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1.
Am J Physiol Renal Physiol ; 316(4): F646-F653, 2019 04 01.
Article in English | MEDLINE | ID: mdl-30649891

ABSTRACT

Zn2+ deficiency (ZnD) is a common comorbidity of many chronic diseases. In these settings, ZnD exacerbates hypertension. Whether ZnD alone is sufficient to alter blood pressure (BP) is unknown. To explore the role of Zn2+ in BP regulation, adult mice were fed a Zn2+-adequate (ZnA) or a Zn2+-deficient (ZnD) diet. A subset of ZnD mice were either returned to the ZnA diet or treated with hydrochlorothiazide (HCTZ), a Na+-Cl- cotransporter (NCC) inhibitor. To reduce intracellular Zn2+ in vitro, mouse distal convoluted tubule cells were cultured in N,N,N',N'-tetrakis(2-pyridylmethyl)ethylenediamine (TPEN, a Zn2+ chelator)- or vehicle (DMSO)-containing medium. To replete intracellular Zn2+, TPEN-exposed cells were then cultured in Zn2+-supplemented medium. ZnD promoted a biphasic BP response, characterized by episodes of high BP. BP increases were accompanied by reduced renal Na+ excretion and NCC upregulation. These effects were reversed in Zn2+-replete mice. Likewise, HCTZ stimulated natriuresis and reversed BP increases. In vitro, Zn2+ depletion increased NCC expression. Furthermore, TPEN promoted NCC surface localization and Na+ uptake activity. Zn2+ repletion reversed TPEN effects on NCC. These data indicate that 1) Zn2+ contributes to BP regulation via modulation of renal Na+ transport, 2) renal NCC mediates ZnD-induced hypertension, and 3) NCC is a Zn2+-regulated transporter that is upregulated with ZnD. This study links dysregulated renal Na+ handling to ZnD-induced hypertension. Furthermore, NCC is identified as a novel mechanism by which Zn2+ regulates BP. Understanding the mechanisms of ZnD-induced BP dysregulation may have an important therapeutic impact on hypertension.


Subject(s)
Hypertension/metabolism , Kidney/metabolism , Sodium/metabolism , Zinc/deficiency , Animals , Blood Pressure/drug effects , Cells, Cultured , Chelating Agents/pharmacology , Diet , Ethylenediamines/pharmacology , Hydrochlorothiazide/pharmacology , Hypertension/etiology , Kidney Tubules, Distal/drug effects , Kidney Tubules, Distal/metabolism , Mice , Mice, Inbred C57BL , Natriuresis/drug effects , Sodium Chloride Symporter Inhibitors/pharmacology
2.
Sci Rep ; 7(1): 4149, 2017 06 23.
Article in English | MEDLINE | ID: mdl-28646163

ABSTRACT

Distal sodium transport is a final step in the regulation of blood pressure. As such, understanding how the two main sodium transport proteins, the thiazide-sensitive sodium chloride cotransporter (NCC) and the epithelial sodium channel (ENaC), are regulated is paramount. Both are expressed in the late distal nephron; however, no evidence has suggested that these two sodium transport proteins interact. Recently, we established that these two sodium transport proteins functionally interact in the second part of the distal nephron (DCT2). Given their co-localization within the DCT2, we hypothesized that NCC and ENaC interactions might be modulated by aldosterone (Aldo). Aldo treatment increased NCC and αENaC colocalization (electron microscopy) and interaction (coimmunoprecipitation). Finally, with co-expression of the Aldo-induced protein serum- and glucocorticoid-inducible kinase 1 (SGK1), NCC and αENaC interactions were increased. These data demonstrate that Aldo promotes increased interaction of NCC and ENaC, within the DCT2 revealing a novel method of regulation for distal sodium reabsorption.


