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Results: 1 to 20 of 222

Similar articles for PubMed (Select 23853098)

1.

MicroRNA-124 suppresses the transactivation of nuclear factor of activated T cells by targeting multiple genes and inhibits the proliferation of pulmonary artery smooth muscle cells.

Kang K, Peng X, Zhang X, Wang Y, Zhang L, Gao L, Weng T, Zhang H, Ramchandran R, Raj JU, Gou D, Liu L.

J Biol Chem. 2013 Aug 30;288(35):25414-27. doi: 10.1074/jbc.M113.460287. Epub 2013 Jul 12.

2.

PPARγ Activation Reduces Hypoxia-induced Endothelin-1 Expression through Upregulation of miR-98.

Kang BY, Park KK, Kleinhenz JM, Murphy TC, Green DE, Bijli KM, Yeligar SM, Carthan KA, Searles CD, Sutliff RL, Hart CM.

Am J Respir Cell Mol Biol. 2015 Jun 22. [Epub ahead of print]

PMID:
26098770
3.

Mature T cell responses are controlled by microRNA-142.

Sun Y, Oravecz-Wilson K, Mathewson N, Wang Y, McEachin R, Liu C, Toubai T, Wu J, Rossi C, Braun T, Saunders T, Reddy P.

J Clin Invest. 2015 Jul 1;125(7):2825-40. doi: 10.1172/JCI78753. Epub 2015 Jun 22.

PMID:
26098216
4.

MiR-223 Reverses Experimental Pulmonary Arterial Hypertension.

Meloche J, Le Guen M, Potus F, Vinck J, Ranchoux B, Johnson I, Antigny F, Tremblay E, Breuils-Bonnet S, Perros F, Provencher S, Bonnet S.

Am J Physiol Cell Physiol. 2015 Jun 17:ajpcell.00149.2015. doi: 10.1152/ajpcell.00149.2015. [Epub ahead of print]

PMID:
26084306
5.

MicroRNA-1298 is regulated by DNA methylation and affects vascular smooth muscle cell function by targeting connexin 43.

Hu W, Wang M, Yin H, Yao C, He Q, Yin L, Zhang C, Li W, Chang G, Wang S.

Cardiovasc Res. 2015 May 29. pii: cvv160. [Epub ahead of print]

PMID:
26025955
6.

Disruption of miR-29 Leads to Aberrant Differentiation of Smooth Muscle Cells Selectively Associated with Distal Lung Vasculature.

Cushing L, Costinean S, Xu W, Jiang Z, Madden L, Kuang P, Huang J, Weisman A, Hata A, Croce CM, Lü J.

PLoS Genet. 2015 May 28;11(5):e1005238. doi: 10.1371/journal.pgen.1005238. eCollection 2015 May.

7.

Lipid nanoparticle delivery of a microRNA-145 inhibitor improves experimental pulmonary hypertension.

McLendon JM, Joshi SR, Sparks J, Matar M, Fewell JG, Abe K, Oka M, McMurtry IF, Gerthoffer WT.

J Control Release. 2015 Jul 28;210:67-75. doi: 10.1016/j.jconrel.2015.05.261. Epub 2015 May 13.

PMID:
25979327
8.

MicroRNA Transcriptome Profile Analysis in Porcine Muscle and the Effect of miR-143 on the MYH7 Gene and Protein.

Zuo J, Wu F, Liu Y, Xiao J, Xu M, Yu Q, Xia M, He X, Zou S, Tan H, Feng D.

PLoS One. 2015 Apr 27;10(4):e0124873. doi: 10.1371/journal.pone.0124873. eCollection 2015.

9.

MicroRNA-30c contributes to the development of hypoxia pulmonary hypertension by inhibiting platelet-derived growth factor receptor β expression.

Xing Y, Zheng X, Li G, Liao L, Cao W, Xing H, Shen T, Sun L, Yang B, Zhu D.

Int J Biochem Cell Biol. 2015 Jul;64:155-66. doi: 10.1016/j.biocel.2015.04.001. Epub 2015 Apr 13.

PMID:
25882492
10.

A Sex-Specific MicroRNA-96/5-Hydroxytryptamine 1B Axis Influences Development of Pulmonary Hypertension.

