|
|
||||||||
| ||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||
Department of Pharmacology, School of Medicine, University of California, Davis, California, USA
2Correspondence: Department of Pharmacology, School of Medicine, 3502 GBSF, 451 W. Health Sciences Dr., University of California, One Shields Ave., Davis, CA 95616-8635, USA. E-mail: jtrimmer{at}ucdavis.edu
| ABSTRACT |
|---|
|
|
|---|
subunits contain a dominant endoplasmic reticulum (ER) retention signal in their pore region, preventing surface expression of Kv1.1 homotetrameric channels and of heteromeric Kv1 channels containing more than one Kv1.1 subunit. The critical amino acid residues within this ER pore-region retention signal are also critical for high-affinity binding of snake dendrotoxins (DTX). This suggests that ER retention may be mediated by an ER protein with a domain structurally similar to that of DTX. One facet of such a model is that expression of soluble DTX in the ER lumen should compete for binding to the retention protein and allow for surface expression of retained Kv1.1. Here, we show that luminal DTX expression dramatically increased both the level of cell surface Kv1.1 immunofluorescence staining and the proportion of Kv1.1 with processed N-linked oligosaccharides. Electrophysiological analyses showed that luminal DTX expression led to significant increases in Kv1.1 currents. Together, these data showed that luminal DTX expression increases surface expression of functional Kv1.1 homotetrameric channels and support a model whereby a DTX-like ER protein regulates abundance of cell surface Kv1 channels.Vacher, H., Mohapatra, D. P., Misonou, H., Trimmer, J. S. Regulation of Kv1 channel trafficking by the mamba snake neurotoxin dendrotoxin K.
Key Words: potassium channel neuron endoplasmic reticulum
| INTRODUCTION |
|---|
|
|
|---|
subunits and up to four cytoplasmic auxiliary Kvß subunits (5
subunits and Kvß subunits can assemble promiscuously into homo-and hetero-meric complexes (5
and three Kvß subunits expressed in mammalian brain exhibit distinct biophysical and pharmacological characteristics, generating a large diversity of Kv channels (8
subunits (10
A number of mechanisms exist to shape the
subunit composition of plasma membrane Kv1 channels. The primary determinant is a potent ER retention signal comprising residues in the ER luminal/extracellular domain of Kv1
subunits, specifically in the extended turret adjacent to the external opening of the channel pore (13
, 14)
. This signal contains four critical amino acid residues within the turret/pore region, which for strongly retained Kv1.1 are A352, E353, S369, and Y379 (13
, 15
, 16)
. Three of these residues (A352, E353, and Y379) also determine high-affinity binding of the mamba snake neurotoxin dendrotoxin (DTX); (17
18
19)
. Moreover, Kv1 family members that bind DTX (Kv1.1, Kv1.2, and Kv1.6) exhibit a strong degree of ER retention relative to those that do not (Kv1.3, Kv1.4, and Kv1.5; (8
, 13
, 20
, 21)
. Together, these observations suggested that the relative efficiency of ER export among Kv1 channels of different subunit composition may be mediated by a resident ER protein that binds to the turret domain of Kv1.1 in a fashion similar to DTX binding (13)
. One tenet of this model is that expression of soluble DTX in the ER lumen should compete for binding with the putative ER protein involved in retention of Kv1 channels with particular subunit composition and allow for their cell surface expression. Here, we directly test this model by determining effects of luminal DTX coexpression on expression and function of Kv1.1 channels.
| MATERIALS AND METHODS |
|---|
|
|
|---|
subunits, anti-Kv4.2 (K57/1), and anti-Kv1.1 (K36/15) have also been described previously (21
Construction of DTXk in a mammalian expression vector; generation of DTXk and Kv1.1 mutants
DTXk cloned into expression vector pMAL-p2x was generously provided by Dr. Leonard A. Smith (25
26
27)
. After constructing a Sfi I restriction enzyme site at the 3' end of DTXk, DTXk was cleaved by restriction endonucleases Sfi I and HindIII, gel purified and ligated into the mammalian expression vector pSecTAG2C following the Ig kappa chain leader sequence (Invitrogen, Carlsbad, CA, USA). DTXk and Kv1.1 point mutants were generated by Quick Change (Stratagene, La Jolla, CA, USA) polymerase chain reaction (PCR) mutagenesis using oligonucleotide primers, as described previously (13
, 25)
.
