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Pericyte Dynamics During Angiogenesis: New Insights from New Identities

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Journal J Vasc Res
Date 2014 May 24
PMID 24853910
Citations 96
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Abstract

Therapies aimed at manipulating the microcirculation require the ability to control angiogenesis, defined as the sprouting of new capillaries from existing vessels. Blocking angiogenesis would be beneficial in many pathologies (e.g. cancer, retinopathies and rheumatoid arthritis). In others (e.g. myocardial infarction, stroke and hypertension), promoting angiogenesis would be desirable. We know that vascular pericytes elongate around endothelial cells (ECs) and are functionally associated with regulating vessel stabilization, vessel diameter and EC proliferation. During angiogenesis, bidirectional pericyte-EC signaling is critical for capillary sprout formation. Observations of pericytes leading capillary sprouts also implicate their role in EC guidance. As such, pericytes have recently emerged as a therapeutic target to promote or inhibit angiogenesis. Advancing our basic understanding of pericytes and developing pericyte-related therapies are challenged, like in many other fields, by questions regarding cell identity. This review article discusses what we know about pericyte phenotypes and the opportunity to advance our understanding by defining the specific pericyte cell populations involved in capillary sprouting.

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References
1.
Gerhardt H, Betsholtz C . Endothelial-pericyte interactions in angiogenesis. Cell Tissue Res. 2003; 314(1):15-23. DOI: 10.1007/s00441-003-0745-x. View

2.
Eichmann A, le Noble F, Autiero M, Carmeliet P . Guidance of vascular and neural network formation. Curr Opin Neurobiol. 2005; 15(1):108-15. DOI: 10.1016/j.conb.2005.01.008. View

3.
Stapor P, Azimi M, Ahsan T, Murfee W . An angiogenesis model for investigating multicellular interactions across intact microvascular networks. Am J Physiol Heart Circ Physiol. 2012; 304(2):H235-45. PMC: 3543666. DOI: 10.1152/ajpheart.00552.2012. View

4.
Berger M, Bergers G, Arnold B, Hammerling G, Ganss R . Regulator of G-protein signaling-5 induction in pericytes coincides with active vessel remodeling during neovascularization. Blood. 2004; 105(3):1094-101. DOI: 10.1182/blood-2004-06-2315. View

5.
Gerald D, Chintharlapalli S, Augustin H, Benjamin L . Angiopoietin-2: an attractive target for improved antiangiogenic tumor therapy. Cancer Res. 2013; 73(6):1649-57. DOI: 10.1158/0008-5472.CAN-12-4697. View