Skip Header

1 - 25 of 45 results for author:"Wieland T." in Literature citations

Page of 2 | Next »

to top of page·  

Results Customize

› Repeat search in UniProtKB (17)

Loss-of-function mutations in MGME1 impair mtDNA replication and cause multisystemic mitochondrial disease.

Kornblum C., Nicholls T.J., Haack T.B., Scholer S., Peeva V., Danhauser K., Hallmann K., Zsurka G., Rorbach J., Iuso A. et al.

Nat. Genet. 45:214-219(2013) · UniProtKB (1)

Exome sequencing reveals de novo WDR45 mutations causing a phenotypically distinct, X-linked dominant form of NBIA.

Haack T.B., Hogarth P., Kruer M.C., Gregory A., Wieland T., Schwarzmayr T., Graf E., Sanford L., Meyer E., Kara E. et al.

Am. J. Hum. Genet. 91:1144-1149(2012) · Mapped (3)

DHTKD1 mutations cause 2-aminoadipic and 2-oxoadipic aciduria.

Danhauser K., Sauer S.W., Haack T.B., Wieland T., Staufner C., Graf E., Zschocke J., Strom T.M., Traub T., Okun J.G. et al.

Am. J. Hum. Genet. 91:1082-1087(2012) · Mapped (1)

Srgap3⁻/⁻ mice present a neurodevelopmental disorder with schizophrenia-related intermediate phenotypes.

Waltereit R., Leimer U., von Bohlen Und Halbach O., Panke J., Holter S.M., Garrett L., Wittig K., Schneider M., Schmitt C., Calzada-Wack J. et al.

FASEB J. 26:4418-4428(2012) · Mapped (4)

Exome sequencing identifies a REEP1 mutation involved in distal hereditary motor neuropathy type V.

Beetz C., Pieber T.R., Hertel N., Schabhuttl M., Fischer C., Trajanoski S., Graf E., Keiner S., Kurth I., Wieland T. et al.

Am. J. Hum. Genet. 91:139-145(2012) · UniProtKB (1) · Mapped (4)

Highly invasive melanoma cells activate the vascular endothelium via an MMP-2/integrin alphavbeta5-induced secretion of VEGF-A.

Desch A., Strozyk E.A., Bauer A.T., Huck V., Niemeyer V., Wieland T., Schneider S.W.

Am. J. Pathol. 181:693-705(2012) · Mapped (13)

Angiopoietin-2 differentially regulates angiogenesis through TIE2 and integrin signaling.

Felcht M., Luck R., Schering A., Seidel P., Srivastava K., Hu J., Bartol A., Kienast Y., Vettel C., Loos E.K. et al.

J. Clin. Invest. 122:1991-2005(2012) · Mapped (15)

Role of RyR2 phosphorylation at S2814 during heart failure progression.

Respress J.L., van Oort R.J., Li N., Rolim N., Dixit S.S., deAlmeida A., Voigt N., Lawrence W.S., Skapura D.G., Skardal K. et al.

Circ. Res. 110:1474-1483(2012) · Mapped (12)

Enhanced sarcoplasmic reticulum Ca2+ leak and increased Na+-Ca2+ exchanger function underlie delayed afterdepolarizations in patients with chronic atrial fibrillation.

Voigt N., Li N., Wang Q., Wang W., Trafford A.W., Abu-Taha I., Sun Q., Wieland T., Ravens U., Nattel S. et al.

Circulation 125:2059-2070(2012) · Mapped (17)

Angiotensin II modulates VEGF-driven angiogenesis by opposing effects of type 1 and type 2 receptor stimulation in the microvascular endothelium.

Carbajo-Lozoya J., Lutz S., Feng Y., Kroll J., Hammes H.P., Wieland T.

Cell. Signal. 24:1261-1269(2012) · Mapped (8)

Mutations in DNMT1 cause autosomal dominant cerebellar ataxia, deafness and narcolepsy.

Winkelmann J., Lin L., Schormair B., Kornum B.R., Faraco J., Plazzi G., Melberg A., Cornelio F., Urban A.E., Pizza F. et al.

Hum. Mol. Genet. 21:2205-2210(2012) · Mapped (4)

Lack of the mitochondrial protein acylglycerol kinase causes Sengers syndrome.

Mayr J.A., Haack T.B., Graf E., Zimmermann F.A., Wieland T., Haberberger B., Superti-Furga A., Kirschner J., Steinmann B., Baumgartner M.R. et al.