Subject(s)
Aldosterone/pharmacology , Epithelial Sodium Channels/metabolism , Solute Carrier Family 12, Member 3/metabolism , Animals , Cell Line , Epithelial Sodium Channels/ultrastructure , Kidney Cortex/metabolism , Kidney Cortex/ultrastructure , Mice , Protein Subunits/metabolism , Solute Carrier Family 12, Member 3/ultrastructure
3.
Biochem J ; 473(19): 3237-52, 2016 10 01.
Article in English | MEDLINE | ID: mdl-27422782

ABSTRACT

The thiazide-sensitive sodium chloride cotransporter (NCC) and the epithelial sodium channel (ENaC) are two of the most important determinants of salt balance and thus systemic blood pressure. Abnormalities in either result in profound changes in blood pressure. There is one segment of the nephron where these two sodium transporters are coexpressed, the second part of the distal convoluted tubule. This is a key part of the aldosterone-sensitive distal nephron, the final regulator of salt handling in the kidney. Aldosterone is the key hormonal regulator for both of these proteins. Despite these shared regulators and coexpression in a key nephron segment, associations between these proteins have not been investigated. After confirming apical localization of these proteins, we demonstrated the presence of functional transport proteins and native association by blue native PAGE. Extensive coimmunoprecipitation experiments demonstrated a consistent interaction of NCC with α- and γ-ENaC. Mammalian two-hybrid studies demonstrated direct binding of NCC to ENaC subunits. Fluorescence resonance energy transfer and immunogold EM studies confirmed that these transport proteins are within appropriate proximity for direct binding. Additionally, we demonstrate that there are functional consequences of this interaction, with inhibition of NCC affecting the function of ENaC. This novel finding of an association between ENaC and NCC could alter our understanding of salt transport in the distal tubule.


Subject(s)
Epithelial Sodium Channels/metabolism , Sodium Chloride Symporters/metabolism , Animals , Cell Line , Fluorescence Resonance Energy Transfer , Kidney Cortex/metabolism , Mice , Microscopy, Confocal , Protein Binding , Two-Hybrid System Techniques
4.
Am J Physiol Renal Physiol ; 308(7): F720-7, 2015 Apr 01.
Article in English | MEDLINE | ID: mdl-25651566

ABSTRACT

Angiotensin II (ANG II) increases thiazide-sensitive sodium-chloride cotransporter (NCC) activity both acutely and chronically. ANG II has been implicated as a switch that turns WNK4 from an inhibitor of NCC into an activator of NCC, and ANG II's effect on NCC appears to require WNK4. Chronically, ANG II stimulation of NCC results in an increase in total and phosphorylated NCC, but the role of NCC phosphorylation in acute ANG II actions is unclear. Here, using a mammalian cell model with robust native NCC activity, we corroborate the role that ANG II plays in WNK4 regulation and clarify the role of Ste20-related proline alanine-rich kinase (SPAK)-induced NCC phosphorylation in ANG II action. ANG II was noted to have a biphasic effect on NCC, with a peak increase in NCC activity in the physiologic range of 10(-11) M ANG II. This effect was apparent as early as 15 min and remained sustained through 120 min. These changes correlated with significant increases in NCC surface protein expression. Knockdown of WNK4 expression sharply attenuated the effect of ANG II. SPAK knockdown did not affect ANG II action at early time points (15 and 30 min), but it did attenuate the response at 60 min. Correspondingly, NCC phosphorylation did not increase at 15 or 30 min, but increased significantly at 60 min. We therefore conclude that within minutes of an increase in ANG II, NCC is rapidly trafficked to the cell surface in a phosphorylation-independent but WNK4-dependent manner. Then, after 60 min, ANG II induces SPAK-dependent phosphorylation of NCC.


