WO2004044231A2 - Method for detecting intracellular cholesterol - Google Patents
Method for detecting intracellular cholesterol Download PDFInfo
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- WO2004044231A2 WO2004044231A2 PCT/US2003/034771 US0334771W WO2004044231A2 WO 2004044231 A2 WO2004044231 A2 WO 2004044231A2 US 0334771 W US0334771 W US 0334771W WO 2004044231 A2 WO2004044231 A2 WO 2004044231A2
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/92—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving lipids, e.g. cholesterol, lipoproteins, or their receptors
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2500/00—Screening for compounds of potential therapeutic value
- G01N2500/10—Screening for compounds of potential therapeutic value involving cells
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2800/00—Detection or diagnosis of diseases
- G01N2800/04—Endocrine or metabolic disorders
- G01N2800/044—Hyperlipemia or hypolipemia, e.g. dyslipidaemia, obesity
Definitions
- lipid rafts exist in all mammalian cell membranes. They are rich in cholesterol and sphingolipids, and play important roles in various cellular processes including signal transduction, cell surface polarity, and endocytosis (Simons and Ikonen (2000) Science 290:1721-6). Cholesterol also modulates intracellular transport of proteins from early endosomes to the plasma membranes, or from endosomes to the Golgi (Mayor, et al .
- NPCl Niemann-Pick Type Cl
- NPCl is involved in the transport of low-density lipoprotein (LDL) -derived cholesterol from internal compartments to the plasma membrane or to the ER (Cruz and Chang (2000) J. Biol . Chem. 275:41309-16; Pentchev, et al . (1985) Pro . Natl . Acad. Sci . USA 82:8247-51; Liscum, et al . (1989) J. Cell Biol. 108:1625-1636) .
- LDL low-density lipoprotein
- NPCl also participates in the transport of plasma membrane-derived cholesterol and endogenously synthesized cholesterol to the ER (Cruz and Chang (2000) supra; Cruz, et al . (2000) J “ . Biol . Chem. 275:4013-21; Pentchev, et al . (1985) supra; Byers, et al . (1992) Biochim. Biophys . Acta 1138:20-6; Lange, et al . (2000) J “ . Biol . Chem. 275:17468-75). Irrespective of the origin of cholesterol, the lack of a functional NPCl protein invariably leads to cholesterol accumulation in the late endosome/lysosome .
- filipin is within the ultraviolet (UV) range and most of the commercially available confocal microscopes are not equipped with the laser beam that excites at the UV range; the fluorescence signal of filipin bleaches in a short time; in unfixed or fixed cells, filipin deforms the cellular membrane by forming complexes with cholesterol and causes perturbation of membrane lipid organization; and filipin has been reported to give false-negative results.
- UV ultraviolet
- most of the commercially available confocal microscopes are not equipped with the laser beam that excites at the UV range
- the fluorescence signal of filipin bleaches in a short time
- in unfixed or fixed cells filipin deforms the cellular membrane by forming complexes with cholesterol and causes perturbation of membrane lipid organization; and filipin has been reported to give false-negative results.
- NBD-cholesterol and dehydroergosterol have been used to track the fate of free sterol in the cell (Frolov, et al . (2000) J “ . Biol . Chem. 275:12769-80; Mukherjee, et al . (1998) Biophys . J. 75:1915-25).
- NBD-cholesterol exhibits a strong initial fluorescence signal at desirable wavelengths but bleaches quickly upon light exposure.
- NBD-cholesterol does not consistently mimic the behavior of cholesterol inside the cells (Frolov, et al . (2000) supra) .
- DHE behaves in a manner similar to cholesterol in many ways (Mukherjee, et al . (1998) supra).
- the fluorescence intensity of DHE is weak and it absorbs and emits in the UV region, therefore, special equipment is required in order to visualize DHE by fluorescence microscopy.
- BC ⁇ was developed as an effective tool for detecting cholesterol-rich domains (Waheed, et al . (2001) Proc. Natl . Acad. Sci . USA 98:4926-31; Iwamoto, et al . (1997) Biochim. Biophys . Acta 1327:222-30) .