Immunofluorescence analysis of transfected COS-1, HEK 293, and astrocyte cells
COS-1 cells were grown in Dulbeccos modified Eagles medium (DMEM) (Invitrogen) supplemented with 10% newborn calf serum (Hyclone Laboratories, Logan, UT, USA), 50 U/mL penicillin, 50 µg/mL streptomycin (both from Invitrogen). HEK 293 cells were grown in DMEM supplemented with 10% FBS (Hyclone Laboratories, Logan, UT, USA), 50 U/mL penicillin, 50 µg/mL streptomycin and GlutaMAX (Invitrogen). Astrocytes were prepared from cortices of newborn rat pups (P1 or P2), as described (28)
. Dissected cortical hemispheres were briefly incubated with 0.25% trypsin in Dulbeccos PBS (DPBS) without Ca2+ and Mg2+ for 20 min at 37°C. DNase I (Worthington Biochemical Corp., Lakewood, NJ, USA) was added to a final concentration of 50 µg/mL. Cells were resuspended in 10 mL of MEM containing 10% (v/v) donor horse serum, 0.6% (w/v) glucose (Glc), and 1 µg/mL penicillin and streptomycin, then plated. All cells were maintained in plastic tissue culture dishes or on poly-L-lysine-coated glass coverslips in plastic petri dishes in a humidified incubator at 37°C under 5% CO2. Cells were transfected with mammalian expression vectors for various rat Kv channel
subunit polypeptides by LipofectAMINE 2000 (Invitrogen) using the manufacturers protocol. All transfections were normalized with the same amount of cDNAs per dishes. Cells were seeded at 40% confluence (for biochemical analysis) or 5% confluence (for immunofluorescence).
Cells were stained 48 h post-transfection using a surface immunofluorescence protocol (8)
, applying ectodomain-directed K36/15 mouse mAb prior to detergent permeabilization to detect cell surface Kv1.1. Total cellular Kv1.1 was detected by cytoplasmic directed mAb K20/78 following detergent permeabilization. Bound primary antibodies were detected using Alexa-conjugated goat anti-mouse isotype-specific secondary antibodies. Cells were viewed under indirect immunofluorescence on a Zeiss Axioskop 2 microscope. Surface vs. total staining was scored under narrow-wavelength fluorescein and Texas Red filter sets. One hundred randomly chosen transfected cells per coverslip were scored by eye for relative levels of green fluorescence signal arising from staining of cell surface Kv1.1 vs. the level of red fluorescence signal arising from staining of total cellular Kv1.1. Values represent the mean ± SD of cells judged to be positive for surface staining as determined from three independent coverslips per treatment. P values <0.05 were considered statistically significant.
SDS-PAGE and immunoblotting and immunoprecipitation
Analyses of COS-1 cell lysates prepared from transfected cells were performed as described (8)
. In brief, transfected COS-1 cells were rinsed and then harvested in ice-cold PBS. Cells were centrifuged for 5 min, 1000 g, 4°C. The cell pellet was lysed on a tube rotator for 10 min at 4°C in 1 mL of lysis buffer solution containing 10 mM Tris pH 8.00, 150 mM NaCl, 1% Triton X-100, 5 mM EDTA and a protease inhibitor mixture (2 µg/mL aprotinin, 2 µg/mL antipain, 1 µg/mL leupeptin, 10 µg/mL benzamidine, and 0.2 mM phenylmethylsulfonyl fluoride). Crude lysates were centrifuged at 4°C for 10 min at 14,000 g to pellet nuclei and debris. An equal volume of reducing SDS sample buffer (2x) was added to this cleared lysate (8)
. Samples were boiled and fractioned on SDS/9% polyacrylamide gels. Gel electrophoresis and immunoblotting have been described (8)
. Blots were incubated with horseradish peroxidase (HRP)-conjugated secondary antibodies (ICN), followed by enhanced chemiluminescence (ECL) reagent (Perkin Elmer, Wellesley, MA). Immunoreactive bands were visualized by exposing blots to X-ray film. For immunoprecipitation reactions, 300 µL of detergent lysate was diluted to 1 mL in ice-cold lysis buffer. mAb (2.5 µg) was added, and the mixture was incubated in a tube rotator at 4°C for 2 h. Antibody (Ab)-antigen complexes were immobilized by absorption onto 15 µL of settled protein G-Sepharose (Amersham) by incubation on a tube rotator for 1 h at 4°C. Protein G beads were washed 5 times in lysis buffer and resuspended in reducing SDS sample buffer and analyzed on 9% (for Kv1.1) or 18% (for DTXk) SDS-polyacrylamide gels.
