US3641235A - Immunological reagent and process for making same - Google Patents

Immunological reagent and process for making same Download PDF

Info

Publication number
US3641235A
US3641235A US772852A US3641235DA US3641235A US 3641235 A US3641235 A US 3641235A US 772852 A US772852 A US 772852A US 3641235D A US3641235D A US 3641235DA US 3641235 A US3641235 A US 3641235A
Authority
US
United States
Prior art keywords
immunological
indicator
reagent
particles
counterpart
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
US772852A
Inventor
Margaret Rozman Weiss
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Bayer Corp
Original Assignee
Miles Laboratories Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Miles Laboratories Inc filed Critical Miles Laboratories Inc
Application granted granted Critical
Publication of US3641235A publication Critical patent/US3641235A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N33/00Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
    • G01N33/48Biological material, e.g. blood, urine; Haemocytometers
    • G01N33/50Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
    • G01N33/53Immunoassay; Biospecific binding assay; Materials therefor
    • G01N33/543Immunoassay; Biospecific binding assay; Materials therefor with an insoluble carrier for immobilising immunochemicals
    • G01N33/544Immunoassay; Biospecific binding assay; Materials therefor with an insoluble carrier for immobilising immunochemicals the carrier being organic
    • G01N33/548Carbohydrates, e.g. dextran
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S436/00Chemistry: analytical and immunological testing
    • Y10S436/80Fluorescent dyes, e.g. rhodamine
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S436/00Chemistry: analytical and immunological testing
    • Y10S436/805Optical property
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S436/00Chemistry: analytical and immunological testing
    • Y10S436/807Apparatus included in process claim, e.g. physical support structures
    • Y10S436/81Tube, bottle, or dipstick
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S436/00Chemistry: analytical and immunological testing
    • Y10S436/811Test for named disease, body condition or organ function
    • Y10S436/814Pregnancy
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S436/00Chemistry: analytical and immunological testing
    • Y10S436/815Test for named compound or class of compounds
    • Y10S436/817Steroids or hormones
    • Y10S436/818Human chorionic gonadotropin

Definitions

  • the indicator material When a fluid sample containing the immunological material to be detected comes in contact with the immunologically specific reagent, the indicator material shows one of two visible effects, separation from the particles or fixation to the particles. The specific type of visible effect is determined by the particular immunologic counterpart employed. For each reaction a control fluid sample which does not contain the immunological material under test shows an opposite reaction. A chromatographic technique can be used to display the visible effects.
  • This invention relates to an immunologically specific reagent which can be employed to obtain a visual readout for immunological reactions.
  • an immunologically specific reagent which gives an easily discernible readout can be formed from a plurality of particles, each having a core of a cellulosic derivative in particulate form chemically linked through covalent bonding to the immunological counterpart of the material to be detected, there being physically adsorbed onto said immunological counterpart an acidic indicator material such as hematoxylin, fiuorescein, and titan yellow.
  • an acidic indicator material such as hematoxylin, fiuorescein, and titan yellow.
  • an object of the present invention to provide an immunological reagent for detecting an immunologic material of the type described wherein a plurality of particles are employed each of which includes an immunologic counterpart of the material to be de ICC tected and onto which counterpart an indicator material is physically adsorbed, said indicator being released or aflixed by the presence of the immunologic material under test.
  • Another object of the present invention is to provide a process for producing the immunological reagent described herein.
  • the invention may best be described by reference to the process for producing the immunological reagent described herein.
  • the immunologic counterpart then chemically reacts by the formation of covalent bonds with the cellulosic derivative.
  • an indicator material is physically adsorbed onto the chemically bound immunological counterpart.
  • the physical adsorption of the indicator material can be carried out in a fluid suspension similar to that employed for the initial reaction.
  • the indicator materials hematoxylin, fiuorescein, and titan yellow can be employed in a fluid suspension.
  • the cellulosic derivative which is preferred is an aminobenzyl cellulose such as p-aminobenzyl cellulose or p-aminomethoxybenzyl cellulose.
  • the indicator material Prior to physically adsorbing the indicator material onto the immunologic counterpart of the particles it is preferable to block the reactivity of any of the reactive groups which have not been reacted with the immunological counterpart. This can be done by contacting the particles with a blocking dye such as beta-naphthol. Such a blocking dye is not necessary when the indicator material also functions as a blocking dye, as in the case of flourescent which both physically adsorbs to the immunologic counterparts and blocks the reactivity of any unreacted aminobenzyl groups.
  • a blocking dye such as beta-naphthol.
  • Both antigens and antibodies can be employed as the immunological counterpart materials which are chemically reacted with the cellulose derivative. Thus both antigens and antibodies can be detected by the immunological reagent of this invention.
  • Immunological materials which are particularly preferred are human myoglobin, human hemoglobin, human chorionic gonadotropin and their antibodies.