Subject(s)
Angiotensin II/pharmacology , Signal Transduction/drug effects , Sodium Chloride Symporters/metabolism , Animals , Cell Line , Mice , Phosphorylation/drug effects , Signal Transduction/physiology , Time Factors
5.
Am J Physiol Renal Physiol ; 305(5): F645-52, 2013 Sep 01.
Article in English | MEDLINE | ID: mdl-23739593

ABSTRACT

Hypertension is a leading cause of morbidity and mortality worldwide, and disordered sodium balance has long been implicated in its pathogenesis. Aldosterone is perhaps the key regulator of sodium balance and thus blood pressure. The sodium chloride cotransporter (NCC) in the distal convoluted tubule of the kidney is a major site of sodium reabsorption and plays a key role in blood pressure regulation. Chronic exposure to aldosterone increases NCC protein expression and function. However, more acute effects of aldosterone on NCC are unknown. In our salt-abundant modern society where chronic salt deprivation is rare, understanding the acute effects of aldosterone is critical. Here, we examined the acute effects (12-36 h) of aldosterone on NCC in the rodent kidney and in a mouse distal convoluted tubule cell line. Studies demonstrated that aldosterone acutely stimulated NCC activity and phosphorylation without affecting total NCC abundance or surface expression. This effect was dependent upon the presence of the mineralocorticoid receptor and serum- and glucocorticoid-regulated kinase 1 (SGK1). Furthermore, STE20/SPS-1-related proline/alanine-rich kinase (SPAK) phosphorylation also increased, and gene silencing of SPAK eliminated the effect of aldosterone on NCC activity. Aldosterone administration via a minipump in adrenalectomized rodents confirmed an increase in NCC phosphorylation without a change in NCC total protein. These data indicate that acute aldosterone-induced SPAK-dependent phosphorylation of NCC increases individual transporter activity.


Subject(s)
Aldosterone/pharmacology , Protein Serine-Threonine Kinases/physiology , Sodium Chloride Symporters/physiology , Adrenalectomy , Animals , Cells, Cultured , Immediate-Early Proteins/drug effects , Immediate-Early Proteins/metabolism , Male , Mice , Phosphorylation/drug effects , Protein Serine-Threonine Kinases/drug effects , Protein Serine-Threonine Kinases/metabolism , Rats , Rats, Sprague-Dawley , Receptors, Mineralocorticoid/drug effects , Sodium Chloride Symporters/drug effects , Solute Carrier Family 12, Member 3/drug effects
6.
Am J Physiol Renal Physiol ; 303(5): F700-10, 2012 Sep.
Article in English | MEDLINE | ID: mdl-22718890

ABSTRACT

The Na(+)-Cl(-) cotransporter (NCC) in the distal convoluted tubule (DCT) of the kidney is a key determinant of Na(+) balance. Disturbances in NCC function are characterized by disordered volume and blood pressure regulation. However, many details concerning the mechanisms of NCC regulation remain controversial or undefined. This is partially due to the lack of a mammalian cell model of the DCT that is amenable to functional assessment of NCC activity. Previously reported investigations of NCC regulation in mammalian cells have either not attempted measurements of NCC function or have required perturbation of the critical without a lysine kinase (WNK)/STE20/SPS-1-related proline/alanine-rich kinase regulatory pathway before functional assessment. Here, we present a new mammalian model of the DCT, the mouse DCT15 (mDCT15) cell line. These cells display native NCC function as measured by thiazide-sensitive, Cl(-)-dependent (22)Na(+) uptake and allow for the separate assessment of NCC surface expression and activity. Knockdown by short interfering RNA confirmed that this function was dependent on NCC protein. Similar to the mammalian DCT, these cells express many of the known regulators of NCC and display significant baseline activity and dimerization of NCC. As described in previous models, NCC activity is inhibited by appropriate concentrations of thiazides, and phorbol esters strongly suppress function. Importantly, they display release of WNK4 inhibition of NCC by small hairpin RNA knockdown. We feel that this new model represents a critical tool for the study of NCC physiology. The work that can be accomplished in such a system represents a significant step forward toward unraveling the complex regulation of NCC.