Enzymatic digestion
Transfected cell-cleared lysates were digested with neuraminidase (Roche) from Clostridium perfringens (0.25 U/mL in sodium acetate, pH 5.0) overnight at 37°C. Digested products were analyzed by immunoblot. For Proteinase K digestion (Sigma), transfected cells were washed three times with ice-cold PBS. Each 35-mm dish was incubated with 10 mM HEPES/150 mM NaCl/2 mM CaCl2 (pH 7.4) with or without 200 µg/mL proteinase K (8)
at 37°C for 30 min. Cells then were harvested and centrifuged at 4°C at 1,000 g in a refrigerated microcentrifuge; Proteinase K digestion was quenched by adding ice-cold PBS containing 6 mM phenylmethylsulfonyl fluoride and 25 mM EDTA. This treatment was followed by three washes in ice-cold PBS. Cleared lysates were prepared and analyzed by immunoblotting, as described above.
Electrophysiological recording
Outward potassium currents were recorded from COS-1 and HEK293 cells transiently coexpressing recombinant wild-type (WT) rat Kv1.1
subunits with empty pSecTag2C plasmid or with DTXk using whole-cell voltage-clamp technique. All experiments were performed at room temperature. Patch pipettes were pulled from borosilicate glass tubing (TW150F; World Precision Instruments Inc., Sarasota, FL) to give a resistance of 13 m
when filled with pipette solution. Currents were recorded with an EPC-10 patch-clamp amplifier (HEKA Electronik, Lambrecht, Germany), sampled at 10 kHz, and filtered at 2 kHz using a digital Bessel filter. All currents were capacitance- and series-resistance compensated, and leak-subtracted by standard P/n procedure. Current recordings were done with continuous superfusion of extracellular buffer, which contained (in mM) 140 NaCl, 5 KCl, 2 CaCl2, 2 MgCl2, 10 Glc, and 10 HEPES, pH 7.3. Pipette solution contained (in mM) 140 KCl, 2 MgCl2, 1 CaCl2, 5 EGTA, 10 Glc and 10 HEPES, pH 7.3. For steady-state activation experiments, cells were held at 100 mV and step depolarized to + 80 mV for 200 ms with depolarizing 10-mV increments. For steady-state inactivation experiments, cells were held at 100 mV and step depolarized to + 40 mV (test pulse) for 10 s with 10-mV increments (conditioning steady pulse) followed by a test pulse at +10 mV. The interpulse interval was 10 s. Current density was determined by dividing peak current amplitude at each test potential by cell capacitance and was plotted against respective test potentials. Conductance-voltage (G-V) and voltage-dependent steady-state inactivation (I-V) relationships were determined as described (29)
.