  • the class of antibody materials (gammaglobulin molecules modified to have integral reactive sites is represented by these and other chemically equivalent antibodies.
  • immunological counterpart materials allow similar observable effects when chemically bound to the cellulosic derivative particles of the present invention.
  • the process described above can be further illustrated by reference to the following reaction equations for each of the steps.
  • Part. has been used for the cellulosic derivative in particulate form which has reactive groups thereon
  • Ag has been used for an exemplary antigen material
  • the word indicator has been used for the indicator material which is either hematoxylin, fiuorescein, or titan yellow.
  • the first step of chemically reacting the cellulosic derivative in particulate form with the immunological counterpart (Ag) can be illustrated by the following equation:
  • Any unreacted groups of the initial reactive groups on the cellulosic derivative particles can be blocked by a blocking dye according to the following equation:
  • Equations 1-3 When an antibody type immunological reagent is to be made up according to Equations 1-3 the Ag is changed to Ab to denote an antibody. Equations 4-7 can be changed by substituting Ag for Ab, and by substituting Ab for Ag in each occurrence in order to illustrate the two different reactions of release and fixation of the indicator with their corresponding control equations for this type of reagent.
  • An effective means by which the release or the fixation of the indicator material can be visually observed is pro vided by placing a spot of the immunological reagent on a carrier strip of a bibulous material such as a piece of filter paper or chromatography paper, contacting an edge portion of the strip with a test sample and allowing the sample to be drawn into the bibulous carrier by capillary action.
  • a spot of the immunological reagent on a carrier strip of a bibulous material such as a piece of filter paper or chromatography paper, contacting an edge portion of the strip with a test sample and allowing the sample to be drawn into the bibulous carrier by capillary action.
  • release of the indicator such release will be shown by a moving front 9f the indicator material. There will be no change of the colored area formed by the reagent in the case of fixation.
  • bibulous carrier strip with the immunological reagent Another way of using bibulous carrier strip with the immunological reagent is to place the spot of the reagent on the carrier strip, and to then place a small quantity of the test sample directly on the reagent area after which an end of the strip can be contacted with a standard chromatographic fluid, such as a saline solution, which moves along the carrier by capillary action and gives a visual indication similar to that observed when test sample fluid is used alone.
  • a standard chromatographic fluid such as a saline solution
  • the cellulosic derivative particles are preferably made by reacting a purified cellulose with a nitrobenzyl chlo ride in an alkaline medium, and then treating with sodium hydrosulfite in order to form p-aminobenzyl cellulose particles.
  • the p-aminobenzyl groups can then be made reactive to immunological materials by reacting the particles with nitrous acid (HNO which can be conveniently formed by using a mixture of sodium nitrite (NaNOg) and a mineral acid such as hydrochloric acid (HCl). These reagents cause the production of diazonium groups, and the process is referred to as diazotization.
  • the diazotized particles can be directly coupled to immunological materials.
  • the blocking dye employed in the process of making the reagent as illustrated by Equation 2, above reacts directly with any of the unreacted aminobenzyl groups whether they are diazotized or not. It is presumed that all of the amino groups are diazotized so that the blocking dye reacts only with diazonium groups.
  • fluorescein when employed as the indicator material it also functions as a blocking dye for any unreacted diazonium groups. Hence, for this indicator material no blocking dye is technically needed, and Equations 2 and 3 above can be combined into a single equation. However, a blocking dye can be used with fluorescein if desired.
  • the release or fixation of the indicator material is due to the formation of secondary valence forces between the Ag, the Ab, and the indicator material.
  • the indicator material is released or its release is inhibited, i.e., it becomes fixed, by the relative strength of the binding forces of the indicator material with respect to the Ag or the Ab.
  • secondary valence forces are Van der Waals forces, coulombic forces, polar forces, hydrogen bonding, and hydrophobic bonding.
  • An immunological reagent capable of detecting the antibody to an unfractionated myoglobin sample is made up in the following manner. Particles of p-aminobenzyl cellulose in a fluid suspension are diazotized by reacting them with nitrous acid (HNO and the thus diazotized particles are then reacted with a myoglobin containing sample. Fluorescein is used as an indicator material by adding it to the fluid suspension of the treated particles.
  • the prepared reagent is then separated from the treatment fluid and washed several times, after which a drop of a concentrated suspension of the particles is placed onto a strip of filter paper and allowed to dry in order to provide a dry reagent area.
  • One end of the paper strip is then contacted with an unfractionated antiserum sample which is known to contain myoglobin antibodies. As the sample moves along the filter paper by capillary action the fluorescein indicator is released and is transported with the moving chromatographic fluid front.
  • This immunological reaction provides a definite visual effect which can be easily observed.
  • another strip of paper is prepared with the dried immunological reagent and is contacted with a serum sample which does not contain the myoglobin antibodies.
  • the sample moves along the paper by capillary action and no dye movement is observed as the fluid front moves beyond the reagent area.
