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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
81

Molecular Regulation of Synaptogenesis in Drosophila

Walla, David 29 September 2014 (has links)
Dynamic regulation of the actin cytoskeleton is required for synapses to form and maintain their shape. The actin cytoskeleton is regulated by Rho GTPases in response to genetic and extracellular signals. Rho GTPases are regulated by guanine nucleotide exchange factors and GTPase activating proteins (GAPs). Syd-1 is a protein that has been identified as necessary for synapse formation in worms, with similar proteins in flies, and mice. Little is known about the molecular mechanism by which Syd-1 is acting. While genetic techniques are great tools for examining synapse development, they are limited by their inability to consider the molecular nature of the protein product. By studying the biochemical nature of synaptic proteins, we can begin to understand their function with a new level of clarity. Syd-1 has a predicted Rho GAP domain; however it is thought to be inactive. The activity of the fly protein, Dsyd-1, has never been examined although it has been speculated that it is inactive in all invertebrates. Recently the mouse version was reported to have Rho GAP activity. By performing GTPase activity assays on purified proteins, I found the GAP domain of Dsyd-1 increased the GTPase activity of Rac-1 and Cdc42 but not RhoA. Members of our lab found the activity of Dsyd-1 is necessary for proper synapse formation both at the Drosophila neuromuscular junction as well as in R7 neurons. In Caenorhabditis elegans, Syd-1 was found to interact with presynaptic protein RSY-1. Since RSY-1 is evolutionarily conserved, I tested whether or not RSY-1 has a similar effect on R neurons in Drosophila. I also isolated mRNA from R neurons and evaluated the possibility of analyzing mutant neurons using comparative transcriptomics. This dissertation includes previously unpublished coauthored material.
82

Reorganisation der Zellkontakte der Endothelbarriere bei der Stabilisierung durch cAMP und Rac1 / Reorganization of Intercellular Junctions in Stabilization of Endothelial Barrier Functions by cAMP and Rac1