- BC ⁇ is derived from a pore- forming cytolysin produced by the pathogenic bacterium Clostridium perfringens (Iwamoto, et al . (1997) supra) .
- ⁇ -toxin or perfringolysin 0
- ⁇ -toxin specifically binds to free (unesterified) cholesterol
- BC ⁇ is prepared by a two-step procedure. First, ⁇ -toxin is proteolytically digested with subtilisin Carlsberg; this step generates a complex of 38- and 15-kDa fragments called C ⁇ (Ohno-Iwashita et al .
- BC ⁇ complex (Iwamoto, et al . (1997) supra) .
- the biotinylation allows C ⁇ identification with avidin or streptavidin.
- the labeling efficiency of BC ⁇ depends on the qualities of fluorescent avidin and streptavidin.
- BC ⁇ binds to cholesterol in synthetic liposomes and in intact cells with affinity identical to that of the wild-type ⁇ -toxin, but because it does not oligomerize, it bears no hemolytic activity (Iwamoto, et al. (1997) supra; Ohno-Iwashita, et al .
- BC ⁇ binds to cholesterol- rich microdomains in the plasma membrane of intact cells with or without fixation (Waheed, et al . (2001) supra; Hagiwara, et al . (1999) Biochem . Biophys . Res . Commun . 260:516-21; M ⁇ bius, et al . (2002) J. Histochem . Cytochem. 50:43-55); however, a means of detecting intracellular cholesterol using BC ⁇ has not been demonstrated.
- One object of the present invention is to provide a method of detecting intracellular cholesterol using a labeled C ⁇ complex.
- the method provides contacting permeabilized cells with labeled C ⁇ complex and detecting binding of the C ⁇ complex to intracellular cholesterol .
- Another object of the present invention is to provide a method of identifying agents which inhibit cholesterol accumulation using a high-throughput screening assay.
- mutant NCP1 cells preferably CHO CT43 or CHO CT60 cells, are exposed to a test agent. The ability of the test agent to decrease levels of cholesterol accumulation in the cells is evaluated, preferably via labeled C ⁇ complex.
- Lipoproteins are macromolecular complexes that carry hydrophobic plasma lipids, particularly cholesterol and triglyceride in the plasma. More than half of the coronary heart disease in the United States is attributable to abnormalities in the levels and metabolism of plasma lipids and lipoproteins. Premature coronary heart disease is sometimes related to mutations in the major genes involved in lipoprotein metabolism. However, elevated lipoprotein levels in most patients with coronary heart disease reflect the adverse impact of excess body weight and diets high in total and saturated fats. Elevated lipoprotein levels in the brain have also been associated with neurodegenerative disorders such as Alzheimer's disease. Treatment of elevated LDL cholesterol is typically focused at either disease prevention or secondary treatment after complications have occurred. The rationale for primary prevention is based on a large body of evidence linking elevated levels of LDL cholesterol with an increase in coronary heart disease as well as clinical and experimental data demonstrating that reducing LDL cholesterol slows progression and may actually induce regression of coronary heart disease.
- lipid-lowering agents are presently recommended ' as first line therapy against hypercholesteremia. These include bile acid sequestrants or binding resins, niacin and 3-hydroxy-3-methyl glutaryl- coenzyme A (HMG-CoA) inhibitors.
- HMG-CoA 3-hydroxy-3-methyl glutaryl- coenzyme A
- the present invention provides a method for detecting intracellular cholesterol using labeled C ⁇ complex.
- the invention further provides a high-throughput screening assay using this detection method for use in evaluating and identifying test agents which modulate cholesterol accumulation.
- biotinylated C ⁇ complex binds to plasma membrane-localized cholesterol
- the present invention provides a method of detecting intracellular cholesterol by contacting permeabilized cells with labeled C ⁇ complex.
- intracellular cholesterol is detected in paraformaldehyde-permeabilized cells with biotinylated C ⁇ complex herein.
- 25RA and CT43 cells which were and were not permeabilized with a low concentration, i . e . 1.0%, of paraformaldehyde, were contacted with BC ⁇ , subsequently labeled with fluorescent streptavidin, and viewed under a fluorescent microscope. Both concentrations of paraformaldehyde resulted in strong BC ⁇ binding to cholesterol mainly in the vicinity of the cell surface.