Subject(s)
Kidney Tubules, Distal/physiology , Animals , Cell Line , Kidney Tubules, Distal/metabolism , Mice , Models, Animal , Protein Serine-Threonine Kinases/pharmacology , Protein Serine-Threonine Kinases/physiology , Sodium Chloride Symporters/metabolism , Thiazides
7.
Am J Physiol Cell Physiol ; 298(6): C1431-7, 2010 Jun.
Article in English | MEDLINE | ID: mdl-20457831

ABSTRACT

Of the three major protein variants produced by the UT-A gene (UT-A1, UT-A2, and UT-A3) UT-A1 is the largest. It contains UT-A3 as its NH(2)-terminal half and UT-A2 as its COOH-terminal half. When being part of UT-A1, UT-A3 and UT-A2 are joined by a segment, Lp, whose central part, Lc, is not part of UT-A3 or UT-A2 but is present only in UT-A1. Lc contains the phosphorylation sites S486 and S499 that are involved in protein kinase A-dependent activation, as well as the binding site for snapin, a protein involved in soluble N-ethylmaleimide-sensitive fusion protein attachment protein receptor (SNARE)-mediated vesicle trafficking and fusion to the plasma membrane. We attached Lc to UT-A2 and UT-A3 to test how these phosphorylation sites influenced their urea transport activity. Adding Lc to UT-A2 conferred stimulation by cAMP to the cAMP-unresponsive UT-A2, and adding Lc to UT-A3 did not further enhance its already existing cAMP response. These findings suggest that the responsiveness to vasopressin that is observed with UT-A1 can be introduced into the unresponsive UT-A2 variant through the Lc segment that is unique to UT-A1. In UT-A3, however, the Lc segment plays no significant role in its activation by cAMP. In addition, the Lc segment also gave UT-A2 the ability to bind snapin and, in Xenopus oocytes, to be stimulated in its urea transport activity by snapin and syntaxins 3 and 4, in the same way as UT-A1.


Subject(s)
Cell Membrane/metabolism , Cyclic AMP/metabolism , Membrane Transport Proteins/metabolism , Urea/metabolism , Vesicular Transport Proteins/metabolism , Animals , Binding Sites , Cell Line , Cyclic AMP-Dependent Protein Kinases/metabolism , Female , Kinetics , Membrane Transport Proteins/genetics , Mice , Mutation , Oocytes , Phosphorylation , Protein Conformation , Protein Structure, Tertiary , Rats , Recombinant Fusion Proteins/metabolism , SNARE Proteins/metabolism , Structure-Activity Relationship , Transfection , Vasopressins/metabolism , Vesicular Transport Proteins/genetics , Xenopus laevis , Urea Transporters
8.
Am J Physiol Renal Physiol ; 297(2): F292-300, 2009 Aug.
Article in English | MEDLINE | ID: mdl-19515809

ABSTRACT

Proper targeting of the aquaporin-2 (AQP2) water channel to the collecting duct apical plasma membrane is critical for the urine concentrating mechanism and body water homeostasis. However, the trafficking mechanisms that recruit AQP2 to the plasma membrane are still unclear. Snapin is emerging as an important mediator in the initial interaction of trafficked proteins with target soluble N-ethylmaleimide-sensitive factor attachment protein (SNAP) receptor (t-SNARE) proteins, and this interaction is functionally important for AQP2 regulation. We show that in AQP2-Madin-Darby canine kidney cells subjected to adenoviral-mediated expression of both snapin and syntaxins, the association of AQP2 with both syntaxin-3 and syntaxin-4 is highly enhanced by the presence of snapin. In pull-down studies, snapin detected AQP2, syntaxin-3, syntaxin-4, and SNAP23 from the inner medullary collecting duct. AQP2 transport activity, as probed by AQP2's urea permeability, was greatly enhanced in oocytes that were coinjected with cRNAs of SNARE components (snapin+syntaxin-3+SNAP23) over those injected with AQP2 cRNA alone. It was not enhanced when syntaxin-3 was replaced by syntaxin-4 (snapin+syntaxin-4+SNAP23). On the other hand, the latter combination significantly enhanced the transport activity of the related AQP3 water channel while the presence of syntaxin-3 did not. This AQP-syntaxin interaction agrees with the polarity of these proteins' expression in the inner medullary collecting duct epithelium. Thus our findings suggest a selectivity of interactions between different aquaporin and syntaxin isoforms, and thus in the regulation of AQP2 and AQP3 activities in the plasma membrane. Snapin plays an important role as a linker between the water channel and the t-SNARE complex, leading to the fusion event, and the pairing with specific t-SNAREs is essential for the specificity of membrane recognition and fusion.


