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George K, Thomas NS, Malathi R. 4,4'-Diisothiocyanatostilbene-2,2'-disulfonate modulates voltage-gated K + current and influences cell cycle arrest in androgen sensitive and insensitive human prostate cancer cell lines. Toxicol Mech Methods 2020; 30:358-369. [PMID: 32193973 DOI: 10.1080/15376516.2020.1745343] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/17/2023]
Abstract
The stilbene derivative, 4,4'-diisothiocyanatostilbene-2,2'-disulphonic acid (DIDS), an anion channel blocker is used in the present study to evaluate its modulatory effect on voltage-gated K+ current (IK) in human prostate cancer cell lines (LNCaP and PC-3). Voltage-gated K+ (KV) channels in the plasma membrane are critically involved in the proliferation of tumor cells. Therefore, KV channels are considered as a novel potential target for cancer treatment. The results of the present study show that the external perfusion of DIDS activates IK in a concentration-dependent manner, although the known K+ channel blocker TEA failed to block the DIDS activated IK in PC-3 cells. Whereas, in LNCaP cells, the higher concentration of DIDS blocked IK, though this effect was not completely recovered after washout. The difference in function of DIDS might be due to the expression of different Kv channel isoforms in LNCaP and PC-3 cells. Further, the anticancer studies show that treatment of DIDS significantly induced G2/M phase cell cycle arrest and induced moderate and low level of cell death in LNCaP and PC-3 cells respectively. This finding reveals that DIDS modulates IK and exerts cell cycle arrest and cell death in LNCaP and PC-3 cells.
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Affiliation(s)
- Kiran George
- Department of Biomedical Engineering, Chennai Institute of Technology, Chennai, India.,Bio Engineering Lab, Department of Electronics and Instrumentation Engineering, Annamalai University, Annamalai Nagar, India
| | - Nisha Susan Thomas
- Department of Biochemistry and Biotechnology, Annamalai University, Annamalai Nagar, India
| | - Raman Malathi
- Bio Engineering Lab, Department of Electronics and Instrumentation Engineering, Annamalai University, Annamalai Nagar, India
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Moussavian MR, Kollmar O, Schmidt M, Scheuer C, Wagner M, Slotta JE, Gronow G, Justinger C, Menger MD, Schilling MK. Amiodarone pretreatment of organ donors exerts anti-oxidative protection but induces excretory dysfunction in liver preservation and reperfusion. Liver Transpl 2009; 15:763-75. [PMID: 19562710 DOI: 10.1002/lt.21757] [Citation(s) in RCA: 8] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Indexed: 02/07/2023]
Abstract
The continuous shortage of organs necessitates the use of marginal organs from donors with various diseases, including arrhythmia-associated cardiac failure. One of the most frequently used anti-arrhythmic drugs is amiodarone (AM), which is given in particular in emergency situations. Apart from its anti-arrhythmic actions, AM provides anti-oxidative properties in cardiomyocytes. Thus, we were interested in whether AM donor pretreatment affects the organ quality and function of livers procured for preservation and transplantation. Donor rats were pretreated with AM (5 mg/kg of body weight) 10 minutes before flush-out of the liver with a cold (4 degrees C) histidine-tryptophan-ketoglutarate solution (n = 8). Livers were then stored for 24 hours at 4 degrees C before ex situ reperfusion with a 37 degrees C Krebs-Henseleit solution for 60 minutes in a nonrecirculating system. At the end of reperfusion, tissue samples were taken for histology and Western blot analysis. Animals with vehicle only (0.9% NaCl) served as ischemia/reperfusion controls (n = 8). Additionally, livers of untreated animals (n = 8) not subjected to 24 hours of cold ischemia served as sham controls. AM pretreatment effectively attenuated lipid peroxidation, stress protein expression, and apoptotic cell death. This was indicated by an AM-mediated reduction of malondialdehyde, heme oxygenase-1, and caspase-3 activation. However, AM treatment also induced mitochondrial damage and hepatocellular excretory dysfunction, as indicated by a significantly increased glutamate dehydrogenase concentration in the effluate and decreased bile production. In conclusion, AM donor pretreatment exerts anti-oxidative actions in liver preservation and reperfusion. However, these protective AM actions are counteracted by an induction of mitochondrial damage and hepatocellular dysfunction. Accordingly, AM pretreatment of donors for anti-arrhythmic therapy should be performed with caution.