Peter, Dominik January 2012 (has links) (PDF)
Zwischen Blutkompartiment und umliegenden Interstitium besteht eine Barriere, die durch eine einzelne Schicht aus Endothelzellen gebildet wird. Essentiell für diese Barriere, deren Funktion in der Begrenzung des Austausches von Flüssigkeit und gelösten Stoffen liegt, sind interzelluläre Junktionen, welche die Endothelzellen miteinander verbinden. Durch eine gestörte Funktion und Regulation der Endothelbarriere entstehen beim Menschen verschiedene Pathologien wie zum Beispiel Ödeme, hämorrhagischer Schlaganfall und vaskuläre Malformationen. Es ist bekannt, dass cAMP die Endothelbarriere zum Teil durch Aktivierung der kleinen GTPase Rac1 stabilisiert. Trotz der großen medizinischen Relevanz dieses Signalweges, sind die damit einhergehenden Effekte auf die interzellulären Kontakte auf ultrastruktureller Ebene weitgehend unbekannt. In mikrovaskulären Endothelzellkulturen kam es ähnlich wie in intakten Mikrogefäßen zur Stärkung der Barrierefunktion. So resultierte sowohl nach Behandlung mit Forskolin und Rolipram (F/R), welche zur Steigerung der intrazellulären cAMP-Spiegel führen, als auch nach Zugabe von 8-(4-chlorophenylthio)-2´-O-methyladenosin-3´,5´-cyclic monophosphorothioate (O-Me-cAMP), einem selektiven Aktivator des cAMP nachgeschalteten Epac/Rap1-Signalweges, ein Anstieg des TER; außerdem konnte durch beide Substanzen (F/R und O-Me-cAMP) die Aktivierung von Rac1 induziert werden. Desweiteren wurde eine verstärkte Intensität und Linearisierung des Immunfluoreszenzsignals der Zelljunktionsproteine VE-Cadherin und Claudin5 entlang der Zellgrenzen beobachtet. In der ultrastrukturellen Analyse der interzellulären Kontaktzonen-Architektur zeigte sich unter F/R- oder O-Me-cAMP-Exposition ein signifikanter Anstieg an komplexen Interdigitationen. Diese komplexen Strukturen waren dadurch charakterisiert, dass sich die Membranen benachbarter Zellen, die durch zahlreiche endotheliale Junktionen stabilisiert wurden, über vergleichsweise lange Distanzen eng aneinanderlegten, so dass ein deutlich verlängerter Interzellularspalt resultierte. Die Inhibition der Rac1-Aktivierung durch NSC-23766 verminderte die Barrierefunktion und blockierte effektiv die O-Me-cAMP-vermittelte Barrierestabilisierung und Reorganisation der Kontaktzone einschließlich der Junktionsproteine. Demgegenüber konnte die F/R-vermittelte Barrierestabilisierung durch NSC-23766 nicht beeinträchtigt werden. Parallel dazu durchgeführte Experimente mit makrovaskulären Endothelien zeigten, dass es in diesem Zelltyp unter Bedingungen erhöhter cAMP-Konzentrationen weder zur Rac1-Aktivierung noch zur Barrierestärkung oder Kontaktzonen-Reorganisation kam. Diese Ergebnisse deuten darauf hin, dass in mikrovaskulären Endothelien Rac1-vermittelte Änderungen der Kontaktzonen-Morphologie zur cAMP-induzierten Barrierestabilisierung beitragen. / Evidence exists that cAMP stabilizes the endothelial barrier in part via activation of the small GTPase Rac1. However, despite the high medical relevance of this signaling pathway, the mechanistic effects on intercellular contacts on the ultrastructural level are largely unknown. In microvascular endothelial cell monolayers, in which increased cAMP strengthened barrier properties similar to intact microvessels in vivo, both forskolin and rolipram (F/R) to increase cAMP and 8-(4-chlorophenylthio)-2´-O-methyladenosine-3´,5´-cyclic monophosphorothioate (O-Me-cAMP) to stimulate exchange protein directly activated by cAMP/Ras proximate-1 (Epac/Rap1) signaling enhanced transendothelial electrical resistance (TER) and induced activation of Rac1. Concurrently, augmented immunofluorescence intensity and linearization of signals at cell borders were observed for intercellular junction proteins VE-cadherin and claudin5. Ultrastructural analysis of the intercellular contact zone morphology documented that exposure to F/R or O-Me-cAMP led to a significant increase in the proportion of contacts displaying complex interdigitations of cell borders in which membranes of neighboring cells were closely apposed over comparatively long distances and which were stabilized by numerous intercellular junctions. Interference with Rac1 activation by NSC-23766 completely abolished both barrier stabilization and contact zone reorganization in response to O-Me-cAMP whereas F/R-mediated barrier enhancement was not affected by NSC-23766. In parallel experiments using macrovascular endothelium, increased cAMP failed to induce Rac1 activation, barrier enhancement and contact zone reorganization. These results indicate that in microvascular endothelium Rac1-mediated alterations in contact zone architecture contributes to cAMP-induced barrier stabilization.
83

Der Cofilin-Signalweg im Glioblastoma multiforme - Ursachen für den Verlust von Chronophin und Einfluss von LIM-Kinase-Inhibitoren / The cofilin pathway in glioblastoma multiforme - Reasons for chronophin loss and effect of LIM-kinase inhibitors