Am. J. Hum. Genet. 90:314-320(2012) · UniProtKB (1) · Mapped (4)

LARG links histamine-H1-receptor-activated Gq to Rho-GTPase-dependent signaling pathways.

Pfreimer M., Vatter P., Langer T., Wieland T., Gierschik P., Moepps B.

Cell. Signal. 24:652-663(2012) · Mapped (4)

Reversible histidine phosphorylation in mammalian cells: a teeter-totter formed by nucleoside diphosphate kinase and protein histidine phosphatase 1.

Wieland T., Hippe H.J., Ludwig K., Zhou X.B., Korth M., Klumpp S.

Methods Enzymol. 471:379-402(2010) · UniProtKB (1)

p63RhoGEF--a key mediator of angiotensin II-dependent signaling and processes in vascular smooth muscle cells.

Wuertz C.M., Lorincz A., Vettel C., Thomas M.A., Wieland T., Lutz S.

FASEB J. 24:4865-4876(2010) · Mapped (2)

Dual role of protein kinase C on BK channel regulation.

Zhou X.B., Wulfsen I., Utku E., Sausbier U., Sausbier M., Wieland T., Ruth P., Korth M.

Proc. Natl. Acad. Sci. U.S.A. 107:8005-8010(2010) · Mapped (45)

The interaction of nucleoside diphosphate kinase B with Gbetagamma dimers controls heterotrimeric G protein function.

Hippe H.J., Wolf N.M., Abu-Taha I., Mehringer R., Just S., Lutz S., Niroomand F., Postel E.H., Katus H.A., Rottbauer W. et al.

Proc. Natl. Acad. Sci. U.S.A. 106:16269-16274(2009) · Mapped (26)

The natriuretic peptide/guanylyl cyclase--a system functions as a stress-responsive regulator of angiogenesis in mice.

Kuhn M., Volker K., Schwarz K., Carbajo-Lozoya J., Flogel U., Jacoby C., Stypmann J., van Eickels M., Gambaryan S., Hartmann M. et al.

J. Clin. Invest. 119:2019-2030(2009) · Mapped (9)

Inhibition of Rho-dependent kinases ROCK I/II activates VEGF-driven retinal neovascularization and sprouting angiogenesis.

Kroll J., Epting D., Kern K., Dietz C.T., Feng Y., Hammes H.P., Wieland T., Augustin H.G.

Am. J. Physiol. 296:H893-H899(2009) · UniProtKB (3) · Mapped (23)

Anaphylactic shock depends on endothelial Gq/G11.

Korhonen H., Fisslthaler B., Moers A., Wirth A., Habermehl D., Wieland T., Schutz G., Wettschureck N., Fleming I., Offermanns S.

J. Exp. Med. 206:411-420(2009) · Mapped (13)

Reduced viability of neuronal cells after overexpression of protein histidine phosphatase.

Krieglstein J., Lehmann M., Maurer A., Gudermann T., Pinkenburg O., Wieland T., Litterscheid S., Klumpp S.

Neurochem. Int. 53:132-136(2008) · Mapped (5)

M2 muscarinic receptors induce airway smooth muscle activation via a dual, Gbetagamma-mediated inhibition of large conductance Ca2+-activated K+ channel activity.

Zhou X.B., Wulfsen I., Lutz S., Utku E., Sausbier U., Ruth P., Wieland T., Korth M.

J. Biol. Chem. 283:21036-21044(2008) · Mapped (5)

Molecular architecture of Galphao and the structural basis for RGS16-mediated deactivation.

Slep K.C., Kercher M.A., Wieland T., Chen C.K., Simon M.I., Sigler P.B.

Proc. Natl. Acad. Sci. U.S.A. 105:6243-6248(2008) · Mapped (5)

Structure of Galphaq-p63RhoGEF-RhoA complex reveals a pathway for the activation of RhoA by GPCRs.

Lutz S., Shankaranarayanan A., Coco C., Ridilla M., Nance M.R., Vettel C., Baltus D., Evelyn C.R., Neubig R.R., Wieland T. et al.

Science 318:1923-1927(2007) · UniProtKB (1) · Mapped (11)

Sphingosine-1-phosphate and endothelin-1 induce the expression of rgs16 protein in cardiac myocytes by transcriptional activation of the rgs16 gene.

Stuebe S., Wieland T., Kraemer E., Stritzky A., Schroeder D., Seekamp S., Vogt A., Chen C.K., Patten M.

Naunyn Schmiedebergs Arch. Pharmacol. 376:363-373(2008) · Mapped (5)

to top of page·

Page of 2 | Next »