Subject(s)
Aquaporin 2/metabolism , Aquaporin 3/metabolism , Cell Membrane/metabolism , Kidney Tubules, Collecting/metabolism , Qa-SNARE Proteins/metabolism , Water-Electrolyte Balance , Animals , Aquaporin 2/genetics , Aquaporin 3/genetics , Biological Transport , Cell Line , Cell Membrane Permeability , Cyclic AMP/metabolism , Cyclic AMP-Dependent Protein Kinases/metabolism , Dogs , Female , Humans , Kinetics , Male , Membrane Transport Proteins/metabolism , Mutation , Oocytes , Protein Binding , Protein Transport , Qa-SNARE Proteins/genetics , Rats , Rats, Sprague-Dawley , Recombinant Fusion Proteins/metabolism , Transfection , Urea/metabolism , Vesicle-Associated Membrane Protein 2/metabolism , Vesicular Transport Proteins/metabolism , Xenopus laevis
9.
J Biol Chem ; 282(41): 30097-106, 2007 Oct 12.
Article in English | MEDLINE | ID: mdl-17702749

ABSTRACT

The UT-A1 urea transporter mediates rapid transepithelial urea transport across the inner medullary collecting duct and plays a major role in the urinary concentrating mechanism. To transport urea, UT-A1 must be present in the plasma membrane. The purpose of this study was to screen for UT-A1-interacting proteins and to study the interactions of one of the identified potential binding partners with UT-A1. Using a yeast two-hybrid screen of a human kidney cDNA library with the UT-A1 intracellular loop (residues 409-594) as bait, we identified snapin, a ubiquitously expressed SNARE-associated protein, as a novel UT-A1 binding partner. Deletion analysis indicated that the C-terminal coiled-coil domain (H2) of snapin is required for UT-A1 interaction. Snapin binds to the intracellular loop of UT-A1 but not to the N- or C-terminal fragments. Glutathione S-transferase pulldown experiments and co-immunoprecipitation studies verified that snapin interacts with native UT-A1, SNAP23, and syntaxin-4 (t-SNARE partners), indicating that UT-A1 participates with the SNARE machinery in rat kidney inner medulla. Confocal microscopic analysis of immunofluorescent UT-A1 and snapin showed co-localization in both the cytoplasm and in the plasma membrane. When we co-injected UT-A1 with snapin cRNA in Xenopus oocytes, urea influx was significantly increased. In the absence of snapin, the influx was decreased when UT-A1 was combined with t-SNARE components syntaxin-4 and SNAP23. We conclude that UT-A1 may be linked to the SNARE machinery via snapin and that this interaction may be functionally and physiologically important for urea transport.


Subject(s)
Vesicular Transport Proteins/physiology , Animals , Biological Transport , Cell Membrane/metabolism , DNA, Complementary/metabolism , Dogs , Gene Library , Humans , Kidney/metabolism , Models, Biological , Oocytes/metabolism , Protein Structure, Tertiary , Rats , Two-Hybrid System Techniques , Vesicular Transport Proteins/chemistry , Xenopus/metabolism
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