- Ml is defined as the region of fluorescence intensity that contains less than 0.1% of control cells (no BC ⁇ incubation, with streptavidin only) for each detection method.
- the 25RA and CT43 cells contain a gain of function mutation in the SREBP cleavage activating protein (SCAP) (Hua, et al . (1996) Cell 87:415-26). As a result, these cells constitutively express the LDL receptor and various cholesterol biosynthetic enzymes at elevated levels.
- SCAP SREBP cleavage activating protein
- the M19 cells lack the S2P gene that is essential for activating the SREBP pathway (Chin and Chang (1981) J. Biol . Chem. 256:6304-6310; Rawson, et al . (1997) Mol . Cell 1:47-57). M19 cells express the LDLR and various cholesterol biosynthetic enzymes at levels lower than those in the wild-type cells.
- Live cell detection demonstrated that both 25RA and CT43 cells exhibited stronger fluorescence intensities than the wild-type cells, while the M19 cells exhibited weaker fluorescence intensities than the wild-type cells. Furthermore, 25RA and CT43 cells had a greater percentage of cells with a strong positive signal than the wild-type cells, while the M19 cells had a much lower percentage of cells exhibiting a strong positive signal than the wild- type cells. It was also noted that the average fluorescence signal was slightly higher in CT43 cells than in 25RA cells. These results indicate that the bulk plasma membrane cholesterol content may not be significantly altered in the CT43 cells. Additional flow cytometric analysis of cells contacted with BC ⁇ was conducted using 25RA cells and CT43 cells permeabilized with 1% or 4% paraformaldehyde.
- CT43 cells Upon 1% paraformaldehyde permeabilization, where plasma membrane cholesterol detection is predominant, CT43 cells showed slightly higher levels of BC ⁇ binding than 25RA cells. When cells were permeabilized with 4% paraformaldehyde prior to BC ⁇ binding, a higher fluorescence intensity and higher percentage of strong positive cells was observed in both cell types. Moreover, BC ⁇ binding was much higher in CT43 cells than in the 25RA cells, indicating that most of the fluorescent signal comes from cholesterol accumulated intracellularly. These results demonstrate that permeabilizing cells with 4% paraformaldehyde facilitates accessibility of BC ⁇ to intracellular cholesterol of CHO cells, without the need for any additional permeabilization procedure .
- a comparison of cholesterol detection using filipin or BC ⁇ was conducted. 25RA and CT43 cells were grown in medium A containing FBS or in medium D containing delipidated FBS and parallel filipin and BC ⁇ analyses were performed. Binding was detected using fluorescence microscopy. When cells were grown in medium A, BC ⁇ was able to bind to intracellular cholesterol in both 25RA and CT43 cells, with CT43 cells providing considerably more signal. In contrast, filipin was able to bind intracellular cholesterol in CT43 cells but not in 25RA cells. When cells were grown for 16 hours in medium containing delipidated FBS (medium D) , intracellular cholesterol content was reduced in both 25RA and CT43 cells, as determined by BC ⁇ binding.
- NPC1-GFP GFP-tagged NPCl protein
- NPC1-GFP After BC ⁇ binding, cells containing NPC1-GFP were viewed in the red channel to detect the BC ⁇ fluorescence signal or in the green channel to detect the NPC1-GFP fluorescence signal. The two fluorescence signals were then merged to examine their degree of overlap. Cells expressing NPC1-GFP exhibited significantly reduced BC ⁇ fluorescence signal compared to cells that did not express the fusion protein; no fluorescence overlap was observed between the red and green channels. As a control, CT43 cells expressing only GFP did not show reduced BC ⁇ fluorescence signal.
- U18666A is a polyamine-containing compound that induces an NPCl-like phenotype when added to cells expressing wild-type NPCl
- ⁇ -cyclodextrin is a cyclic oligosaccharide that specifically and rapidly removes free cholesterol from the cell membranes when added to growth media (Rothblat, et al . (1999) J " . Lipid Res . 40:781-96). Changes in the intracellular distribution of cholesterol in 25RA and CT43 cells exposed to 2-hydroxypropyl-b-cyclodextrin (hpCD) was detected using BC ⁇ .
