Technische Universität Berlin
The calcineurin inhibitor cyclosporine A activates the renal Na-(K)-Cl cotransporters via local and systemic mechanisms
Abstract
dc:description.abstractThe two calcineurin inhibitors (CNIs) cyclosporine A (CsA) and tacrolimus are potent immunosuppressive drugs that have become indispensable in the post-transplantational therapy and in the treatment of autoimmune diseases. Immunosuppression via CNIs is achieved by inhibition of the calcineurin phosphatase and thus blocking the signaling pathway of NFAT (nuclear factor of activated T cells), thereby inhibiting T cell immune response. However, chronic use of CNIs is complicated by serious side effects which particularly affect the kidney, reflected by a large number of patients who develop electrolyte disorders, hypertension and renal failure under CNI treatment. The mechanisms of CNI-induced salt retention and hypertension are complex, involving not only intraepithelial but also systemic effects. Since calcineurin inhibition is associated with activation of the renal Na+-K+-2Cl- cotransporter (NKCC2) and the Na+-Cl-cotransporter (NCC) that are expressed in the thick ascending limb (TAL) and the distal convoluted tubule (DCT) of the nephron, respectively, it has been suggested that the calcineurin phosphatase is involved in the regulation of the salt transporters. Interestingly, previous studies have demonstrated that CsA increases both NKCC2 and NCC activity, whereas tacrolimus merely stimulates NCC function. This study aimed to unravel the local and systemic mechanisms underlying calcineurin inhibition that lead to salt retention and hypertension. We found that key proteins involved in calcineurin inhibition and the activation of NKCC2 and NCC are ubiquitously expressed along TAL and DCT. These results indicate that the distinct effects of CsA and tacrolimus on the activation of the salt transporters do not arise from differential expression of these key proteins, so that systemic mechanims might play a role. Thus, we sought to differentiate between local and systemic effects of CsA treatment by applying short- and long-term treatment protocols in vivo and in vitro. We analyzed physiological changes induced by CsA treatment and studied the role of endocrine factors such as the hormone arginine vasopressin (AVP). We show that CsA-induced activation of NKCC2 and NCC and their activating kinases chiefy occurs via post-translational modifcation by phosphorylation/dephosphorylation reactions. We further found that CsA-induced activation of NKCC2, but not NCC, requires AVP signaling. In a pilot study on NCC knockout mice we show that CsA treatment, unlike tacrolimus, might induce high blood pressure regardless of NCC activity. These findings provide evidence for the major role of NKCC2 in CsA-induced hypertension. In summary, the results of this study demonstrate that CsA-induced activation of NKCC2 and NCC and their activating kinases chiefly occurs at the post-translational level via increased phosphorylation. In DCT cells, local calcineurin inhibition is sufficient to induce NCC activation, whereas NKCC2 activation appears to require additional stimulation by AVP. Our data further suggest a pivotal role of NKCC2 in CsA-induced hypertension. Altogether, this study contributes to a better understanding of CNI-induced salt retention and hypertension and can help improve blood pressure control.
Author and committee
dc:creator, dc:contributor.*- Author dc:creator
-
- Blankenstein, Katharina Ilse
- Advisors dc:contributor.advisor
-
- Bachmann, Sebastian
- Lauster, Roland
Rights
- Licence dc:rights.uri
- Language dc:language.iso
- en
Identifiers
dc:identifier.*- Identifier URI
- http://dx.doi.org/10.14279/depositonce-8697
- OAI identifier oai:identifier
- oai:depositonce.tu-berlin.de:11303/9651