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Yao H, Felfly H, Wang J, Zhou D, Haddad GG. DIDS protects against neuronal injury by blocking Toll-like receptor 2 activated-mechanisms. J Neurochem 2008; 108:835-46. [PMID: 19077053 DOI: 10.1111/j.1471-4159.2008.05838.x] [Citation(s) in RCA: 16] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/22/2023]
Abstract
Using an in vitro ischemia model (ischemic solution; IS model) that induces penumbral cell death, we examined the effect of 4,4'-diisothio-cyanostilbene-2,2'-disulfonic acid (DIDS) on cell injury/death and underlying molecular mechanisms. Propidium iodide (PI) uptake was used to quantify cell death in organotypic hippocampal slice cultures. A 24-h IS exposure caused a fivefold increase in mean PI fluorescence intensity. DIDS, dose-dependently (1-4000 microM), reduced the IS-induced PI uptake in hippocampal CA1 neurons with an IC(50) of 26 microM. This protective effect of DIDS was reversible and effective even 6 h following the onset of IS treatment. Gene expression profiling studies indicated that among approximately 46,000 transcripts tested, the most significantly up-regulated gene by IS was interleukin-1beta (IL-1beta) which was also the most significantly down-regulated gene when DIDS was added to the IS-treated slices. The addition of a recombinant IL-1 receptor antagonist (100 microg/mL) or neutralizing IL-1beta antibody significantly attenuated the IS-induced cell death, indicating that the up-regulation of IL-1beta with IS treatment contributed to the IS-induced cell death. Toll-like receptor 2 (TLR2), another gene that was significantly up-regulated by IS and suppressed by DIDS, was studied to determine whether it was related to the IL-1beta up-regulation. Indeed, this was the case as the IS-induced IL-1beta up-regulation was abolished in TLR2-/- mouse brain slices. Furthermore, the IS-induced cell death was significantly reduced in TLR2-/- when compared with that in wild-type slices, indicating that TLR2 is functionally upstream of IL-1beta in this IS model. We conclude that (i) IS up-regulates TLR2 expression and augments TLR2 signaling, causing over-expression of IL-1beta which leads to cell death and (ii) DIDS blocks IS-induced neuronal injury, at least partially, by suppressing the TLR2 pathway.
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Affiliation(s)
- Hang Yao
- Department of Pediatrics (Section of Respiratory Medicine), University of California San Diego, La Jolla, California 92093-0735, USA
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Chernova MN, Vandorpe DH, Clark JS, Williams JI, Zasloff MA, Jiang L, Alper SL. Apparent receptor-mediated activation of Ca2+-dependent conductive Cl−transport by shark-derived polyaminosterols. Am J Physiol Regul Integr Comp Physiol 2005; 289:R1644-58. [PMID: 16109810 DOI: 10.1152/ajpregu.00098.2005] [Citation(s) in RCA: 6] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/22/2022]
Abstract
The shark liver antimicrobial polyaminosterol squalamine is an angiogenesis inhibitor under clinical investigation as an anti-cancer agent and as a treatment for the choroidal neovascularization associated with macular degeneration of the retina. The related polyaminosterol MSI-1436 is an appetite suppressant that decreases systemic insulin resistance. However, the mechanisms of action of these polyaminosterols are unknown. We report effects of MSI-1436 on Xenopus oocytes consistent with the existence of a receptor for polyaminosterols. MSI-1436 activates bidirectional, trans-chloride-independent Cl-flux in Xenopus oocytes. At least part of this DIDS-sensitive Cl−flux is conductive, as measured using two-electrode voltage-clamp and on-cell patch-clamp techniques. MSI-1436 also elevates cytosolic Ca2+concentration ([Ca2+]) and increases bidirectional45Ca2+flux. Activation of Cl−flux and elevation of cytosolic [Ca2+] by MSI-1436 both are accelerated by lowering bath Ca2+and are not acutely inhibited by extracellular EGTA. Elevation of cytosolic [Ca2+] by MSI-1436 requires heparin-sensitive intracellular Ca2+stores. Although injected EGTA abolishes the increased conductive Cl−flux, that Cl−flux is not dependent on heparin-sensitive stores. In low-bath Ca2+conditions, several structurally related polyaminosterols act as strong agonists or weak agonists of conductive Cl−flux in oocytes. Weak agonist polyaminosterols antagonize the strong agonist, MSI-1436, but upon addition of the conductive Cl−transport inhibitor DIDS, they are converted into strong agonists. Together, these properties operationally define a polyaminosterol receptor at or near the surface of the Xenopus oocyte, provide an initial description of receptor signaling, and suggest routes toward further understanding of a novel class of appetite suppressants and angiogenesis inhibitors.