  • control While it is not essential that a control be run with the normal serum samples, it is preferred to run a control so that the realease of the indicator material can be positively correlated with presence of the antibody in the test sample.
  • the movement of the fluorescein indicator material can be more easily viewed under an ultraviolet light which, while not essential, is preferred.
  • EXAMPLE 1 An immunological reagent for detecting the antibody to human myoglobin was prepared and placed onto a strip of filter paper in the form of a suspension and allowed to dry prior to its use for testing an unfractionated rabbit antiserum sample containing the antibody.
  • beta-naphthol dissolved in 2 N sodium hydroxide was diluted to 1 liter and adjusted to pH 8.
  • This blocking dye solution was reacted with the diazotized and sensitized immunological reagent and then the resulting particles were filtered off and suspended in ml. of water. Five (5) ml. of this suspension was then reacted with a 1% by weight fluorescein solution in distilled water.
  • the sensitized immunological reagent was collected by suction filtration and then a drop of a concentrated suspension thereof was placed onto a strip of filter paper and dried.
  • the testing was carried out by contacting an edge of the thus prepared strip with the rabbit anti-serum sample containing antibody to human myoglobin with the result that the fluorescein dye moved with the advancing liquid front.
  • a control test wherein another strip of filter paper prepared with the same immunological reagent was contacted with a NRS sample, no movement of the fluorescein dye with the advancing liquid front was observed.
  • the tests were conducted under both ultraviolet light and polychromatic light.
  • EXAMPLE 2 An immunological reagent for detecting the antibody to human hemoglobin was prepared in the same manner as for Example 1 by using a solution of 11 mg. of human hemoglobin in 10 ml. of water in place of the myoglobin in that example.
  • the prepared immunological reagent was placed onto filter paper strips in the same manner as above, and the fluorescein indicator material was observed to move with the advancing chromatographic fluid front when the strips were contacted with a rabbit antiserum fraction containing hemoglobin antibodies. No indicator material was released when a NRS control sample was employed.
  • EXAMPLE 3 A reagent was made up to directly detect the myoglobin in an unfractionated serum sample. The reagent was placed onto filter paper strips and tested in the manner above set out.
  • diazotized p-aminobenzyl cellulose was prepared as in Example 1 and suspended in 20 ml. of a pH 7 phosphate buffer. To this suspension 4 to 12 ml. of an antiserum to myoglobin were added, after which the mixture was allowed to react for twelve (12) hours. A blocking dye, beta-naphthol, was then used as in Example 1. A 1% water solution of hematoxylin was mixed with 5 ml. of the prepared suspension, and then 2 ml. of
  • EXAMPLE 4 An immunological reagent was prepared in the same manner as for Example 3 except that for the indicator material a 1% by weight solution of fluorescein in distilled water was employed. A release of the fluorescein dye was observed when the prepared paper strips were contacted with a human urine sample containing myoglobin, and no release of the indicator material was observed when such paper strips were contacted with a myoglobin-free human urine-sample.
  • Example 3 was repeated using an antiserum to HCG, rather than the antiserum to myoglobin, and employing a 1% solution of titan yellow in distilled water as the indicator material.
  • the titan yellow was seen to move with the advancing fluid front, whereas upon contact of such strips with a HCG-free solution, no release of the indicator material was observed.
  • EXAMPLE 6 Diazotized p-arninobenzyl cellulose was prepared as in Example 1 and then a solution containing mg. of HCG (2500 I.U./mg.) dissolved in 7 ml. of saline solution which had been previously adjusted to pH 7 were added thereto. The suspension was stirred for one (1) hour at 0 C. and the unreacted diazonium groups were blocked with beta-naphthol, after which the particles were reacted with fluorescein.
  • EXAMPLE 7 An immunological reagent was prepared to detect the presence of human hemoglobin in test solutions or in serum samples. Upon placing the indicator material on a strip of filter paper, drying, and contacting it with a test solution no movement of the indicator material with the advancing fluid front was observed. However, when another identically prepared paper strip was contacted with a saline control solution, advancement of the indicator material with the fluid front was observed. The indication from this observation is that when the human hemoglobin from the serum sample contacts the indicator material, the indicator material becomes fixed and does not move, whereas in the case where there is no human hemoglobin present the dye is free to move with the chromatographic advancing fluid front.
  • the immunological reagent of this example is prepared by making up a suspension of a diazotized p-aminobenzyl cellulose in the manner set out in Example 1 above. Twenty (20) ml. of the cellulose particles suspended in a pH 7 phosphate buffer were reacted with rabbit antiserum to hemoglobin by contacting the suspension with from 4 to 12 ml. of the antiserum. The unreacted diazonium groups were blocked with beta-naphthol as in Example 1. Five (5) ml. of the cellulose suspension were then mixed with 3 ml. of a 1% water solution of hematoxylin and 2 ml. of a 2% water solution of ferrous sulphate. The thus prepared immunological indicator particles were recovered by vacuum filtration and washed thoroughly with water, after which they were placed onto strips of filter paper as above set out.