- a first aspect of the invention provides a method of detecting intracellular cholesterol in permeabilized cells using labeled C ⁇ complex.
- the method comprises contacting cells with a reagent which not only fixes but also physically or chemically permeabilizes the cell membrane to facilitate up-take and binding of labeled C ⁇ complex to intracellular cholesterol.
- Permeabilization typically occurs at a temperature ranging from approximately 4°C to 37°C C for a period of time from approximately 10 minutes to 60 minutes.
- paraformaldehyde was used to permeabilize cells at a concentration ranging from 3% to 4%, however, as one of skill in the art will appreciate, other reagents including, but not limited to, chilled methanol (100%) , TRITONTM X-100 [ e . g. , 0.1%-1.%), digitonin [ e . g.
- permeabilizing reagent may vary and is dependent on factors such as cell type, culture medium, and temperature.
- a cell is said to be permeabilized if labeled C ⁇ complex is taken up by the cell in an amount sufficient to bind and detect intracellular cholesterol.
- Permeabilization may also be determined using other well-known methods such as phalloidin uptake.
- labeled C ⁇ complexes include C ⁇ complex directly conjugated to biotin or a fluorescent label used for cell analysis. Fluorescent labels may be attached directly to the C ⁇ complex through sulfhydryl or primary amine groups .
- Exemplary fluorescent labels include, but are not limited to, -Phycoerythrin, Green Fluorescent Protein, Phycocyanine , Allophycocyanine, Tricolor, AMCA, AMCA-S, AMCA, BODIPY FL, BODIPY 493/503, BODIPY FL Br2 , BODIPY R6G, BODIPY 530/550, BODIPY TMR, BODIPY 558/568, BODIPY 564/570, BODIPY 576/589, BODIPY 581/591, BODIPY TR, Cascade Blue, CI-NERF, Dansyl, Dialkylaminocoumarin, 4 ' , 6 ' -Dichloro- 2 ' , 7 ' -dimethoxyfluorescein, 2 ' , 7 ' -dichloro-fluorescein, Cy3, Cy5, Cy7 , DM-NERF, Eosin, Eosin F3S, Erythrosin
- Fluorescein Fluorescein Isothiocyanate Hydroxycoumarin, Isosulfan Blue, Lissamine Rhodamine B, Malachite Green, Methoxycoumarin, Napthofluorecein, NBD, Oregon Green 488, Oregon Green 500, Oregon Green 514, Propidium Iodide Phycoerythrin, PyMPO, Pyrene, Rhodamine 6G, Rhodamine Green, Rhodamine Red, Rhodol Green, 2',4',5',7'- Tetrabromosulfonefluorescein, Tetramethyl-rhodamine, Texas Red, X-rhodamine; Lucifer Yellow, and the like.
- the time required for binding labeled C ⁇ complex may vary with temperature, extent of permeabilization and cell type and is in the range of 10 to 30 minutes. Additional reagents may be added to the medium containing the labeled C ⁇ complex to decrease non-specific binding interactions or improve the stability of the labeled C ⁇ complex, e . g. , bovine serum albumin or other reagents known to have such properties. Subsequently, the cells may be washed to remove any residual or non-specifically bound labeled C ⁇ complex prior to imaging and analysis.
- Detection of labeled C ⁇ complex bound to cholesterol will be dependent on the label which is conjugated to the C ⁇ complex.
- detection of biotinylated C ⁇ may be performed using any of the well-known avidin or streptavidin reagents.
- Detection of biotin-avidin or biotin-streptavidin complexes typically involves conjugated forms of avidin or streptavidin including, but are not limited to, enzyme-conjugates [e. g. , alkaline phosphatase, ⁇ -galactosidase, glucose oxidase, horseradish peroxidase) or fluorescent-conjugates [ e . g.
- the label to be imaged is fluorescent, i.e. either a C ⁇ complex conjugated to fluorescent label or avidin or streptavidin conjugated to fluorescent label .