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Affiliation(s)
- Marina N Chernova
- Molecular and Vascular Medicine Unit, Beth Israel Deaconess Medical Center, Department of Medicine, Harvard Medical School, Boston, MA 02215, USA
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Lan WZ, Abbas H, Lemay AM, Briggs MM, Hill CE. Electrophysiological and molecular identification of hepatocellular volume-activated K+ channels. BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES 2005; 1668:223-33. [PMID: 15737333 DOI: 10.1016/j.bbamem.2004.12.010] [Citation(s) in RCA: 16] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 09/23/2004] [Revised: 11/26/2004] [Accepted: 12/17/2004] [Indexed: 11/30/2022]
Abstract
Although K+ channels are essential for hepatocellular function, it is not known which channels are involved in the regulatory volume decrease (RVD) in these cells. We have used a combination of electrophysiological and molecular approaches to describe the potential candidates for these channels. The dialysis of short-term cultured rat hepatocytes with a hypotonic solution containing high K+ and low Cl- concentration caused the slow activation of an outward, time-independent current under whole-cell configuration of the patch electrode voltage clamp. The reversal potential of this current suggested that K+ was the primary charge carrier. The swelling-induced K+ current (IKvol) occurred in the absence of Ca2+ and was inhibited with 1 microM Ca2+ in the pipette solution. The activation of IKvol required both Mg2+ and ATP and an increasing concentration of Mg-ATP from 0.25 through 0.5 to 0.9 mM activated IKvol increasingly faster and to a larger extent. The KCNQ1 inhibitor chromanol 293B reversibly depressed IKvol with an IC50 of 26 microM. RT-PCR detected the expression of members of the KCNQ family from KCNQ1 to KCNQ5 and of the accessory proteins KCNE1 to KCNE3 in the rat hepatocytes, but not KCNQ2 and KCNE2 in human liver. Western blotting showed KCNE3 expression in a plasma membrane-enriched fraction from rat hepatocytes. The results suggest that KCNQ1, probably with KCNE2 or KCNE3 as its accessory unit, provides a significant fraction of IKvol in rat hepatocytes.
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Affiliation(s)
- W-Z Lan
- GI Diseases Research Unit, Hotel Dieu Hospital and Queen's University, Kingston, Ontario, Canada K7L 5G2
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Lan WZ, Abbas H, Lam HD, Lemay AM, Hill CE. Contribution of a time-dependent and hyperpolarization-activated chloride conductance to currents of resting and hypotonically shocked rat hepatocytes. Am J Physiol Gastrointest Liver Physiol 2005; 288:G221-9. [PMID: 15358597 DOI: 10.1152/ajpgi.00226.2004] [Citation(s) in RCA: 16] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Indexed: 01/31/2023]
Abstract
Hepatocellular Cl- flux is integral to maintaining cell volume and electroneutrality in the face of the many transport and metabolic activities that describe the multifaceted functions of these cells. Although a significant volume-regulated Cl- current (VRAC) has been well described in hepatocytes, the Cl- channels underlying the large resting anion conductance have not been identified. We used a combination of electrophysiological and molecular approaches to describe potential candidates for this conductance. Anion currents in rat hepatocytes and WIF-B and HEK293T cells were measured under patch electrode-voltage clamp. With K+-free salts of Cl- comprising the major ions externally and internally, hyperpolarizing steps between -40 and -140 mV activated a time-dependent inward current in hepatocytes. Steady-state activation was half-maximal at -63 mV and 28-38% of maximum at -30 to -45 mV, previously reported hepatocellular resting potentials. Gating was dependent on cytosolic Cl-, shifting close to 58 mV/10-fold change in Cl- concentration. Time-dependent inward Cl- currents and a ClC-2-specific RT-PCR product were also observed in WIF-B cells but not HEK293T cells. All cell types exhibited typical VRAC in response to dialysis with hypertonic solutions. DIDS (0.1 mM) inhibited the hepatocellular VRAC but not the inward time-dependent current. Antibodies against the COOH terminus of ClC-2 reacted with a protein between 90 and 100 kDa in liver plasma membranes. The results demonstrate that rat hepatocytes express a time-dependent inward Cl- channel that could provide a significant depolarizing influence in the hepatocyte.