Zink [geb. Sondergeld], Thomas Gerd January 2015 (has links) (PDF)
Das invasive Potential maligner Gliome beeinflusst maßgeblich die schlechte Prognose dieser Tumorentität. Migration und Invasion von Tumorzellen werden entscheidend durch die Cofilin-vermittelte Umstrukturierung des Aktin-Zytoskeletts geprägt, die durch die Aktivität antagonistischer Cofilin-Kinasen und -Phosphatasen reguliert wird. Im Rahmen der vorliegenden Arbeit konnte ein progressiver Expressionsverlust der Cofilin-Phosphatase Chronophin mit ansteigendem Malignitätsgrad astrozytärer Gliome aufgezeigt werden, der mit einer Zunahme der Phosphorylierung von Cofilin einhergeht. In den entsprechenden Gewebeproben gelang gleichzeitig der Nachweis einer gesteigerten Expression der Cofilin-Kinase LIMK-2. Genetische und epigenetische Analysen des Chronophin-Locus konnten eine Hypermethylierung im Bereich der Promotorregion der Phosphatase identifizieren, die möglicherweise dem Verlust von Chronophin in Glioblastom-Gewebeproben zugrunde liegt. In Glioblastom-Zelllinien, die unterschiedliche Expressionsmuster von Chronophin aufwiesen, konnten hingegen keine molekularen Alterationen festgestellt werden. Untersuchungen des Einflusses von ROCK- und LIMK-Inhibitoren auf Glioblastomzellen konnten ausgeprägte Veränderungen der Zellmorphologie dokumentieren, wobei erstmals die Induktion eines stellate cell-Phänotyps unter Einfluss des LIMK-Inhibitors BMS-5 beschrieben wird. Während ROCK- und LIMK-Inhibitoren keinen Einfluss auf die 2D-Motilität der Tumorzellen hatten, wiesen die Glioblastomzellen in Abhängigkeit ihrer basalen Cofilin-Aktivität eine verstärkte bzw. verminderte 3D-Invasivität auf. Die Erkenntnisse dieser Arbeit unterstreichen die Bedeutung des Cofilin-Signalweges für die Migration und Invasion von Gliomzellen, zeigen neue Angriffspunkte in der Therapie maligner Gliome auf und warnen zugleich vor einem unkritischen Einsatz neuer Wirkstoffe. / The invasive potential of malignant gliomas is the main reason for the dismal prognosis of this tumor entity. Migration and invasion of tumor cells is crucially determined by the cofilin dependent reorganization of the actin cytoskeleton regulated by the activity of antagonistic cofilin kinases and phosphatases. This study revealed a progressive loss of expression of the cofilin phosphatase chronophin with increasing malignancy grade of astrocytic glioma, accompanied by an increase of cofilin phosphorylation. Moreover, the analyzed glioma specimens were characterized by a simultaneous increase of expression of the cofilin kinase LIMK-2. Integrated genetic and epigenetic analysis of the chronophin locus identified an aberrant promoter methylation as a possible mechanism leading to chronophin down-regulation in glioblastoma tissue samples. In contrast, molecular alterations of the chronophin locus were undetectable in glioblastoma cell lines characterized by different chronophin expression levels. Analysis of glioblastoma cells demonstrated striking effects of ROCK and LIMK inhibitors on cell morphology, providing first evidence of the induction of a stellate cell-phenotype by the LIMK inhibitor BMS-5. While ROCK and LIMK inhibitors had no detectable effect on the 2D motility of the tumor cells, the inhibitors increased or decreased the 3D-invasiveness of the glioma cells depending on their basal cofilin activity. The findings of this study stress the importance of the cofilin signaling pathway as a key regulator of glioma migration and invasion, indicate novel targets for glioma therapy, but also warn against a noncritical use of new drugs.
84

Characterization of the widely used Rac1-inhibitors NSC23766 and EHT1864 in mouse platelets / Untersuchung der Rac1-Inhibitoren NSC23766 und EHT1864 in murinen Thrombozyten