PULSE software (HEKA Electronik) was used for acquisition and analysis of currents. IGOR Pro 4 (WaveMetrix, Inc., Lake Oswego, OR, USA), and Origin 7 software (OriginLab Corporation, Northampton, MA, USA) were used to perform least squares fitting and to create figures. Data are presented as mean ± SEM or fitted value ± SE of the fit. Paired or unpaired Students t-tests (OriginLab) were used to evaluate significance of changes in mean values. P values <0.05 were considered statistically significant.
| RESULTS |
|---|
|
|
|---|
subunit cDNA in the presence of either DTXk-myc or DTXk. Control cells were cotransfected with Kv1.1 and either empty pSecTag2C plasmid, or an expression plasmid encoding Kv1.4, whose coexpression enhances surface expression of coassembled Kv1.1 (8)
|
DTXk is a selective blocker of Kv1.1-containing channels and does not bind to other Kv channels (27)
. To determine whether DTXk effects on Kv1 channel surface expression were limited to its Kv1.1 target, we assayed effects of DTXk coexpression on ER-localized but DTXk-insensitive Kv1.2 (Fig. 1E
) and Kv4.2 (Fig. 1F
). In both cases, DTXk did not promote surface expression of homomeric channels formed from these subunits: Kv1.2 with pSecTag2C 19.2 ± 1.3% vs. 18.4 ± 0.9% with DTXk (Fig. 1E
), and Kv4.2 with pSecTag2C 3.4 ± 0.6% vs. 3.7 ± 0.9% with DTXk (Fig. 1F
). However, in these same experiments, surface expression of these channels was sensitive to previously described trafficking modulators (8
, 24)
, such as Kv1.4 for Kv1.2 (40.1±2.3%; Fig. 1E
) and the auxiliary subunit KChIP2 for Kv4.2, (57.8±1.9%; Fig. 1F
).
Effects of DTX coexpression on Kv1.1 surface expression as monitored by MAGUK-mediated clustering and N-linked glycosylation
To confirm increased surface expression of Kv1.1 in the presence of DTXk, we assayed the extent of Kv1.1 clustering induced by PSD-95. Previous studies showed that clustering of Kv1 channels by PSD-95 requires their cell surface expression (8
, 21)
. We found that coexpression of Kv1.1, DTXk, and PSD-95 leads to robust clustering of cell surface homotetrameric Kv1.1 channels not seen for cells expressing Kv1.1 with pSecTag2C and PSD-95 (Fig. 2
A).
|
The Kv1.1
subunit contains a single N-linked glycosylation site located in the extracellular loop between transmembrane segments S1 and S2 (29)
. Differences in processing of the Kv1.1 N-linked oligosaccharide chain during transit through the secretory pathway can be detected by shifts in relative electrophoretic mobility (Mr) on SDS-polyacrylamide gels and by sensitivity to sialidase digestion (30)
. Lower Mr forms of Kv1
subunits carrying simple high mannose chains correspond to ER pools, while higher Mr forms carrying sialylated complex chains correspond to Golgi and plasma membrane pools (8
, 14
, 30)
. Cotransfection of DTXk with Kv1.1 at a 1:4 cDNA ratio induced appearance of a new pool of Kv1.1 with a higher Mr (
75 kDa) corresponding to mature forms of the Kv1.1 N-linked oligosaccharide chain (Fig. 2B
). Higher Mr forms of Kv1.1 found in DTXk-expressing cells were sensitive to treatment with sialidase (Fig. 2C
) verifying that they contained Golgi-modified sugar chains.
We next employed an independent biochemical assay of surface expression, using a proteinase K (PK) digestion of intact living cells to cleave extracellular domains of cell surface but not intracellular Kv1.1 (8)
. The Mr = 75 kDa sialidase-sensitive form of Kv1.1 present in DTXk coexpressing cells was sensitive to PK digestion (Fig. 2D
), demonstrating cell surface expression. In contrast, the lower Mr (
60 kDa) form of Kv1.1 in cells coexpressing Kv1.1 and pSecTag2C or DTXk was insensitive to sialidase and PK digestion. These biochemical data are entirely consistent with those from immunofluorescence experiments and support that DTXk coexpression leads to enhanced trafficking of homotetrameric Kv1.1 channels to the cell surface.
