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Circulation|February 9, 2000
Antihypertensive effect of 0.1-Hz blood pressure oscillations to the kidneyB Nafz, J Stegemann, M H Bestle, et al.Acta Physiologica (Oxford, England)|February 19, 2013
Functional characterization of isolated, perfused outermedullary descending human vasa rectaM M Sendeski, Z Z Liu, A Perlewitz, et al.Acta Physiologica (Oxford, England)|May 24, 2018
A dual role of miR-22 in rhabdomyolysis-induced acute kidney injuryS Mathia, L J Rudigier, M Kasim, et al.Journal of Molecular and Cellular Cardiology|August 5, 1998
Electrophysiological properties of mechanosensitive atrial fibroblasts from chronic infarcted rat heartI Kiseleva, A Kamkin, A Pylaev, et al.Acta Physiologica (Oxford, England)|January 23, 2013
Linking non-invasive parametric MRI with invasive physiological measurements (MR-PHYSIOL): towards a hybrid and integrated approach for investigation of acute kidney injury in ratsA Pohlmann, K Cantow, J Hentschel, et al.Acta Physiologica (Oxford, England)|October 1, 2016
Cyclosporin a induces renal episodic hypoxiaM Fähling, S Mathia, J Scheidl, et al.Kidney International|June 30, 2006
Contribution of adenosine receptors in the control of arteriolar tone and adenosine-angiotensin II interactionE Y Lai, A Patzak, A Steege, et al.Acta Physiologica (Oxford, England)|November 17, 2007
Adenosine increases calcium sensitivity via receptor-independent activation of the p38/MK2 pathway in mesenteric arteriesP Martinka, E Y Lai, M Fähling, et al.Circulation Research|October 14, 2006
Adenosine restores angiotensin II-induced contractions by receptor-independent enhancement of calcium sensitivity in renal arteriolesEn Yin Lai, Peter Martinka, Michael Fähling, et al.American Journal of Physiology. Renal Physiology|January 6, 2017
Myoglobin facilitates angiotensin II-induced constriction of renal afferent arteriolesZ Z Liu, S Mathia, T Pahlitzsch, et al.Pageof 9