Heidenreich, Julius Frederik January 2018 (has links) (PDF)
Platelet activation and aggregation at sites of vascular injury is critical to prevent excessive blood loss, but may also lead to life-threatening ischemic diseases, such as myocardial infarction and stroke. Extracellular agonists induce platelet activation by stimulation of platelet membrane receptors. Signal transduction results in reorganization of the cytoskeleton, shape change, platelet adhesion and aggregation, cumulating in thrombus formation. Several Rho GTPases, including Rac1, Cdc42 and RhoA, are essential mediators of subsequent intracellular transduction of ITAM- and GPCR-signaling. Therefore, inhibition or knockout can result in severely defective platelet signaling. Mice with platelet specific Rac1-deficiency are protected from arterial thrombosis. This benefit highlights further investigation of Rac1-specific functions and its potential as a new pharmacological target for prevention of cardiovascular diseases. Two newly developed synthetic compounds, NSC23766 and EHT1864, were proposed to provide highly specific inhibition of Rac1 activity, but both drugs have never been tested in Rac1-deficient cell systems to rule out potential Rac1-independent effects. This study revealed significant off-target effects of NSC23766 and EHT1864 that occurred in a dose-dependent fashion in both wild-type and Rac1-deficient platelets. Both inhibitors individually affected resting platelets after treatment, either by altering membrane protein expression (NSC23766) or by a marked decrease of platelet viability (EHT1864). Platelet apoptosis could be confirmed by enhanced levels of phosphatidylserine exposure and decreased mitochondrial membrane potential. Phosphorylation studies of the major effector proteins of Rac1 revealed that NSC23766 and EHT1864 abolish PAK1/PAK2 activation independently of Rac1 in wild-type and knockout platelets, which may contribute to the observed off-target effects. Additionally, this study demonstrated the involvement of Rac1 in G protein-coupled receptor-mediated platelet activation and GPIb-induced signaling. Furthermore, the data revealed that Rac1 is dispensable in the process of integrin IIb 3-mediated clot retraction. This study unveiled that new pharmacological approaches in antithrombotic therapy with Rac1 as molecular target have to be designed carefully in order to obtain high specificity and minimize potential off-target effects. / Die Aktivierung und Aggregation von Thrombozyten nach Gefäßverletzungen ist entscheidend um starken Blutverlust zu vermeiden. Allerdings können diese Prozesse auch zu lebensbedrohlichen ischämischen Erkrankungen führen, wie beispielsweise Myokardinfarkt und Schlaganfall. Die Stimulation der Membranrezeptoren durch Triggersubstanzen leitet die Thrombozytenaktivierung und somit die Reorganisation des Zytoskeletts ein. Dies ermöglicht die Adhäsion und Aggregation der Thrombozyten und führt letztendlich zur Thrombusbildung. Die Rho GTPasen Rac1, Cdc42 und RhoA sind als wichtige Mediatoren an der intrazellulären Signaltransduktion beteiligt. Eine medikamentöse Hemmung oder ein genetischer Knockout kann daher die intrazellulären Signalkaskaden so stark beeinträchtigen, dass eine effiziente Aktivierung der Thrombozyten nicht mehr möglich ist. In Mäusen mit thrombozytenspezifischem Knockout von Rac1 wurde festgestellt, dass der Funktionsverlust von Rac1 gleichzeitig auch Schutz vor der Entwicklung von arterieller Thrombose bedeutet. Könnte man sich diese Tatsache pharmakologisch zunutze machen, würde die Hemmung von Rac1 möglicherweise einen neuen, erfolgsversprechenden Ansatz in der Prävention von kardiovaskulären Erkrankungen darstellen. Für den Forschungseinsatz wurden die zwei synthetischen Inhibitoren NSC23766 und EHT1864 entwickelt um Rac1-vermittelte Funktionen zu studieren. Beide Substanzen versprechen eine hochspezifische Hemmung der Rac(1)-Aktivität, wurden bisher jedoch nicht in Zellsystemen mit Rac1-Defizienz verwendet um die Substanzen kritisch auf mögliche, unerwünschte Nebenwirkungen zu untersuchen. In dieser Dissertation wurde gezeigt, dass NSC23766 und EHT1864 zwar effektive Hemmstoffe für Rac1 sind, allerdings genauso Rac1-unabhängige Nebenwirkungen verursachen. Beide Hemmstoffe führten zu Veränderungen der Thrombozyten: Während unter NSC23766 eine verminderte Expression von Membranrezeptoren beobachtet wurde, führte EHT1864 zu einer stark beeinträchtigten Vitalität der Thrombozyten. Anhand von erhöhten Phosphatidylserin-Werten und einer Veränderung des mitochondrialen Membranpotenzials in den behandelten Thrombozyten konnte die EHT1864-vermittelte Apoptose nachgewiesen werden. Letztendlich wurde anhand der verminderten Phosphorylierung von PAK1/PAK2 gezeigt, dass die Aktivierung dieser Rac1-Effektorproteine durch NSC23766 und EHT1864 direkt unterdrückt wird. Zusätzlich zu den Inhibitor-vermittelten Effekten wurde anhand von Rac1-defizienten Thrombozyten nachgewiesen, dass Rac1 auch an GPCR- und GPIb-vermittelten Signalkaskaden beteiligt ist. Außerdem wurde beobachtet, dass Rac1 für die Integrin IIb 3-vermittelte clot retraction entbehrlich ist. Die Ergebnisse dieser Studie legen dar, dass neue pharmakologische Substanzen für die antithrombotische Therapie mit Rac1 als Zielmolekül gründlich erforscht und hinterfragt werden müssen um die Spezifität zu maximieren und vor allem das Nebenwirkungsprofil zu minimieren.
85

p120-catenin and p190RhoGAP regulate cell-cell adhesion by coordinating antagonism between Rac and Rho

