Epac1 is a guanine nucleotide exchange factor for the small G protein Rap and is involved in membrane-localized processes such as integrin-mediated cell adhesion and cell-cell junction formation. Cyclic AMP (cAMP) directly activates Epac1 by release of autoinhibition and in addition induces its translocation to the plasma membrane. Here, we show an additional mechanism of Epac1 recruitment, mediated by activated ezrin-radixin-moesin (ERM) proteins. Epac1 directly binds with its N-terminal 49 amino acids to ERM proteins in their open conformation. Receptor-induced activation of ERM proteins results in increased binding of Epac1 and consequently the clustered localization of Epac1 at the plasma membrane. Deletion of the N terminus of Epac1, as well as disruption of the Epac1-ERM interaction by an interfering radixin mutant or small interfering RNA (siRNA)-mediated depletion of the ERM proteins, impairs Epac1-mediated cell adhesion. We conclude that ERM proteins are involved in the spatial regulation of Epac1 and cooperate with cAMP- and Rap-mediated signaling to regulate adhesion to the extracellular matrix.
Rap proteins are Ras-like small GTP-binding proteins that amongst others are involved in the control of cell-cell and cell-matrix adhesion. Several Rap guanine nucleotide exchange factors (RapGEFs) function to activate Rap. These multi-domain proteins, which include C3G, Epacs, PDZ-GEFs, RapGRPs and DOCK4, are regulated by various different stimuli and may function at different levels in junction formation. Downstream of Rap, a number of effector proteins have been implicated in junctional control, most notably the adaptor proteins AF6 and KRIT/CCM1. In this review, we will highlight the latest findings on the Rap signaling network in the control of epithelial and endothelial cell-cell junctions.
The small G-protein Rap1 is a critical regulator of cell–cell contacts and is activated by the remodeling of adherens junctions. Here we identify the Rap1 guanine nucleotide exchange factor PDZ-GEF2 as an upstream activator of Rap1 required for the maturation of adherens junctions in the lung carcinoma cells A549. Knockdown of PDZ-GEF2 results in the persistence of adhesion zippers at cell–cell contacts. Activation of Rap1A rescues junction maturation in absence of PDZ-GEF2, demonstrating that Rap1A is downstream of PDZ-GEF2 in this process. Moreover, depletion of Rap1A, but not Rap1B, impairs adherens junction maturation. siRNA for PDZ-GEF2 also lowers the levels of E-cadherin, an effect that can be mimicked by Rap1B, but not Rap1A siRNA. Since junctions in Rap1B depleted cells have a mature appearance, these data suggest that PDZ-GEF2 activates Rap1A and Rap1B to perform different functions. Our results present the first direct evidence that PDZ-GEF2 plays a critical role in the maturation of adherens junctions.
Cyclic adenosine monophosphate (cAMP) is a common second messenger involved in the regulation of many different cellular processes through the activation of protein kinase A (PKA), exchange protein directly activated by cAMP (Epac) and cyclicnucleotide-regulated ion channels. Adenylyl cyclases are ACHTUNGTRENNUNGresponsible for catalysing the formation of cAMP from ATP. Levels of cAMP can be raised in cells in response to a large variety of extracellular stimuli, which act via receptors coupled to heterotrimeric G proteins, which stimulate the activity of adenylyl cyclase. In addition, cAMP levels are controlled by phosphodiesterases (PDE), which catalyse the degradation of cAMP to AMP. In cells, cAMP levels can be artificially elevated by forskolin, which activates adenylyl cyclase directly. Furthermore, cAMP levels can be raised by inhibiting PDEs. These approaches are commonly used in tissue culture experiments, but, by generating cAMP, they do not discriminate between the various target proteins that are activated. Alternatively, membrane-permeable cAMP analogues, which selectively interact with particular receptor proteins, can be applied. For example, signalling pathways activated by Epac and PKA can be ACHTUNGTRENNUNGdistinguished by using 8-pCPT-2’-O-Me-cAMP and 6-Bnz-cAMP, respectively. Epac is a guanine nucleotide exchange factor for the small G protein Rap. Rap cycles between a signalling-inactive GDPbound state and a signalling-active GTP-bound state. cAMP-activated Epac catalyses the exchange of Rap-bound GDP for GTP. Epac and Rap function in a number of different cellular processes including insulin secretion, inhibition of cell scattering, neurotransmitter release and cAMP-induced barrier function in endothelial cells. Even though 8-pCPT-2’-O-Me-cAMP has become a widely used tool in Epac-related research, its biological application is limited by its low membrane permeability, caused by the negatively charged phosphate. However, the negatively charged singly bonded oxygen on the phosphate group can be masked by labile esters. Such a precursor is expected to enter the cell efficiently, where the ester is hydrolysed either directly by water or by cellular esterases to liberate the active compound. We therefore synthesised 8-pCPT-2’-O-Me-cAMP-AM from 8pCPT-2’-O-Me-cAMP, whereby acetoxymethyl bromide was used as a donor for the AM group. The product that was obtained had a purity exceeding 97% and consisted of a mixture of the equatorial and the axial isomers of the ester (Figure S1 in the Supporting Information, Scheme 1). Even though the isomers could be resolved by repetitive analytical HPLC runs, efficient separation on a preparative scale was not possible. Orange peel acetylesterase and esterase from porcine liver cleaved the equatorial isomer about five times more efficiently than the axial isomer within minutes (data not shown). The pharmacokinetics