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In utero Measurement of Heart Rate in Mouse by Noninvasive M-mode Echocardiography
Published on: November 22, 2013
Early postnatal lethality and cardiovascular defects in CXCR7-deficient mice
Han Gerrits1, Dorette S van Ingen Schenau, Nicole E C Bakker
1N.V. Organon, part of Schering-Plough Corporation, Target Discovery, Molenstraat 110, 5340 BH Oss, The Netherlands.
Abstract:
CXCR7 is a G-protein coupled receptor that was recently deorphanized and shown to have SDF1 and I-TAC as high affinity ligands. Here we describe the characterization of CXCR7-deficient mice that were generated to further investigate the function of this receptor in vivo. Expression analysis using a LacZ reporter knockin revealed that postnatally Cxcr7 was specifically expressed in cardiomyocytes, vascular endothelial cells of the lung and heart, the cerebral cortex and in osteocytes of the bone. Adult tissues revealed high expression in cardiomyocytes and osteocytes. The observation that 70% of the Cxcr7-/- mice died in the first week after birth coincides with expression of Cxcr7 in vascular endothelial cells and in cardiomyocytes. An important role of CXCR7 in the cardiovascular system was further supported by the observation that hearts of the Cxcr7-/- mice were enlarged, showed myocardial degeneration and fibrosis of postnatal origin, and hyperplasia of embryonic origin. Despite high expression in osteocytes no apparent bone phenotype was observed, neither in combination with ovariectomy nor orchidectomy. Thus as CXCR7 does not seem to play an important role in bone our data indicate an important function of CXCR7 in the cardiovascular system during multiple steps of development.
Insights
CXCR7 deficiency in mice led to early death and cardiovascular defects, indicating its crucial role in heart development. No bone abnormalities were observed in these CXCR7-deficient mice.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Molecular Biology
Background:
- CXCR7, a G-protein coupled receptor, binds SDF1 and I-TAC.
- Understanding CXCR7's in vivo function is crucial.
Purpose of the Study:
- To characterize CXCR7-deficient mice.
- To investigate CXCR7's role in vivo.
Main Methods:
- Generation of CXCR7-deficient mice (Cxcr7-/-).
- LacZ reporter knockin for expression analysis.
- Phenotypic analysis of cardiovascular and bone tissues.
Main Results:
- CXCR7 is expressed in cardiomyocytes, vascular endothelial cells, cerebral cortex, and osteocytes.
- Cxcr7-/- mice exhibited high postnatal lethality (70%).
- Cxcr7-/- mice displayed enlarged hearts, myocardial degeneration, fibrosis, and hyperplasia.
Conclusions:
- CXCR7 plays a critical role in cardiovascular development and function.
- CXCR7 does not appear to be essential for bone homeostasis.
- CXCR7 is vital during multiple developmental stages of the cardiovascular system.