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Affiliation(s)
- Wen-Zhi Lan
- Gastrointestinal Diseases Research Unit, Hotel Dieu Hospital, Queen's University, Kingston, Ontario, Canada
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Li Q, Briggs MM, Folkens D, Hill CE. Models of depressed hepatic mrp2 activity reveal bromosulphophthalein-sensitive passive K+ flux. Can J Physiol Pharmacol 2002; 80:1167-72. [PMID: 12564642 DOI: 10.1139/y02-151] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.1] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/22/2022]
Abstract
Bile acid independent flow composes up to 40% of hepatic bile secretory capacity. Apical (canalicular) efflux of non-bile-acid organic anions provides the major osmotic driving force for bile acid independent flow. Organic anion accumulation in the hepatocyte is accompanied by increases in both K+ conductance in isolated hepatocytes and passive K+ flux in the perfused rat liver, which are indicative of K+ channel activation. We used two models of disrupted canalicular anion transport to test whether organic anion stimulated K+ efflux occurs independently of anion excretion. In both wild type (wt) and mrp2 mutant (transport minus, tr-) rat liver, bromosulfophthalein (BSP; 0.5 mM) caused a reversible increase in K+ flux that (i) was outwardly directed with low external K+ and (ii) depended upon the electrochemical potential for K+. K+ efflux from wt livers of both sexes was about 1.5 times larger than that from tr- livers. Further, K+ release from female rat livers was about three times higher than that from male livers, independent of phenotype. Two transcripts of the rat hepatocyte K+ channel (Kir4.2) were expressed in hepatocytes of all rats. The results demonstrate that BSP stimulates basolateral (sinusoidal) K+ channels independently of its canalicular excretion, revealing an early event in BAIF and suggesting that Kir4.2 may mediate BSP-sensitive K+ flux.
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Affiliation(s)
- Qin Li
- Gastrointestinal Diseases Research Unit and Department of Physiology, Queen's University, Kingston, ON K7L 3N6, Canada
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Hill CE, Briggs MM, Liu J, Magtanong L. Cloning, expression, and localization of a rat hepatocyte inwardly rectifying potassium channel. Am J Physiol Gastrointest Liver Physiol 2002; 282:G233-40. [PMID: 11804844 DOI: 10.1152/ajpgi.00256.2001] [Citation(s) in RCA: 14] [Impact Index Per Article: 0.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Indexed: 01/31/2023]
Abstract
Bile formation involves anion accumulation within the apical lumen of hepatocytes. Potassium flux through hepatocellular basolateral membrane channels may provide the counterion for apical anion efflux. Here we cloned a molecular candidate for maintaining charge balance during bile secretion. Two transcripts resembling the Kir4.2 subclass of inwardly rectifying potassium channels were found. The longer deduced isoform (4.2a) has 30 additional NH(3)-terminal amino acids, which identifies this as a new isoform. The short-form isoform shared 86-91% identity with the mouse, human, and guinea pig channels. Whole cell currents of either rat isoform expressed in HEK293T cells demonstrated time independence and inward rectification. Antibodies against a COOH-terminal fragment recognized bands between 40 and 45 kDa and at 90 kDa and recognized a high molecular mass band around 200 kDa in overexpressing HEK cells. Immunohistology of liver tissue shows hepatocellular plasma membrane localization. In hepatocyte couplets, Kir4.2 was predominantly localized to the basolateral membrane. Results demonstrate expression of a new Kir4.2 isoform in the rat hepatocyte whose functional properties are compatible with a role in maintaining electrical integrity of bile-generating hepatocytes.
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Affiliation(s)
- Ceredwyn E Hill
- Gastrointestinal Diseases Research Unit and Department of Physiology, Queen's University, Kingston, Ontario K7L 5G2, Canada.
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