of both isomers are thus expected to be similar, justifying the application of a mixture of both isomers to cells. In any case, the isomeric ratio of an individual synthesis can be easily quality controlled by P NMR (Figure S1). To compare the efficiency of 8-pCPT-2’-O-Me-cAMP-AM and 8-pCPT-2’-O-Me-cAMP in activating Epac1 in vivo, an Epac1based fluorescence resonance energy transfer (FRET) probe was used. In this assay, activation of Epac1 by the binding of cAMP to the Epac1-FRET probe is measured as a reduction in the FRET signal. A431 cells transfected with the FRET probe were stimulated with 8-pCPT-2’-O-Me-cAMP-AM or 8-pCPT-2’O-Me-cAMP (Figure 1). Stimulation of cells with 100 mm 8pCPT-2’-O-Me-cAMP resulted in a decrease of the FRET signal that was approximately one order of magnitude slower than the decrease obtained upon stimulation with 1 mm 8-pCPT-2’O-Me-cAMP-AM. Furthermore, activation of Epac1 following stimulation with 100 mm 8-pCPT-2’-O-Me-cAMP could be further enhanced by the addition of forskolin, whereas 1 mm 8pCPT-2’-O-Me-cAMP-AM induced maximal activity of Epac1 under the given conditions. The activation of Epac by 8-pCPT2’-O-Me-cAMP-AM occurs within one minute after application. This is comparable with the kinetics of forskolin-induced Epac activation, and thus 8-pCPT-2’-O-Me-cAMP-AM mimics the “natural” response time of the signalling pathway. The activity of endogenous Epac can be monitored by isolating selectively Rap·GTP from cell lysates. Primary human umbilical vein endothelial cells (HUVEC) were stimulated with different concentrations of 8-pCPT-2’-O-Me-cAMP and 8-pCPT-2’-OMe-cAMP-AM (Figure 2A). Partial activation of Rap was induced by 10 mm 8-pCPT-2’-O-Me-cAMP, and full activation of the G protein was stimulated by 100 mm 8-pCPT-2’-O-Me-cAMP. In contrast, treatment of the cells with just 0.1 mm 8-pCPT-2’-OMe-cAMP-AM was sufficient to induce full Rap activation. [a] M. J. Vliem, W.-J. Pannekoek, Dr. J. Riedl, M. R. H. Kooistra, Prof. Dr. J. L. Bos, Dr. H. Rehmann Department of Physiological Chemistry Centre for Biomedical Genetics and Cancer Genomics Centre University Medical Center Utrecht Universiteitsweg 100, 3584CG Utrecht (The Netherlands) Fax: (+31)88-75-68101 E-mail : j.l.bos@umcutrecht.nl h.rehmann@umcutrecht.nl [b] B. Ponsioen, Dr. K. Jalink Division of Cell Biology, The Netherlands Cancer Institute Amsterdam (The Netherlands) [c] Dr. F. Schwede, Dr. H.-G. Genieser BIOLOG Life Science Institute Flughafendamm 9a, 28071 Bremen (Germany) [] These authors contribute equally to this work. Supporting information for this article is available on the WWW under http://www.chembiochem.org or from the author.
The vascular endothelium provides a semi-permeable barrier, which restricts the passage of fluid, macromolecules and cells to the surrounding tissues. Cyclic AMP promotes endothelial barrier function and protects the endothelium against pro-inflammatory mediators. This study analyzed the relative contribution of two cAMP targets, PKA and Epac1, to the control of endothelial barrier function and endothelial cell migration. Real-time recording of transendothelial electrical resistance showed that activation of either PKA or Epac1 with specific cAMP analogues increases endothelial barrier function and promotes endothelial cell migration. In addition, reduction of Epac1 expression showed that Epac1 and PKA control endothelial integrity and cell motility by two independent and complementary signaling pathways. We demonstrate that integrin-mediated adhesion is required for PKA, but not Epac1-Rap1-driven stimulation of endothelial barrier function. In contrast, both PKA- and Epac1-stimulated endothelial cell migration requires integrin function. These data show that activation of Epac1 and PKA by cAMP results in the stimulation of two parallel, independent signaling pathways that positively regulate endothelial integrity and cell migration, which is important for recovery after endothelial damage and for restoration of compromised endothelial barrier function.
The cover picture shows the chemical structure of an acetoxymethyl ester of 8-pCPT-2′-O-Me-cAMP (007-AM). 007-AM can pass cell membranes efficiently and is hydrolysed inside the cell by esterases to release the biologically active compound 8-pCPT-2′-O-Me-cAMP (007). Due to its low membrane permeability 007 accumulates inside the cell, where it activates the cAMP receptor protein Epac. The inactive conformation of Epac is shown on the left, with the regulatory region in light blue and the catalytic region in dark blue. Binding of cAMP or 007 to Epac leads to a repositioning of the regulatory region, which allows the substrate protein Rap (yellow) to bind and become activated. Activated Rap causes several biological effects, such as the spreading of cells, shown here for A549-B14 cells. For more information see the article by J. L. Bos, H. Rehmann et al. on p. 2052 ff. (Images of cells were kindly provided by Dr. Sarah Ross).
Rap1 is a Ras-like small GTPase that is activated by many extracellular stimuli and strongly implicated in the control of integrin-mediated cell adhesion. Recent evidence indicates that Rap1 also plays a key role in formation of cadherin-based cell-cell junctions. Indeed, inhibition of Rap1 generates immature adherens junctions, whereas activation of Rap1 tightens cell-cell junctions. Interestingly, Rap1 guanine nucleotide exchange factors, such as C3G and PDZ-GEF, are directly linked to E-cadherin or to other junction proteins. Furthermore, several junction proteins, such as afadin/AF6 and proteins controlling the actin cytoskeleton, function as effectors of Rap1. These findings point to a role of Rap1 in spatial and temporal control of cell-cell junction formation.