| Literature DB >> 31514269 |
Abstract
Rho family small guanosine triphosphatases (GTPases) are important regulators of the cytoskeleton, and are critical in many aspects of cellular and developmental biology, as well as in pathological processes such as intellectual disability and cancer. Of the three members of the family, Rac3 has a more restricted expression in normal tissues compared to the ubiquitous member of the family, Rac1. The Rac3 polypeptide is highly similar to Rac1, and orthologues of the gene for Rac3 have been found only in vertebrates, indicating the late appearance of this gene during evolution. Increasing evidence over the past few years indicates that Rac3 plays an important role in neuronal development and in tumor progression, with specificities that distinguish the functions of Rac3 from the established functions of Rac1 in these processes. Here, results highlighting the importance of Rac3 in distinct aspects of neuronal development and tumor cell biology are presented, in support of the non-redundant role of different members of the two Rac GTPases in physiological and pathological processes.Entities:
Keywords: Rac3; Rho family GTPases; cancer; intellectual disability; invasion; metastasis; mutations; neuronal development
Mesh:
Substances:
Year: 2019 PMID: 31514269 PMCID: PMC6770886 DOI: 10.3390/cells8091063
Source DB: PubMed Journal: Cells ISSN: 2073-4409 Impact factor: 6.600
Figure 1(A) Comparison of the primary sequence of human Rac1 and Rac3 proteins. (B) Comparison of the sequence of human and mouse Rac3 with Rac3 from a bird, a reptile, an amphibian, and a fish. Asterisks indicate residues differing among the aligned polypeptides. CAAX (C, Cysteine residue; A, aliphatic residue; X, any residue) boxes are in yellow.
Figure 2Rac3-mediated mechanisms in cancer. (A) Rac3-dependent aggressiveness depends on a pathway including Rac3, ERK2/mitogen-activated protein kinase 1 (MAPK1), and nuclear factor-κB (NF-κB) [65]. (B) Vav2 activates Rac3 at invadopodia to promote invasion [52]. (C) Model of cell signaling centering on Rac3. Rac3 contributes to balancing adhesion and extracellular matrix (ECM) degradation at invadopodia [79].