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RhoGTPases – Function and Regulation Thomas Wieland Institut für Pharmakologie und Toxikologie Fakultät für Klinische Medizin Mannheim Ruprecht-Karls-

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Presentation on theme: "RhoGTPases – Function and Regulation Thomas Wieland Institut für Pharmakologie und Toxikologie Fakultät für Klinische Medizin Mannheim Ruprecht-Karls-"— Presentation transcript:

1 RhoGTPases – Function and Regulation Thomas Wieland Institut für Pharmakologie und Toxikologie Fakultät für Klinische Medizin Mannheim Ruprecht-Karls- Universität Heidelberg

2 Physiological function of Rho GTPases

3 Regulation of the actin cytoskeleton Actin Vinculin Actin Vinculin

4 U = TXA 2 -Analog Y = Rho-Kinase Inhibitor C3 = exoenzyme C3 transferase (C3T) from Clostridium botulinum Inhibition of RhoA-C Shape change of platelets Klages et al. J. Cell Biol. 144 (4) 1999

5 Keratinocytes Regulation of cell-cell contacts C3 = exoenzyme C3 transferase (C3T) from Clostridium botulinum Inhibition of RhoA-C Endothelial cells Thrombin is a strong activator of RhoA Cadherine

6 Regulation of proliferation Neointima formation after vascular injury of a carotid artery Y27632 = Rho Kinase Inhibitor Shibata et al. Circulation 103(2) 2001

7 Cardiac specific overexpression of RhoA in the heart

8 Posttranslational modification of RhoGTPases

9 Statins

10 Beneficial pleiotropic effects of statins

11 Activation cycle of RhoGTPases

12 Rho-specific guanine nucleotide exchange factors DHPH Catalytic activity ~200 aa Membrane localization ? Variable specifity for RhoGTPases Multidomain proteins Variable size (~ 60 to 800kd) Variable expression patterns (ubiquitiniously to specific)

13 Model of PH domain assisted GEF activity

14 RhoGEFs: The Dbl family

15 Regulation of RhoGEFs - Autoinhibition

16 Regulation of RhoGEFs – Protein-Protein-Interaction

17 Cellular Localization of RhoGEFs

18 b Experimental approaches direct pull down assay Rac1 Cdc42 Rho GEF GTP Pak1-GST Rhotekin-GST p63RhoGEF control p63RhoGEF-DH Tiam-1 Dbl-DH RhoA-GTP Rac1-GTP Cdc42-GTP total RhoA total Rac1 total Cdc42 Direct detection of RhoGTPase activation

19 relative luciferase expression control RhoGEF 0 1 2 3 4 5 +C3T C3T indirect luciferase reporter assay Rac1 pSRE firefly luciferase renilla luciferase SRF const. Cdc42 Rho GEF Detection of RhoGTPase activation II

20 Detection of RhoGTPase activation III FRET

21 G i PCRG q PCR  GiGi GqGq PM G 12 PCR G  12/13 p63RhoGEF LARG PI3K TIAM-1 RhoA Rac1 VEGF-R NO cGMP p164, Grinch, Gef10 Focus AG Wieland

22 p63RhoGEF DHPH 580 aa

23 H2O Cardiomyocytes Non-Cardiomyocytes H2Ol Cardiomyocytes Non-Cardiomyocytes p63RhoGEF Control Heart Brain Placenta Lung Liver Sc. muscle Kidney Pancreas 9,5 7,5 4,4 2,4 1,3 kb Northern Blot: mRNA from different human tissues RT-PCR: Total RNA from isolated primary rat cells Expression of p63RhoGEF

24 p63RhoGEF induces stress fiber formation anti-c-myc 20 µm TRITC-Phalloidin 20 µm stress fiber Lutz et al. Naunyn Schmiedebergs Arch Pharmacol. 369:540-6 (2004 )

25 p63RhoGEF control p63RhoGEF-DH Tiam-1 Dbl-DH RhoA-GTP Rac1-GTP Cdc42-GTP total RhoA total Rac1 total Cdc42 relative luciferase expression controlp63RhoGEF 0 1 2 3 4 5 +C3T Specificity of p63RhoGEF