- Methods of imaging and analyzing any of the above- mentioned labels are well-known in the art and the method employed will vary with the type of analysis being conducted, i.e. individual samples or multiple sample analyses in high-throughput screens.
- measurement of the label is accomplished using flow cytometry, laser confocal microscopy, spectrofluorometer, fluorescence microscopy, fluorescence scanners and the like.
- the detection method of the invention has broad applicability and may be used for the detection of cholesterol in mammalian and non-mammalian eukaryotic cells including, for example, plant cells.
- a second aspect of the present invention provides a method of identifying agents which modulate cholesterol accumulation.
- the method of the invention is a cell-based assay which uses cells with a defective or mutant NCP1 gene.
- mammalian or non-mammalian cell may be used in the assay of the invention to identify agents which modulate cholesterol accumulation.
- the mutant NCP1 cells comprise CHO CT43 or CT60 cells. CHO CT43 cells have been described and characterized in detail (see, e . g. , Cruz, et al .
- the mutant NCP1 cells are exposed to a test agent.
- Levels of cholesterol accumulation in mutant cells exposed to the test agent are compared to levels of cholesterol accumulation in mutant cells not exposed to the test agent. A decrease in cholesterol accumulation in these mutant cells is indicative of the test agent being a cholesterol inhibitor.
- the mutant cells comprise CHO CT43 or CT60 cells and levels of cholesterol accumulation in these cells when exposed to a test agent are compared to levels of cholesterol accumulation in parental 25RA cells not exposed to the test agent.
- test agents which decrease the level of cholesterol accumulation in the mutant cells to a level similar to the level in parental 25RA cells are expected to be potent cholesterol inhibitors .
- mutant NPCl cells are seeded into the wells of a microtiter plate. Cholesterol accumulation is preferably measured via the BC ⁇ detection method provided herein.
- additional wells containing only mutant cells and only parental cells also be included as negative and positive controls, respectively, for the assay. Wells containing only mutant cells provide a negative control wherein cholesterol accumulation is expected to be high. These negative controls can be used to compare and determine decreases in levels of cholesterol accumulation of the mutant cells upon exposure to the test agents .
- Decreases in levels of cholesterol accumulation in cells upon exposure to the test agent as compared to the negative control are indicative of the test agent being a cholesterol inhibitor.
- Wells containing the parental cells provide a positive control of levels of cholesterol accumulation in normal cells.
- Test agents which decrease levels of cholesterol accumulation to levels similar to that of the positive control are expected to be very effective cholesterol inhibitors.
- the mutant cells used in the microtiter well format comprise CT43 cells or CT60 cells and are seeded at approximately 3-4xl0 4 cells per well in medium A comprising Ham's F-12, 10% FBS, and 10 ⁇ g/ml gentamycin.
- Control cells comprising the parental 25RA cells are seeded at approximately lxlO 4 cells/well .
- the medium is removed after one day and various test agents and/or various concentrations of a single test agent are then added to the wells and the plates are grown for about 14 hours before intracellular detection using BC ⁇ .
- the cells receive a pulse of LDL cholesterol prior to exposing the cells to the test agent.
- the mutant cells (CT43 or CT60) are seeded at approximately 3-4xl0 4 cells per well in medium A comprising Ham's F-12, 10% FBS, and 10 ⁇ g/ml gentamycin.
- Control cells comprising the parental 25RA cells are seeded at approximately lxlO 4 cells/well.
- the medium is removed after one day, the cells are rinsed with phosphate buffered saline (PBS) and the medium is changed to Medium D comprising Ham's F12, 5% delipidated FBS, 35 ⁇ M oleic acid, and 10 ⁇ g/ml gentamycin.
- PBS phosphate buffered saline
- the CT43 or CT60 cells are then grown for an additional 36 hours. Cells are then washed and various test agents and/or various concentrations of a single test agent are then added to the wells and the plates are incubated at approximately 37°C for about one hour. Subsequently, the cells are grown in the presence of LDL cholesterol (approximately 100 ⁇ g LDL/ml medium in 0.1 ml of medium D) at approximately 37°C for about 14 hours.