Binding of DTXk to Kv1.1 and effects of altering DTX binding affinity on Kv1.1 surface expression
We next tested whether DTXk modulated Kv1.1 trafficking by direct binding. We first performed reciprocal coimmunoprecipitation experiments from cells coexpressing DTXk-myc and Kv1.1. In these experiments, anti-myc antibodies coimmunoprecipitated Kv1.1, and anti-Kv1.1 antibodies coimmunoprecipitated DTXk-myc (Fig. 3
A). Neither DTXk-myc nor Kv1.1 were immunoprecipitated with control IgG (Fig. 3A
). In lysates from singly transfected cells, anti-Kv1.1 antibodies did not immunoprecipitate DTXk-myc, and anti-myc antibodies did not immunoprecipitate Kv1.1 (Fig. 3A
). We found that the overall yield of coimmunoprecipated Kv1.1 obtained using anti-myc antibodies was small compared to the yield obtained using Kv1.1 antibodies, showing that at steady state, only a small subset of total Kv1.1 was bound to DTXk. However, most of the DTXk-myc was effectively coimmunoprecipitated by anti-Kv1.1, such that when coexpressed, the bulk of cellular DTXk was found associated with Kv1.1. This suggests that the low levels of DTXk-myc staining observed in immunofluorescence experiments (Fig. 1D
) may be limiting for Kv1.1 surface expression.
|
It is known that DTXk interacts with Kv1.1 channels via its 310-helix and ß-turn (Fig. 3B
) (26)
. Previous studies revealed that mutation of DTXk lysine (K) 3 to alanine (A) (i.e., K3A) led to
1000-fold reduction in its inhibitory potency for Kv1.1 (26)
. In contrast, alanine substitution of basic residues in the
-helix, (e.g., arginine R53), did not significantly alter DTXk binding (26)
. As an assay of whether altering Kv1.1 binding affinity of DTXk affected its potency of inducing Kv1.1 surface expression, we coexpressed increasing amounts of DTXk-K3A and DTXk-R53A with a fixed amount of Kv1.1 cDNA in COS-1 cells. Systematically increasing amounts of DTXk, K3A, or R53A cDNAs resulted in saturable dose-dependent increases in the number of cells with robust Kv1.1 surface staining (Fig. 3B
). However, the efficacy of the low-affinity point mutant K3A at inducing surface expression of coexpressed Kv1.1 was significantly lower than WT DTXk. Moreover, expression efficiency of the point mutant K3A in COS-1 was similar to WT (4 µg/dish; 28.5±1.3% vs. 26.7±0.8% respectively, n=4). Coexpression of point mutant R53A resulted in a higher number of cells expressing cell surface Kv1.1 (Fig. 3B
). However, only the 1:2 cDNA (Kv1.1:DTXk) ratio showed a significant difference between R53A and WT DTXk (P< 0.006 vs. P<0.14 for 1:4 and 1:8 cDNA ratios).
We next compared effects of coexpressing Kv1.1 with WT DTXk, or the K3A or R53A point mutations, in primary rat astrocyte cultures. Cotransfections were done at 1:4 cDNA (Kv1.1:DTXk) ratios, which yielded maximal effect on Kv1.1 cell surface expression in COS-1 cells. As shown in Fig. 4
C, K3A again yielded a significantly lower number of cells with Kv1.1 surface staining than did WT DTXk (P<0.02). R53A also induced a robust increase in cells expressing surface Kv1.1 compared to cells expressing Kv1.1 and pSecTag2C, but the impact was not significantly different from that obtained with WT DTXk. That the effects of these DTXk isoforms on Kv1.1 trafficking parallels their binding affinity suggests that direct binding of exogenous DTXk to Kv1.1 in the ER lumen mediates the observed effects on surface expression of Kv1.1.