  • EXAMPLE 8 An immunogolical reagent was prepared following Example 8 with the substitution of gamma-globulin from a rabbit antiserum to HCG as the sensitizing material. When paper strips prepared therefrom were contacted with a solution containing the rabbit antibody to the gamma-globulin,
  • EXAMPLE 10 Following Example 7, an immunological indicator was made employing the specific gamma-globulin fraction from mule serum containing antibodies to HCG in the place of the antiserum to hemoglobin of that example.
  • beta-naphthol was additionally employed in order to assure that all unreacted diazonium groups were blocked.
  • Known pregnancy urine was used as a test fluid.
  • the immunological reagent prepared was placed on a filter paper strip, dried and then contacted with the test fluid. No release of the hematoxylin indicator material was observed. However, when the reagents were tested against known non-pregnancy urine samples, release of the indicator material and movement with the advancement of the chromatographic fluid front was observed.
  • An immunological reagent comprising paraaminobenzylcellulose particles covalently bound to a substance selected from the group consisting of human myoglobin, human hemoglobin, human chorionic gonadotropin and modified gamma globulin fraction of an antiserum to which is physically adsorbed thereon a dye selected from the group consisting of fluorescein, hematoxylin and titan yellow.
  • a reagent as in claim 1 comprising paraaminobenzylcellulose particles covalently bound to human myoglobin on which fluorescein is physically adsorbed.
  • a reagent as in claim 1 comprising paraaminobenzylcellulose particles covalently bound to human hemoglobin on which fluorescein is physically adsorbed.
  • a reagent as in claim 1 comprising paraaminobenzylcellulose particles covalently bound to human myoglobin on which hematoxylin is physically adsorbed.
  • a reagent as in claim 1 comprising paraaminobenzylcellulose particles covalently bound to human chorionic gonadotropin on which titan yellow is physically adsorbed.
  • a reagent as in claim 1 comprising paraaminobenzylcellulose particles covalently bound to the gamma globulin fraction of rabbit antiserum on which hematoxylin is physically adsorbed.

Abstract

IMMUNOLOGICALLY SPECIFIC REAGENTS ARE PREPARED BY CHEMICALLY LINKING THE IMMUNOLOGICAL COUNTERPART OF THE MATERIAL TO BE DETECTED TO A CELLULOSIC DERIVATIVE IN PARTICULATE FORM AND THEN PHYSICALLY ADSORBING NTO THE IMMUNOLOGIACL COUNTERPART AN ACIDIC INDICATOR MATERIAL. HEMATOXYLIN, FLUORESCEIN, AND TITAN YELOOW ARE USABLE AS INDICATOR MATERIALS. WHEN A FLUID SAMPLE CONTAINING THE IMMUNOLOGICAL MATERIAL TO BE DETECTED COMES IN CONTACT WITH THE IMMUNOLOGICALLY SPECIFIC REAGENT, THE INDICATOR MATERIAL SHOWS ONE OF TWO VISIBLE EFFECTS, SEPARATION FROM THE PARTICLES OR FIXATION TO THE PARTICLES. THE SPECIFIC TYPE OF VISIBLE EFFECT IS DETERMINED BY THE PARTICULAR IMMUNOLOGIC COUNTERPART EMPLOYED. FOR EACH REACTION A CONTROL FLUID SAMPLE WHICH DOES NOT CONTAIN THE IMMUNOLOGICAL MATERIAL UNDER TEST SHOWS AN OPPOSITE REACTION. A CHROMATOGRAPHIC TECHNIQUE CAN BE USED TO DISPLAY THE VISIBLE EFFECTS.

Description

United States Patent 3,641,235 IMMUNOLOGICAL REAGENT AND PROCESS FOR MAKING SAME Margaret Rozman Weiss, Florissant, M0,, assignor to Miles Laboratories, Inc., Elkhart, Ind. No Drawing. Filed Nov. 1, 1968, Ser. No. 772,852 Int. Cl. G01n 31/22 US. Cl. 424-8 6 Claims ABSTRACT OF THE DISCLOSURE Immunologically specific reagents are prepared by chemically linking the immunological counterpart of the material to be detected to a cellulosic derivative in particulate form and then physically adsorbing onto the immunological counterpart an acidic indicator material. Hematoxylin, fiuorescein, and titan yellow are usable as indicator materials. When a fluid sample containing the immunological material to be detected comes in contact with the immunologically specific reagent, the indicator material shows one of two visible effects, separation from the particles or fixation to the particles. The specific type of visible effect is determined by the particular immunologic counterpart employed. For each reaction a control fluid sample which does not contain the immunological material under test shows an opposite reaction. A chromatographic technique can be used to display the visible effects.