Wallace E, Morrell NW, Yang XD, Long L, Stevens H, Nilsen M, Loughlin L, Mair KM, Baker AH, MacLean MR.

Am J Respir Crit Care Med. 2015 Jun 15;191(12):1432-42. doi: 10.1164/rccm.201412-2148OC.

PMID:
25871906
11.

Modulation of miRNAs in Pulmonary Hypertension.

Gupta S, Li L.

Int J Hypertens. 2015;2015:169069. doi: 10.1155/2015/169069. Epub 2015 Mar 11. Review.

12.

microRNA-125a in pulmonary hypertension: Regulator of a proliferative phenotype of endothelial cells.

Huber LC, Ulrich S, Leuenberger C, Gassmann M, Vogel J, von Blotzheim LG, Speich R, Kohler M, Brock M.

Exp Biol Med (Maywood). 2015 Apr 7. pii: 1535370215579018. [Epub ahead of print]

PMID:
25854878
13.

New insights into the pathology of pulmonary hypertension: implication of the miR-210/ISCU1/2/Fe-S axis.

Tang H, Ayon RJ, Yuan JX.

EMBO Mol Med. 2015 Apr 7;7(6):689-91. doi: 10.15252/emmm.201505160. No abstract available.

14.

Human lung microRNA profiling in pulmonary arterial hypertension secondary to congenital heart defect.

Ma K, Zhao Q, Chen W, Zhang H, Li S, Pan X, Chen Q.

Pediatr Pulmonol. 2015 Apr 2. doi: 10.1002/ppul.23181. [Epub ahead of print]

PMID:
25847058
15.

Genetic and hypoxic alterations of the microRNA-210-ISCU1/2 axis promote iron-sulfur deficiency and pulmonary hypertension.

White K, Lu Y, Annis S, Hale AE, Chau BN, Dahlman JE, Hemann C, Opotowsky AR, Vargas SO, Rosas I, Perrella MA, Osorio JC, Haley KJ, Graham BB, Kumar R, Saggar R, Saggar R, Wallace WD, Ross DJ, Khan OF, Bader A, Gochuico BR, Matar M, Polach K, Johannessen NM, Prosser HM, Anderson DG, Langer R, Zweier JL, Bindoff LA, Systrom D, Waxman AB, Jin RC, Chan SY.

EMBO Mol Med. 2015 Mar 30;7(6):695-713. doi: 10.15252/emmm.201404511.

16.

miR-185 plays an anti-hypertrophic role in the heart via multiple targets in the calcium-signaling pathways.

Kim JO, Song DW, Kwon EJ, Hong SE, Song HK, Min CK, Kim do H.

PLoS One. 2015 Mar 13;10(3):e0122509. doi: 10.1371/journal.pone.0122509. eCollection 2015.

17.

Nuclear factor of activated T cells in cancer development and treatment.

Shou J, Jing J, Xie J, You L, Jing Z, Yao J, Han W, Pan H.

Cancer Lett. 2015 Jun 1;361(2):174-84. doi: 10.1016/j.canlet.2015.03.005. Epub 2015 Mar 10. Review.

18.

MiR-21 suppresses endothelial progenitor cell proliferation by activating the TGFβ signaling pathway via downregulation of WWP1.

Zuo K, Li M, Zhang X, Lu C, Wang S, Zhi K, He B.

Int J Clin Exp Pathol. 2015 Jan 1;8(1):414-22. eCollection 2015.

19.

miR-9 enhances the transactivation of nuclear factor of activated T cells by targeting KPNB1 and DYRK1B.

Zeng Y, Wang Y, Wu Z, Kang K, Peng X, Peng W, Qu J, Liu L, Raj JU, Gou D.

Am J Physiol Cell Physiol. 2015 May 1;308(9):C720-8. doi: 10.1152/ajpcell.00299.2014. Epub 2015 Feb 18.

PMID:
25696812
20.

miR-30 family microRNAs regulate myogenic differentiation and provide negative feedback on the microRNA pathway.

Guess MG, Barthel KK, Harrison BC, Leinwand LA.

PLoS One. 2015 Feb 17;10(2):e0118229. doi: 10.1371/journal.pone.0118229. eCollection 2015.

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