythroblasts.
- Replication stress, characterized by slow fork movement, was observed in Cdh1-deficient erythroblasts.
Conclusions:
- APC/C-Cdh1 activity is crucial for efficient erythropoiesis and red blood cell production.
- Replication stress in erythroblasts lacking Cdh1 hinders maturation and contributes to anemia.
- Precise regulation of replication dynamics is vital for maintaining a functional red blood cell supply.
Abstract:
The APC/C-Cdh1 ubiquitin ligase complex drives proteosomal degradation of cell cycle regulators and other cellular proteins during the G1 phase of the cycle. The complex serves as an important modulator of the G1/S transition and prevents premature entry into S phase, genomic instability, and tumor development. Additionally, mounting evidence supports a role for this complex in cell differentiation, but its relevance in erythropoiesis has not been addressed so far. Here we show, using mouse models of Cdh1 deletion, that APC/C-Cdh1 activity is required for efficient terminal erythroid differentiation during fetal development as well as postnatally. Consistently, Cdh1 ablation leads to mild but persistent anemia from birth to adulthood. Interestingly, loss of Cdh1 seems to affect both, steady-state and stress erythropoiesis. Detailed analysis of Cdh1-deficient erythroid populations revealed accumulation of DNA damage in maturing erythroblasts and signs of delayed G2/M transition. Moreover, through direct assessment of replication dynamics in fetal liver cells, we uncovered slow fork movement and increased origin usage in the absence of Cdh1, strongly suggesting replicative stress to be the underlying cause of DNA lesions and cell cycle delays in erythroblasts devoid of Cdh1. In turn, these alterations would restrain full maturation of erythroblasts into reticulocytes and reduce the output of functional erythrocytes, leading to anemia. Our results further highlight the relevance of APC/C-Cdh1 activity for terminal differentiation and underscore the need for precise control of replication dynamics for efficient supply of red blood cells.
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