BACKGROUND OF THE INVENTION This invention relates to an immunologically specific reagent which can be employed to obtain a visual readout for immunological reactions.
Most of the prior art immunological tests are based upon the principle of agglutination or inhibition of agglutination in which the formation of visually discernible aggregates of particles is the ultimate visible effect. The aggregates of particles form different patterns depending upon the presence or absence of the immunological material material under test. These patterns are occasionally diflicult to interpret, particularly for persons who have not had adequate experience with such tests. Other immunological testing is even more complex, requires additional supporting laboratory materials and is generally not used on a routine basis by medical technicians. These types of testing involve such procedures as gel diffusion and electrophoresis followed by gel diffusion.
It has now been discovered that an immunologically specific reagent which gives an easily discernible readout can be formed from a plurality of particles, each having a core of a cellulosic derivative in particulate form chemically linked through covalent bonding to the immunological counterpart of the material to be detected, there being physically adsorbed onto said immunological counterpart an acidic indicator material such as hematoxylin, fiuorescein, and titan yellow. Upon contact with a fluid sample containing the immunologic material under test the indicator material will either be released from the particle or will become affixed thereto through chemical action, the specific phenomenon depending upon the particular immunologic counterpart employed. The actual testing can be easily carried out by utilizing a control fluid sample which does not contain the immunologic material under test, since the sample will give the opposite phenomenon.
It is, therefore, an object of the present invention to provide an immunological reagent for detecting an immunologic material of the type described wherein a plurality of particles are employed each of which includes an immunologic counterpart of the material to be de ICC tected and onto which counterpart an indicator material is physically adsorbed, said indicator being released or aflixed by the presence of the immunologic material under test.
Another object of the present invention is to provide a process for producing the immunological reagent described herein.
SUMMARY OF THE INVENTION The invention may best be described by reference to the process for producing the immunological reagent described herein. A fluid suspension of a cellulosic derivative in particulate form, the particles of which have reactive groups on the surfaces thereof, is contacted with the immunological counterpart to the immunological material which is to be detected. The immunologic counterpart then chemically reacts by the formation of covalent bonds with the cellulosic derivative. Next an indicator material is physically adsorbed onto the chemically bound immunological counterpart. The physical adsorption of the indicator material can be carried out in a fluid suspension similar to that employed for the initial reaction. The indicator materials hematoxylin, fiuorescein, and titan yellow can be employed in a fluid suspension. The cellulosic derivative which is preferred is an aminobenzyl cellulose such as p-aminobenzyl cellulose or p-aminomethoxybenzyl cellulose.
Prior to physically adsorbing the indicator material onto the immunologic counterpart of the particles it is preferable to block the reactivity of any of the reactive groups which have not been reacted with the immunological counterpart. This can be done by contacting the particles with a blocking dye such as beta-naphthol. Such a blocking dye is not necessary when the indicator material also functions as a blocking dye, as in the case of flourescent which both physically adsorbs to the immunologic counterparts and blocks the reactivity of any unreacted aminobenzyl groups.
Both antigens and antibodies can be employed as the immunological counterpart materials which are chemically reacted with the cellulose derivative. Thus both antigens and antibodies can be detected by the immunological reagent of this invention. Immunological materials which are particularly preferred are human myoglobin, human hemoglobin, human chorionic gonadotropin and their antibodies. The class of antibody materials (gammaglobulin molecules modified to have integral reactive sites is represented by these and other chemically equivalent antibodies.
Other immunological counterpart materials allow similar observable effects when chemically bound to the cellulosic derivative particles of the present invention. The following are exemplary of such other immunological materials: bovine serum albumin, human serum albumin, ovalbumin, blood group A and -B antigens, unmodified gamma-globulins, beta-globulins, beta-lipoprotein, and alpha-globulins of the human plasma fraction, anti-C-reactive protein derived from either the goat or the sheep, diphtheria antitoxin, tetanus antitoxin, human transferrin, thyro-globulin, trichinella anti-gen and similar antigenic materials of either pathogenic or natural organisms, leutininzing hormone and insulin.