|
We finally addressed whether the DTXk trafficking effects depended on its binding to the canonical site on Kv1.1 channels by assaying Kv1.1
subunits mutated in the DTX binding site and that exhibit lowered DTX binding affinities. Previous studies showed that the three critical residues (A352, E353, and Y379) in the Kv1.1 pore region were responsible for high-affinity DTX-binding, such that their mutation to corresponding residues present in DTX-insensitive Kv1 channels dramatically reduced DTX binding (17
, 19)
. We mutated these three critical residues to those present in the DTX-insensitive Kv1.4 (A352P, E353T, and Y379K; Fig. 3E
, left). The double point mutants A352P/E353T; A352P/Y379K, and E353T/Y379K were coexpressed with DTXk in COS-1 cells at 1:4 cDNA ratios (Fig. 3E
, right). Although cell surface expression of these mutants was increased compared to WT Kv1.1 when coexpressed with pSecTag2C (13)
, none showed a further increase in surface expression when coexpressed with DTXk (Fig. 3E
). The occlusion of the DTXk trafficking effect by mutation of the DTX binding site strongly suggests that DTXk exerts its effects on Kv1.1 trafficking by binding to the canonical site on Kv1.1 channels.
Patch-clamp analysis of Kv1.1 functional expression
We next addressed whether increased expression of cell surface Kv1.1 yielded increased Kv1.1 ionic currents using whole-cell patch-clamp. At a test potential of +40 mV, Kv1.1-transfected cells coexpressing DTXk had
2.7-fold larger currents (358.9±14.3 pA/pF; n=7) than cells expressing Kv1.1 with pSecTag2C (131.4±19.1 pA/pF; P = 0.0009; Fig. 3A
). The increases in Kv1.1 current amplitude occurred in the absence of any changes in voltage-dependent activation, as indicated by similar midpoints of activation conductance-voltage (12.2±0.7 mV vs. 12.9±0.5 mV, n=5) and the steady-state inactivation voltage (35.1±0.4 vs. 36.8±0.7 mV, n=5) relationships for cells expressing Kv1.1 and pSecTag2C vs. Kv1.1 and DTXk. We also assayed the effects of coexpression with the R53A point mutant, which yielded increased Kv1.1 surface expression by cell surface immunofluorescence staining (Fig. 3)
. Coexpression of R53A led to larger increases in Kv1.1 current amplitude at +40 mV (571.6±30.2 pA/pF, n=7; P=0.002) than did DTXk, again in the absence of altered voltage-dependent activation (G1/2=13.1±0.6 mV, n=5) or inactivation (Vi1/2=36.1±0.8 mV; n=5). Together, these data provide compelling evidence that DTXk in the ER lumen binds to the pore region of Kv1.1 homotetramers and facilitates their exit from the ER to allow for cell surface expression of functional Kv1.1 channels.
| DISCUSSION |
|---|
|
|
|---|
subunits (Kv1.2, Kv1.6) and that this binding regulated intracellular trafficking of homo- and hetero-tetrameric Kv1 channels, controlling the subunit composition of surface Kv1 channels. This ER-localized protein is expected to exhibit a domain with a structure analogous to the DTX toxin scaffold, allowing for high-affinity binding to pore region of the Kv1
subunits (Kv1.1, Kv1.2 and Kv1.6) that exhibit inefficient export from the ER and trafficking to the cell surface. Our results show that expressing soluble DTXk in the ER lumen enhances ER export of Kv1.1 and allows for increased cell surface expression of functional homotetrameric Kv1.1 channels. This is presumably due to a competitive inhibition by luminal DTXk of Kv1.1 binding to the ER retention protein. Prevailing models of DTX binding suggest that the DTX binding affinity for tetrameric Kv1 channels increases with increased number of DTX-sensitive subunits in the tetramer (19
While exogenous ER luminal expression of DTXk promoted Kv1.1 cell surface expression, the effect was not as robust as observed on coexpression of Kv1.1 with Kv1.4. Like most vertebrate peptide toxins, DTXk possesses multiple disulfide bonds, whose proper combinatorial formation is required for biological activity. Improper disulfide bond formation, as often occurs on expression of recombinant toxins in bacterial expression systems, can dramatically lower the toxins affinity for the channel (19
, 31)
. Our expression of DTXk in COS-1 is the first example of expression of an exogenous nonmammalian neurotoxin in a mammalian cell background. The lack of robust effects of DTXk on Kv1.1 trafficking could be due to the presence of only a small fraction of correctly folded DTXk in the ER lumen. In fact, samples of our DTXk- and DTXk-myc-expressing COS-1 cells yielded no detectable DTXk binding activity (Dr. J. Oliver Dolly, personal communication).