26 Upstream regulatory mechanism (1) Lutz et al. J Biol Chem. 280:11134-9 (2005 )

27 Upstream regulatory mechanism (2) relative luciferase expression 0 50 100 150 200 +p63 Basal G  q QLG  11 QL Basal 0 50 100 150 +p63 G  12 QL G  13 QL Control p63 G  qRC G  qRC+p63 G  12QL+p63 G  12QL G  11QL G  11QL+p63 G  13QL+p63 G  13QL RhoA-GTP total RhoA

28 p63RhoGEF WB: anti-c-myc WB: anti-G  q/11 IP: anti-c-myc Lysate Control G  11 QL G  q RC Control IP: anti-EE WB: anti-c-myc WB: anti-G  q/11 p63 - EE-G  q QL Physical interaction of p63RhoGEF with G  q in the cell

29 p63 149-580 Courtesy of John J. Tresmer Physical interaction of p63RhoGEF with G  q in vitro

30 DHPH p63RhoGEF 580 RhoA GTPGDP G q PCR G  q/11 Physiological relevance of p63RhoGEF mediated RhoA activation Ad p63RhoGEF + Endothelin 1 TRITC-Phalloidin RhoA-GTP total RhoA control p63RhoGEF control p63RhoGEF + Endothelin 1 p63RhoGEF Neonatal Cardiomyocytes

31 p63RhoGEF is mainly expressed in heart and brain tissue. p63RhoGEF activates RhoA, but not Rac1 or Cdc42 p63RhoGEF is activated by G  q/11 proteins. p63RhoGEF interacts directly with active G  q/11 proteins. p63RhoGEF enhances the Endothelin 1 and Phenylephrine induced RhoA activation in cardiomyocytes. b p63RhoGEF - Summary

32 H 1 -R M 3 -R His G  q/11 p63RhoGEF LARG RhoA G  12/13 PLC/PKC TXA 2 -R U-46619Carb Signaling cascades involving p63RhoGEF and LARG

33 Larg Control anti-Flag p63 Control anti-c-myc DH PH 588 1543 DH PH RGS PDZ RhoA-GTP total RhoA Control Larg p63 p63RhoGEF (p63) Dominant expression in brain and heart LARG Widespread expression Basal activity of p63RhoGEF and LARG

34 G 12/13 PCR G q/11 PCR GPCR induced RhoA activation mediated by p63RhoGEF and LARG

35 Conclusion: Larg needs an active state receptor to induce RhoA activation, whereas p63RhoGEF needs only traces of G  q protein for its activation. The LARG induced Rho activation requires activated GPCRs

36 G  q/i 1-28aa G  i-3 29-353aa G  q 0 10 20 30 40 50 60 70 relative Luciferase p63-+---++---++-- Larg--+----++---++ M 3 -R---+--+-+--+-+ GqGq ----+++++----- G  q/i ---------+++++ The Larg activation ist dependent on the N-terminal part of G  q proteins GqGq G  q/i Conclusion: p63RhoGEF and LARG apparently hold divergent binding sites for G  q

37 RGS3

38 RGS proteins contribute to the regulation of G  - gated K + -channels RGS proteins contribute to the regulation of G  - gated K + -channels ACh, 1  M Control 500 nA 25 s Activation of GIRK by M 2 -AChR in Xenopus oocytes Doupnik et al. 1997, Proc Natl Acad Sci 94:10461 Regulation by RGS3 + RGS3 500 nA 25 s ACh, 1  M

39 RGS3 - A highly abundant protein in human heart RGS3 RGS domain 1 394 519 509 G  binding 70kDa RGS3 mRNA is upregulated in human HF Owen et al. 2001, Eur Heart J 22:1015 RGS3 can be induced in NRCM by treatment with bFGF Zhang et al. 1998, J Mol Cell Cardiol 30:269 RGS3 inhibits G  -stimulated PLC activity and PI3K/Akt signaling  G  scavenger Shi et al. 2001, J Biol Chem 276:24293


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