Wildenberg, Gregg Anthony. January 2007 (has links)
Thesis (Ph. D. in Cancer Biology)--Vanderbilt University, May 2007. / Title from title screen. Includes bibliographical references.
86

Human platelet aggregation induced via protease-activated receptor 1 (PAR1)signaling is reversed by nitric oxide (NO) through inhibition of a Rho-kinase/ROCK-mediated pathway

Björn, Patrik January 2010 (has links)
Human platelets are constantly regulated by activating and inhibitory effectors. Thrombin,the most potent platelet agonist, induces signaling through the protease-activated receptors(PARs) 1 and 4 which in turn convey their signal by coupling to G-proteins. Nitric oxide (NO)is a potent platelet inhibitor continuously formed by the endothelium exerting its effect byincreasing cGMP through activation of soluble guanylyl cyclase (sGC). The purpose of thiswork has been to investigate how NO would affect platelets already activated by PARagonists.To examine the different contributions of the PAR1- and PAR4-signals, the selectiveagonist peptides SFLLRN and AYPGKF-NH2 were utilized. Aggregation, Ca2+-mobilization andphosphorylation of threonine 696 in myosin phosphatase target subunit 1 (MYPT1) wereanalyzed. Intriguingly PAR1-, but not PAR4-, agonist provoked aggregation was rapidlyreversed upon NO exposure. PAR-agonist induced Ca2+-mobilization was markedly reducedafter exposure to NO, however this Ca2+-suppression did not cause the disaggregation ofPAR1-agonist evoked platelet aggregation. The reversal of aggregation was suspected to becaused by a cGMP-mediated inhibition of the Rho-kinase/ROCK-signaling pathway. This wassupported by Westen blot analysis where a marked decrease of MYPT1 phosphorylationcompared to basal levels could be observed. In conclusion, NO was found to reverse humanplatelet aggregation evoked by PAR1-activation by inhibition of a Rho-kinase/ROCK-signalingpathway.
87

Regulation of RhoA Activation and Actin Reorganization by Diacylglycerol Kinase

Ard, Ryan 22 March 2012 (has links)
Rho GTPases are critical regulators of actin cytoskeletal dynamics. The three most well characterized Rho GTPases, Rac1, RhoA and Cdc42 share a common inhibitor, RhoGDI. It is only recently becoming clear how upstream signals cause the selective release of individual Rho GTPases from RhoGDI. For example, our laboratory showed that diacylglycerol kinase zeta (DGKz), which converts diacylglycerol (DAG) to phosphatidic acid (PA), activates PAK1-mediated RhoGDI phosphorylation on Ser-101/174, causing selective Rac1 release and activation. Phosphorylation of RhoGDI on Ser-34 by PKCa has recently been demonstrated to selectively release RhoA, promoting RhoA activation. Here, I show DGKz is required for optimal RhoA activation and RhoGDI Ser-34 phosphorylation. Both were substantially reduced in DGKz-null fibroblasts and occurred independently of DGKz activity, but required a function DGKz PDZ-binding motif. In contrast, Rac1 activation required DGKz-derived PA, but not PDZ-interactions, indicating DGKz regulates these Rho GTPases by two distinct regulatory complexes. Interestingly, RhoA bound directly to the DGKz C1A domain, the same region known to bind Rac1. By direct interactions with RhoA and PKCa, DGKz was required for the efficient co-precipitation of these proteins, suggesting it is important to assemble a signalling complex that functions as a RhoA-specific RhoGDI dissociation complex. Consequently, cells lacking DGKz exhibited decreased RhoA signalling downstream and disrupted stress fibers. Moreover, DGKz loss resulted in decreased stress fiber formation following the expression of a constitutively active RhoA mutant, suggesting it is also important for RhoA function following activation. This is consistent with the ability of DGKz to bind both active and inactive RhoA conformations. Collectively, these findings suggest DGKz is central to two distinct Rho GTPase activation complexes, each having different requirements for DGKz activity and PDZ interactions, and might regulate the balance of Rac1 and RhoA activity during dynamic changes to the actin cytoskeleton.
88

Effects of Rho-kinase Iinhibition on Established Chronic Hypoxic Pulmonary Hypertension in the Neonatal Rat

