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Items: 1 to 20 of 87

1.

Molecular mechanisms of activity-dependent changes in dendritic morphology: role of RGK proteins.

Ghiretti AE, Paradis S.

Trends Neurosci. 2014 Jul;37(7):399-407. doi: 10.1016/j.tins.2014.05.003. Review.

2.

Rem2 is an activity-dependent negative regulator of dendritic complexity in vivo.

Ghiretti AE, Moore AR, Brenner RG, Chen LF, West AE, Lau NC, Van Hooser SD, Paradis S.

J Neurosci. 2014 Jan 8;34(2):392-407. doi: 10.1523/JNEUROSCI.1328-13.2014.

3.

Nuclear localization of endogenous RGK proteins and modulation of cell shape remodeling by regulated nuclear transport.

Mahalakshmi RN, Ng MY, Guo K, Qi Z, Hunziker W, Béguin P.

Traffic. 2007 Sep;8(9):1164-78.

4.

Rem2, a new member of the Rem/Rad/Gem/Kir family of Ras-related GTPases.

Finlin BS, Shao H, Kadono-Okuda K, Guo N, Andres DA.

Biochem J. 2000 Apr 1;347 Pt 1:223-31.

5.

Rem GTPase interacts with the proximal CaV1.2 C-terminus and modulates calcium-dependent channel inactivation.

Pang C, Crump SM, Jin L, Correll RN, Finlin BS, Satin J, Andres DA.

Channels (Austin). 2010 May-Jun;4(3):192-202.

6.

Roles of 14-3-3 and calmodulin binding in subcellular localization and function of the small G-protein Rem2.

Béguin P, Mahalakshmi RN, Nagashima K, Cher DH, Kuwamura N, Yamada Y, Seino Y, Hunziker W.

Biochem J. 2005 Aug 15;390(Pt 1):67-75. Erratum in: Biochem J. 2005 Nov 1;391(Pt 3):712.

7.

Analyses of Rem/RGK signaling and biological activity.

Andres DA, Crump SM, Correll RN, Satin J, Finlin BS.

Methods Enzymol. 2006;407:484-98.

PMID:
16757347
8.

A loss-of-function analysis reveals that endogenous Rem2 promotes functional glutamatergic synapse formation and restricts dendritic complexity.

Moore AR, Ghiretti AE, Paradis S.

PLoS One. 2013 Aug 26;8(8):e74751. doi: 10.1371/journal.pone.0074751.

9.

Expression of Rem2, an RGK family small GTPase, reduces N-type calcium current without affecting channel surface density.

Chen H, Puhl HL 3rd, Niu SL, Mitchell DC, Ikeda SR.

J Neurosci. 2005 Oct 19;25(42):9762-72.

10.

The GTPase Rem2 regulates synapse development and dendritic morphology.

Ghiretti AE, Paradis S.

Dev Neurobiol. 2011 May;71(5):374-89. doi: 10.1002/dneu.20868.

11.

Control of Dendritic Spine Morphological and Functional Plasticity by Small GTPases.

Woolfrey KM, Srivastava DP.

Neural Plast. 2016;2016:3025948. doi: 10.1155/2016/3025948. Review.

12.

The RGK family: a regulatory tail of small GTP-binding proteins.

Kelly K.

Trends Cell Biol. 2005 Dec;15(12):640-3.

PMID:
16242932
13.

RGK GTPase-dependent CaV2.1 Ca2+ channel inhibition is independent of CaVbeta-subunit-induced current potentiation.

Leyris JP, Gondeau C, Charnet A, Delattre C, Rousset M, Cens T, Charnet P.

FASEB J. 2009 Aug;23(8):2627-38. doi: 10.1096/fj.08-122135.

PMID:
19332647
14.

Rho family GTPases and dendrite plasticity.

Negishi M, Katoh H.

Neuroscientist. 2005 Jun;11(3):187-91. Review.

PMID:
15911868
15.

Molecular basis of dendritic arborization.

Urbanska M, Blazejczyk M, Jaworski J.

Acta Neurobiol Exp (Wars). 2008;68(2):264-88. Review.

16.

RGK small GTP-binding proteins interact with the nucleotide kinase domain of Ca2+-channel beta-subunits via an uncommon effector binding domain.

Béguin P, Ng YJ, Krause C, Mahalakshmi RN, Ng MY, Hunziker W.

J Biol Chem. 2007 Apr 13;282(15):11509-20.

17.

Inhibition of Voltage-Gated Calcium Channels by RGK Proteins.

Buraei Z, Yang J.

Curr Mol Pharmacol. 2015;8(2):180-7. Review.

PMID:
25966691
18.

Molecular mechanisms of dendrite stability.

Koleske AJ.

Nat Rev Neurosci. 2013 Aug;14(8):536-50. doi: 10.1038/nrn3486. Review.

19.

RGK protein-mediated impairment of slow depolarization- dependent Ca2+ entry into developing myotubes.

Romberg CF, Beqollari D, Meza U, Bannister RA.

Channels (Austin). 2014;8(3):243-8.

20.

Nuclear transport of Kir/Gem requires specific signals and importin alpha5 and is regulated by calmodulin and predicted serine phosphorylations.

Mahalakshmi RN, Nagashima K, Ng MY, Inagaki N, Hunziker W, Béguin P.

Traffic. 2007 Sep;8(9):1150-63.

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