- LDL cholesterol approximately 100 ⁇ g LDL/ml medium in 0.1 ml of medium D
- test agents are dissolved at high concentration in a solvent such as dimethyl sulfoxide (DMSO) so that the final concentration of the solvent in the assay is less than or equal to 1%.
- a solvent such as dimethyl sulfoxide (DMSO)
- Typical concentrations of test agents range from 1 to 100 ⁇ M.
- DMSO dimethyl sulfoxide
- Agents identified as cholesterol inhibitors in accordance with the method of the present invention can block the internalization of LDL-derived cholesterol and/or plasma membrane cholesterol from entering the cell interior thereby causing cholesterol to accumulate in the plasma membrane and promoting cholesterol efflux and stimulating reverse cholesterol transport in various body cells. These agents are expected to slow- the development of atherosclerosis.
- Agents identified as inhibitors in accordance with the method of the present invention can also block the internalization of plasma membrane cholesterol in intestinal enterocytes, thereby preventing dietary cholesterol absorption. Such agents can also slow down the accumulation of amyloid beta-peptides in the brain, thereby slowing down the symptoms of Alzheimer's disease. Accordingly, test agents identified as cholesterol inhibitors in accordance with the assay of the present invention are expected to be useful in preventing and treating cardiovascular and neurodegenerative disease associated with over accumulation of cholesterol in cells. Such agents are also expected to be useful in the treatment of Niemann Pick type C disease.
- LDL was prepared from fresh human plasma by sequential flotation using well-known methods (Cadigan, et al . (1988) J. Biol . Chem. 263:274-282).
- BC ⁇ was prepared according to standard methods (Waheed, et al . (2001) supra) . Briefly, ⁇ - toxin was overexpressed in Escherichia coli strains, purified by a series of chromatography steps (Shimada, et al. (1999) J. Biol . Chem. 274:18536-42), and digested with subtilisin Carlsberg to produce a nicked ⁇ -toxin (C ⁇ ) (Ohno- Iwashita et al . (1986) supra) . BC ⁇ was then obtained by biotinylating C ⁇ using well-known methods (Iwamoto, et al . (1997) supra) .
- Example 2 Cell Lines
- 25RA is a CHO cell line resistant to the cytotoxicity of 25-hydroxycholesterol (Chang and Limanek (1980) supra) and contains a gain of function mutation in the SCAP (Hua, et al. (1996) Cell 87:415-26).
- CT60 and CT43 mutant are isolated as two of the cholesterol trafficking mutants from mutagenized 25RA cells (Cadigan, et al . (1990) supra). Both mutants contain premature translational termination mutations in the NPCl coding sequence, producing a nonfunctional, truncated NPCl protein (Cruz, et al . (2000) supra) .
- Example 3 Cell Culture CHO cells were maintained in medium A (Ham's F-12, plus 10% fetal bovine serum (FBS) and 10 ⁇ g/ml gentamycin) as monolayers at 37°C with 5% C0 2 .
- Medium D refers to Ham's F-12 with 5% delipidated FBS (Chin and Chang (1981) J. Biol . Chem. 256:6304-6310), plus 35 ⁇ M oleic acid, and 10 ⁇ g/ml gentamycin.
- FBS fetal bovine serum
- gentamycin fetal bovine serum
- a polymerase chain reaction (PCR) fragment was generated using a GFP cDNA as the template and a 5' primer whose sequence corresponds to the mouse NPCl C-terminal sequence from the Bco47III site to the end of open reading frame (ORF) (except the stop codon) , followed by a 6x-Ala spacer sequence, which is in turn followed by a sequence corresponding to the N-terminal sequence of GFP.
- the 3' primer consists of sequences corresponding to the C- terminal sequence of GFP and to Hindi11 and XhoII restriction sites.
- NPC1- GFP was digested with Hindi11 and Sco47III and ligated into an NPC1- containing pBLUESCRIPT ® plas id (STRATAGENE ® , La Jolla, CA) that had been digested with Hindi11 and Bco47III and gel purified.
- a Spel-Hindlll fragment of NPC1-GFP was further subcloned into the pREX-IRES vector (Liu, et al . (2000) Anal . Biochem. 280:20-8).
