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Rac1 Links Leading Edge and Uropod Events Through Rho and Myosin Activation During Chemotaxis

Overview
Journal Blood
Publisher Elsevier
Specialty Hematology
Date 2006 Jul 1
PMID 16809619
Citations 57
Authors
Affiliations
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Abstract

Chemotactic responsiveness is crucial to neutrophil recruitment to sites of infection. During chemotaxis, highly divergent cytoskeletal programs are executed at the leading and trailing edge of motile neutrophils. The Rho family of small GTPases plays a critical role in cell migration, and recent work has focused on elucidating the specific roles played by Rac1, Rac2, Cdc42, and Rho during cellular chemotaxis. Rac GTPases regulate actin polymerization and extension of the leading edge, whereas Rho GTPases control myosin-based contraction of the trailing edge. Rac and Rho signaling are thought to crosstalk with one another, and previous research has focused on mutual inhibition of Rac and Rho signaling during chemotaxis. Indeed, polarization of neutrophils has been proposed to involve the activity of a negative feedback system where Rac activation at the front of the cell inhibits local Rho activation, and vice versa. Using primary human neutrophils and neutrophils derived from a Rac1/Rac2-null transgenic mouse model, we demonstrate here that Rac1 (and not Rac2) is essential for Rho and myosin activation at the trailing edge to regulate uropod function. We conclude that Rac plays both positive and negative roles in the organization of the Rhomyosin "backness" program, thereby promoting stable polarity in chemotaxing neutrophils.

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References
1.
Gu Y, Filippi M, Cancelas J, Siefring J, Williams E, Jasti A . Hematopoietic cell regulation by Rac1 and Rac2 guanosine triphosphatases. Science. 2003; 302(5644):445-9. DOI: 10.1126/science.1088485. View

2.
Niggli V . Signaling to migration in neutrophils: importance of localized pathways. Int J Biochem Cell Biol. 2003; 35(12):1619-38. DOI: 10.1016/s1357-2725(03)00144-4. View

3.
Zigmond S, Sullivan S . Sensory adaptation of leukocytes to chemotactic peptides. J Cell Biol. 1979; 82(2):517-27. PMC: 2110462. DOI: 10.1083/jcb.82.2.517. View

4.
Ridley A, PATERSON H, Johnston C, Diekmann D, Hall A . The small GTP-binding protein rac regulates growth factor-induced membrane ruffling. Cell. 1992; 70(3):401-10. DOI: 10.1016/0092-8674(92)90164-8. View

5.
Sakurada K, Ikuhara T, Seto M, Sasaki Y . An antibody for phosphorylated myosin light chain of smooth muscle: application to a biochemical study. J Biochem. 1994; 115(1):18-21. DOI: 10.1093/oxfordjournals.jbchem.a124297. View