The process described above can be further illustrated by reference to the following reaction equations for each of the steps. In these equations Part. has been used for the cellulosic derivative in particulate form which has reactive groups thereon, Ag has been used for an exemplary antigen material, the word indicator has been used for the indicator material which is either hematoxylin, fiuorescein, or titan yellow. The first step of chemically reacting the cellulosic derivative in particulate form with the immunological counterpart (Ag) can be illustrated by the following equation:
(1) Part.+Ag Part.-Ag
Any unreacted groups of the initial reactive groups on the cellulosic derivative particles can be blocked by a blocking dye according to the following equation:
(2) Part.Ag blocking dye Part.Ag
blocking dye The prepared particles which have the immunological counterpart attached thereto through covalent bonds can then be reacted with one of the above indicator materials according to the following equation:
(3) Part-Ag indicator Part.-Ag indicator blocking dye blocking dye When used to detect an antibody (Ab), i.e., the immunologic material is specific to the antigen of the prepared immunological reagent, the following equation describes the reaction when the indicator is released:
4 Part.-Ag indicator Ab Part.-Ag Ab indicator blocking dye blocking dye In order to demonstrate the reaction a control may be run according to the following equation:
(5) Part-Ag indicator normal rabbit serum (NRS) blocking dye N 0 change When the indicator becomes affixed to the particle by reason of contact between the antibody being sought and the prepared particle the following equation describes the reaction:
(6) Part.-Ag indicator Ab Part-Ag indicator Ab blocking dye blocking dye The corresponding reaction for the control test fluid wherein the indicator is released from the particle is illustrated by the following equation:
(7) Part-Ag indicator NRS blocking dye Part. Ag NBS indicator blocking dye Thus, in the indicator release situation illustrated by Equation 4, the indicator is released when the immunological material being detected (Ab) contacts the immunological reagent. When the test sample does not contain the Ab the indicator is not released and there is no change as illustrated by Equation 5. In the case of the indicator fixation situation when the Ab contacts the reagent, there is no change since the indicator becomes afiixed, as illustrated by Equation 6, and does not release from the Ag on the particle. On the other hand when the prepared particle is contacted with a control sample such as normal rabbit serum (NRS) the rabbit serum interacts with the Ag to form a complex which then allows the indicator to be released as shown by Equation 7.
When an antibody type immunological reagent is to be made up according to Equations 1-3 the Ag is changed to Ab to denote an antibody. Equations 4-7 can be changed by substituting Ag for Ab, and by substituting Ab for Ag in each occurrence in order to illustrate the two different reactions of release and fixation of the indicator with their corresponding control equations for this type of reagent.
An effective means by which the release or the fixation of the indicator material can be visually observed is pro vided by placing a spot of the immunological reagent on a carrier strip of a bibulous material such as a piece of filter paper or chromatography paper, contacting an edge portion of the strip with a test sample and allowing the sample to be drawn into the bibulous carrier by capillary action. In the case of release of the indicator, such release will be shown by a moving front 9f the indicator material. There will be no change of the colored area formed by the reagent in the case of fixation. Another way of using bibulous carrier strip with the immunological reagent is to place the spot of the reagent on the carrier strip, and to then place a small quantity of the test sample directly on the reagent area after which an end of the strip can be contacted with a standard chromatographic fluid, such as a saline solution, which moves along the carrier by capillary action and gives a visual indication similar to that observed when test sample fluid is used alone.
The cellulosic derivative particles are preferably made by reacting a purified cellulose with a nitrobenzyl chlo ride in an alkaline medium, and then treating with sodium hydrosulfite in order to form p-aminobenzyl cellulose particles. The p-aminobenzyl groups can then be made reactive to immunological materials by reacting the particles with nitrous acid (HNO which can be conveniently formed by using a mixture of sodium nitrite (NaNOg) and a mineral acid such as hydrochloric acid (HCl). These reagents cause the production of diazonium groups, and the process is referred to as diazotization. The diazotized particles can be directly coupled to immunological materials. Likewise, the blocking dye employed in the process of making the reagent as illustrated by Equation 2, above, reacts directly with any of the unreacted aminobenzyl groups whether they are diazotized or not. It is presumed that all of the amino groups are diazotized so that the blocking dye reacts only with diazonium groups.
As mentioned above, when fluorescein is employed as the indicator material it also functions as a blocking dye for any unreacted diazonium groups. Hence, for this indicator material no blocking dye is technically needed, and Equations 2 and 3 above can be combined into a single equation. However, a blocking dye can be used with fluorescein if desired.
It is believed that the release or fixation of the indicator material is due to the formation of secondary valence forces between the Ag, the Ab, and the indicator material. The indicator material is released or its release is inhibited, i.e., it becomes fixed, by the relative strength of the binding forces of the indicator material with respect to the Ag or the Ab. Among these secondary valence forces are Van der Waals forces, coulombic forces, polar forces, hydrogen bonding, and hydrophobic bonding.
PREFERRED EMBODIMENT OF THE INVENTION An immunological reagent capable of detecting the antibody to an unfractionated myoglobin sample is made up in the following manner. Particles of p-aminobenzyl cellulose in a fluid suspension are diazotized by reacting them with nitrous acid (HNO and the thus diazotized particles are then reacted with a myoglobin containing sample. Fluorescein is used as an indicator material by adding it to the fluid suspension of the treated particles.
The prepared reagent is then separated from the treatment fluid and washed several times, after which a drop of a concentrated suspension of the particles is placed onto a strip of filter paper and allowed to dry in order to provide a dry reagent area. One end of the paper strip is then contacted with an unfractionated antiserum sample which is known to contain myoglobin antibodies. As the sample moves along the filter paper by capillary action the fluorescein indicator is released and is transported with the moving chromatographic fluid front.