- Transient transfection of NPC1- GFP was performed in CT43 cells using FUGENETM 6 according to manufacturer's instructions (Roche, Indianapolis, IN). Transfected cells were imaged within 2-3 days of transfection.
- Example 5 Fluorescence Microscopy
- the cells were pre-incubated in PBS containing 1% bovine serum albumin (BSA) , then 10 ⁇ g/ml BC ⁇ in 1% BSA-PBS was added and the cells were incubated for 30 minutes at room temperature. After washing three times, the cells were exposed to either OREGON GREEN ® 488-conjugate streptavidin (1 ⁇ g/ml; Molecular Probes, Eugene, OR) or TEXAS RED ® X- conjugated streptavidin (1 ⁇ g/ml; Molecular Probes, Eugene, OR) in PBS with 1% BSA at room temperature .
- BSA bovine serum albumin
- the coverslips were mounted with a drop of PROLONG ® Anti-Fade media (Molecular Probes, Eugene, OR) onto the glass plates for image processing.
- the protocol for detecting cholesterol using filipin was essentially the same except that cells were pre-incubated with 1.5 mg/ml glycine in PBS for 30 minutes, then incubated with filipin (125 ⁇ g/ml; SIGMATM-Aldrich, St. Louis, MO) in PBS for one hour at room temperature before image processing.
- HBSS Hank's balanced salt solution
- BSA Hank's balanced salt solution
- the cells were incubated with fluorescent streptavidin in HBSS with 1% BSA at 4°C, and processed for image analysis. Samples were viewed and photographed using a ZEISS ® Axiophot microscope with a 63X objective equipped with CCD camera DEI-750 (Optronics Engineering, Goleta, CA) .
- DAPI filter, FITC filter, and TEXAS RED ® filter were used to visualize filipin, GFP/OREGON GREEN ® 488, and TEXAS RED ® X, respectively.
- the image was processed by using the METAVIEWTM 4.5 software (UNIVERSAL IMAGING CORPORATIONTM, Downingtown, PA) .
- METAVIEWTM 4.5 software UNIVERSAL IMAGING CORPORATIONTM, Downingtown, PA
- the samples were also observed with a MRC-1024 Krypton/Argon laser confocal microscope (BIO-RAD ® , Hercules, CA) .
- Cells were processed for cholesterol detection with BC ⁇ with OREGON GREEN ® 488-streptavidin essentially as described above except that the cells ( ⁇ 1 x 10 s ) were suspended in 1.5 ml size microtubes with careful mixing and pelleted by brief centrifuge after each washing step. Subsequently, the cells were resuspended in 1 ml of 1% BSA in either HBSS (for live cell detection) or PBS (for permeabilized cell detection) . The cells were analyzed at an excitation wavelength of 488 nm and emission wavelength of 515-530 n , using a FACSCANTM cytometer with CELLQUESTTM software (Becton Dickinson, San Jose, CA) .
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| US5545628A (en) * | 1995-01-10 | 1996-08-13 | Galephar P.R. Inc. | Pharmaceutical composition containing fenofibrate |
| WO2000040965A1 (en) | 1999-01-07 | 2000-07-13 | Tularik, Inc. | Fxr receptor-mediated modulation of cholesterol metabolism |
| AU2002213117A1 (en) | 2000-10-10 | 2002-04-22 | Steven Farber | High throughput genetic screening of lipid and cholesterol processing using fluorescent compounds |
| US7049086B2 (en) * | 2001-02-27 | 2006-05-23 | Trustees Of Dartmouth College | High-throughput screening assay for cholesterol inhibitors and inhibitors identified thereby |
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2002
- 2002-11-13 US US10/293,788 patent/US7186519B2/en not_active Expired - Fee Related
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2003
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|---|---|
| US20040091944A1 (en) | 2004-05-13 |
| US7361482B2 (en) | 2008-04-22 |
| US20060094772A1 (en) | 2006-05-04 |
| WO2004044231A3 (en) | 2004-06-17 |
| US7186519B2 (en) | 2007-03-06 |
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