Xu, Emily Zhi 29 July 2010 (has links)
Rationale: Vascular remodeling and right-ventricular (RV) dysfunction are features of refractory pulmonary hypertension (PHT) in human neonates. These features are replicated in rats chronically exposed to hypoxia (13% O2), in which increased pulmonary vascular resistance (PVR) was acutely normalized by Y-27632, a Rho-kinase (ROCK) inhibitor, but not by inhaled nitric oxide. Objective: To examine the reversing effects of sustained ROCK inhibition on haemodynamic (RV dysfunction and increased PVR) and structural (RV hypertrophy and arterial wall remodeling) changes of chronic hypoxic PHT. Methods: Rat pups were exposed to air or hypoxia from birth for up to 21 days and received Y-27632 (15 mg/kg/b.i.d.) or vehicle from day 14. Results: Y-27632 normalised RV dysfunction and reversed remodeling secondary to chronic hypoxia. These changes were accompanied by increased apoptosis of smooth muscle and attenuated endothelin-1 expression in pulmonary arteries. Conclusion: ROCK inhibitors hold promise as a rescue therapy for refractory PHT in neonates.
89

Effects of Rho-kinase Iinhibition on Established Chronic Hypoxic Pulmonary Hypertension in the Neonatal Rat

Xu, Emily Zhi 29 July 2010 (has links)
Rationale: Vascular remodeling and right-ventricular (RV) dysfunction are features of refractory pulmonary hypertension (PHT) in human neonates. These features are replicated in rats chronically exposed to hypoxia (13% O2), in which increased pulmonary vascular resistance (PVR) was acutely normalized by Y-27632, a Rho-kinase (ROCK) inhibitor, but not by inhaled nitric oxide. Objective: To examine the reversing effects of sustained ROCK inhibition on haemodynamic (RV dysfunction and increased PVR) and structural (RV hypertrophy and arterial wall remodeling) changes of chronic hypoxic PHT. Methods: Rat pups were exposed to air or hypoxia from birth for up to 21 days and received Y-27632 (15 mg/kg/b.i.d.) or vehicle from day 14. Results: Y-27632 normalised RV dysfunction and reversed remodeling secondary to chronic hypoxia. These changes were accompanied by increased apoptosis of smooth muscle and attenuated endothelin-1 expression in pulmonary arteries. Conclusion: ROCK inhibitors hold promise as a rescue therapy for refractory PHT in neonates.
90

Regulation of RhoA Activation and Actin Reorganization by Diacylglycerol Kinase

Ard, Ryan 22 March 2012 (has links)
Rho GTPases are critical regulators of actin cytoskeletal dynamics. The three most well characterized Rho GTPases, Rac1, RhoA and Cdc42 share a common inhibitor, RhoGDI. It is only recently becoming clear how upstream signals cause the selective release of individual Rho GTPases from RhoGDI. For example, our laboratory showed that diacylglycerol kinase zeta (DGKz), which converts diacylglycerol (DAG) to phosphatidic acid (PA), activates PAK1-mediated RhoGDI phosphorylation on Ser-101/174, causing selective Rac1 release and activation. Phosphorylation of RhoGDI on Ser-34 by PKCa has recently been demonstrated to selectively release RhoA, promoting RhoA activation. Here, I show DGKz is required for optimal RhoA activation and RhoGDI Ser-34 phosphorylation. Both were substantially reduced in DGKz-null fibroblasts and occurred independently of DGKz activity, but required a function DGKz PDZ-binding motif. In contrast, Rac1 activation required DGKz-derived PA, but not PDZ-interactions, indicating DGKz regulates these Rho GTPases by two distinct regulatory complexes. Interestingly, RhoA bound directly to the DGKz C1A domain, the same region known to bind Rac1. By direct interactions with RhoA and PKCa, DGKz was required for the efficient co-precipitation of these proteins, suggesting it is important to assemble a signalling complex that functions as a RhoA-specific RhoGDI dissociation complex. Consequently, cells lacking DGKz exhibited decreased RhoA signalling downstream and disrupted stress fibers. Moreover, DGKz loss resulted in decreased stress fiber formation following the expression of a constitutively active RhoA mutant, suggesting it is also important for RhoA function following activation. This is consistent with the ability of DGKz to bind both active and inactive RhoA conformations. Collectively, these findings suggest DGKz is central to two distinct Rho GTPase activation complexes, each having different requirements for DGKz activity and PDZ interactions, and might regulate the balance of Rac1 and RhoA activity during dynamic changes to the actin cytoskeleton.

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