This immunological reaction provides a definite visual effect which can be easily observed.
In order to show a control for this reaction another strip of paper is prepared with the dried immunological reagent and is contacted with a serum sample which does not contain the myoglobin antibodies. The sample moves along the paper by capillary action and no dye movement is observed as the fluid front moves beyond the reagent area.
While it is not essential that a control be run with the normal serum samples, it is preferred to run a control so that the realease of the indicator material can be positively correlated with presence of the antibody in the test sample.
The movement of the fluorescein indicator material can be more easily viewed under an ultraviolet light which, while not essential, is preferred.
EXAMPLE 1 An immunological reagent for detecting the antibody to human myoglobin was prepared and placed onto a strip of filter paper in the form of a suspension and allowed to dry prior to its use for testing an unfractionated rabbit antiserum sample containing the antibody.
One (1) g. of paraminobenzyl cellulose particles was suspended in 25 ml. of 2 N HCl and cooled to C. Five ml. of a 14% solution of sodium nitrite in water was added dropwise to form nitrous acid and the mixture was allowed to stand at 0 C. for one hour. The treated cellulose was then vacuum filtered and washed with 50 ml. of 5% sodium acetate in water, 50 ml. of 5% urea in water and 50 ml. of distilled water in succession. The diazotized cellulose was then suspended in ml. of water containing 178 mg. of previously purified human myoglobin. The resulting suspension was stirred for two (2) hours and then collected by filtration. Thereafter 1 g. of beta-naphthol dissolved in 2 N sodium hydroxide was diluted to 1 liter and adjusted to pH 8. This blocking dye solution was reacted with the diazotized and sensitized immunological reagent and then the resulting particles were filtered off and suspended in ml. of water. Five (5) ml. of this suspension was then reacted with a 1% by weight fluorescein solution in distilled water. The sensitized immunological reagent was collected by suction filtration and then a drop of a concentrated suspension thereof was placed onto a strip of filter paper and dried.
The testing was carried out by contacting an edge of the thus prepared strip with the rabbit anti-serum sample containing antibody to human myoglobin with the result that the fluorescein dye moved with the advancing liquid front. In a control test, wherein another strip of filter paper prepared with the same immunological reagent was contacted with a NRS sample, no movement of the fluorescein dye with the advancing liquid front was observed. The tests were conducted under both ultraviolet light and polychromatic light.
EXAMPLE 2 An immunological reagent for detecting the antibody to human hemoglobin was prepared in the same manner as for Example 1 by using a solution of 11 mg. of human hemoglobin in 10 ml. of water in place of the myoglobin in that example.
The prepared immunological reagent was placed onto filter paper strips in the same manner as above, and the fluorescein indicator material was observed to move with the advancing chromatographic fluid front when the strips were contacted with a rabbit antiserum fraction containing hemoglobin antibodies. No indicator material was released when a NRS control sample was employed.
EXAMPLE 3 A reagent Was made up to directly detect the myoglobin in an unfractionated serum sample. The reagent was placed onto filter paper strips and tested in the manner above set out.
In making the reagent, diazotized p-aminobenzyl cellulose was prepared as in Example 1 and suspended in 20 ml. of a pH 7 phosphate buffer. To this suspension 4 to 12 ml. of an antiserum to myoglobin were added, after which the mixture was allowed to react for twelve (12) hours. A blocking dye, beta-naphthol, was then used as in Example 1. A 1% water solution of hematoxylin was mixed with 5 ml. of the prepared suspension, and then 2 ml. of
a 2% aqueous ferrous sulfate solution was added. The prepared reagent was then collected by filtration and washed.
Upon being dried onto filter paper strips and contacted wth a human urine sample containing myoglobin the hematoxylin dye was observed to move with the advancing with myoglobin-free human urine sample.
EXAMPLE 4 An immunological reagent was prepared in the same manner as for Example 3 except that for the indicator material a 1% by weight solution of fluorescein in distilled water was employed. A release of the fluorescein dye was observed when the prepared paper strips were contacted with a human urine sample containing myoglobin, and no release of the indicator material was observed when such paper strips were contacted with a myoglobin-free human urine-sample.
EXAMPLE 5 Example 3 was repeated using an antiserum to HCG, rather than the antiserum to myoglobin, and employing a 1% solution of titan yellow in distilled water as the indicator material. When paper strips prepared with the resulting immunological reagent were contacted with a solution containing HCG, the titan yellow was seen to move with the advancing fluid front, whereas upon contact of such strips with a HCG-free solution, no release of the indicator material was observed.
EXAMPLE 6 Diazotized p-arninobenzyl cellulose was prepared as in Example 1 and then a solution containing mg. of HCG (2500 I.U./mg.) dissolved in 7 ml. of saline solution which had been previously adjusted to pH 7 were added thereto. The suspension was stirred for one (1) hour at 0 C. and the unreacted diazonium groups were blocked with beta-naphthol, after which the particles were reacted with fluorescein.