The complexity of the ER luminal environment might also influence the interactions of the toxins to the channels. For example, the electrostatic potential and resulting dipole moment of Kv1.2 channels guide and orient the scorpion toxin maurotoxin into its binding site on the Kv1.2 pore-region (32)
. The local electrostatic fields surrounding ER Kv1.1 channels might affect DTXk guidance and orientation to its pore-region, perturbing binding. Moreover, DTXk is soluble and presumably expressed throughout the three-dimensional volume of the ER lumen, whereas the population relevant for Kv1.1 binding is limited to that adjacent to the luminal face of the ER membrane. Correctly folded DTXk may flux rapidly out of the ER, such that steady-state luminal accumulation of correctly folded DTXk may be quite low. In contrast, coexpressed Kv1.4 is limited to the same two-dimensional space (the ER membrane) occupied by Kv1.1. The high-affinity T1 assembly domain on the N termini of Kv1
subunits confers high-affinity and virtually irreversible assembly to the coexpressed subunits. This efficient interaction may contribute to the enhanced efficacy observed for heteromeric Kv1
subunit assembly relative to DTXk coexpression.
One intriguing result was the enhanced effect of the point mutant R53A on Kv1.1 trafficking. Previous studies (competition binding assay on rat brain membranes and inhibition of Kv1.1 currents in Xenopus oocytes) have shown that the R53A mutation yielded insignificant alterations in the DTXk binding affinity for Kv1.1 (26
, 27)
. The precise mechanism for the DTXk effects on Kv1.1 trafficking are not known but presumably involve a competition between soluble DTXk and an endogenous ER retention protein for the same binding site on Kv1.1. Whether DTXk binding exerts other effects to enhance Kv1.1 trafficking, such as enhancing channel folding, is not known. Pharmacological rescue of trafficking-defective mutants of HERG K+ channels appears to involve drug-induced restoration of defective folding (33)
. However, WT Kv1.1 does not exhibit obvious misfolding (2)
, as do these trafficking-defective HERG mutants (33)
.
It has been suggested that neurotoxins such as DTXk arose from cellular proteins, or prototoxins, operating in normal physiological processes (34)
. In fact DTXk and other DTX neurotoxins exhibit strong sequence and structural similarity to mammalian Kunitz type protease inhibitors, although the neurotoxins do not inhibit proteases nor do the protease inhibitors bind to ion channels. Previous studies have reported the presence of an endogenous prototoxin, lynx1, in the mammalian nervous system (35)
. Lynx1 is a neuronal membrane protein adopting a three-fingered toxin fold characteristic of the snake
-bungarotoxin, and as such binds to and inhibits neuronal nicotinic acetylcholine receptors (35)
. We suggest that the putative ER Kv1 binding protein may represent a mammalian prototoxin, in this case, regulating the composition of cell surface Kv1 channels through binding and ER retention. This considerable variability in the subunit composition of Kv1 channels in different neurons shapes cell-specific differences in action potential threshold, duration, and firing rate. Future studies will be aimed at identifying this protein and understanding how it may contribute to shaping neuronal Kv1 channel abundance and distribution.
| ACKNOWLEDGMENTS |
|---|
| FOOTNOTES |
|---|
Received for publication August 25, 2006. Accepted for publication October 25, 2006.
| REFERENCES |
|---|
|
|
|---|
This article has been cited by other articles:
![]() |
J.-W. Yang, H. Vacher, K.-S. Park, E. Clark, and J. S. Trimmer Trafficking-dependent phosphorylation of Kv1.2 regulates voltage-gated potassium channel cell surface expression PNAS, December 11, 2007; 104(50): 20055 - 20060. [Abstract] [Full Text] [PDF] |
||||
| ||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||
| HOME | HELP | FEEDBACK | SUBSCRIPTIONS | ARCHIVE | SEARCH | TABLE OF CONTENTS |