When paper strips prepared with this indicator were contacted with the rabbit antibody to HCG the fluorescein indicator material was released and moved with the fluid front. In the case of contact with a NRS sample no release of the fluorescein occurred.
EXAMPLE 7 An immunological reagent was prepared to detect the presence of human hemoglobin in test solutions or in serum samples. Upon placing the indicator material on a strip of filter paper, drying, and contacting it with a test solution no movement of the indicator material with the advancing fluid front was observed. However, when another identically prepared paper strip was contacted with a saline control solution, advancement of the indicator material with the fluid front was observed. The indication from this observation is that when the human hemoglobin from the serum sample contacts the indicator material, the indicator material becomes fixed and does not move, whereas in the case where there is no human hemoglobin present the dye is free to move with the chromatographic advancing fluid front.
The immunological reagent of this example is prepared by making up a suspension of a diazotized p-aminobenzyl cellulose in the manner set out in Example 1 above. Twenty (20) ml. of the cellulose particles suspended in a pH 7 phosphate buffer were reacted with rabbit antiserum to hemoglobin by contacting the suspension with from 4 to 12 ml. of the antiserum. The unreacted diazonium groups were blocked with beta-naphthol as in Example 1. Five (5) ml. of the cellulose suspension were then mixed with 3 ml. of a 1% water solution of hematoxylin and 2 ml. of a 2% water solution of ferrous sulphate. The thus prepared immunological indicator particles were recovered by vacuum filtration and washed thoroughly with water, after which they were placed onto strips of filter paper as above set out.
Upon contacting the strips with a serum sample containing hemoglobin no advancement of the indicator material with the moving liquid front was observed. However, when the strips were contacted with a hemoglobinfree serum sample movement of the hematoxylin was observed.
EXAMPLE 8 0 An immunogolical reagent was prepared following Example 8 with the substitution of gamma-globulin from a rabbit antiserum to HCG as the sensitizing material. When paper strips prepared therefrom were contacted with a solution containing the rabbit antibody to the gamma-globulin,
no movement of the hematoxylin indicator material, was observed. However, when the paper strips were contacted with a NRS control, movement of the indicator material with the chromatographic fluid was observed.
EXAMPLE 10 Following Example 7, an immunological indicator was made employing the specific gamma-globulin fraction from mule serum containing antibodies to HCG in the place of the antiserum to hemoglobin of that example.
In this instance beta-naphthol was additionally employed in order to assure that all unreacted diazonium groups were blocked. Known pregnancy urine was used as a test fluid.
The immunological reagent prepared was placed on a filter paper strip, dried and then contacted with the test fluid. No release of the hematoxylin indicator material was observed. However, when the reagents were tested against known non-pregnancy urine samples, release of the indicator material and movement with the advancement of the chromatographic fluid front was observed.
What is claimed is:
1. An immunological reagent comprising paraaminobenzylcellulose particles covalently bound to a substance selected from the group consisting of human myoglobin, human hemoglobin, human chorionic gonadotropin and modified gamma globulin fraction of an antiserum to which is physically adsorbed thereon a dye selected from the group consisting of fluorescein, hematoxylin and titan yellow.
2. A reagent as in claim 1 comprising paraaminobenzylcellulose particles covalently bound to human myoglobin on which fluorescein is physically adsorbed.
3. A reagent as in claim 1 comprising paraaminobenzylcellulose particles covalently bound to human hemoglobin on which fluorescein is physically adsorbed.
4. A reagent as in claim 1 comprising paraaminobenzylcellulose particles covalently bound to human myoglobin on which hematoxylin is physically adsorbed.
5. A reagent as in claim 1 comprising paraaminobenzylcellulose particles covalently bound to human chorionic gonadotropin on which titan yellow is physically adsorbed.
6. A reagent as in claim 1 comprising paraaminobenzylcellulose particles covalently bound to the gamma globulin fraction of rabbit antiserum on which hematoxylin is physically adsorbed.
Ling, J. Med. Lab. Tech., pp. 94101, November 1960. Lillie, Histopathologic Technic and Practical Histochemistry, McGraw-Hill Book Company, N.Y., 1965.
ALBERT T. MEYERS, Primary Examiner D. J. FUNDERB'URK, Assistant Examiner US. Cl. X.R. 424-11, 12
Po-wsb UNITED sTATEs PATENT OFFICE CERTIFICATE OF CORRECTION PatentNo. 3.641335 Dated Feb. 8, 1972 Inventor(s Margaret Rozman Weiss It is certified that error appears in the above-identified patent and that said Letters Patent are hereby corrected as shown below:
I'" 1 Column 1 line 38 Ninth word should read these rather than The Column 2 line 36 v First word should read fluorescein* rather than "flourescent" Column 2 line 48 Immediately following the first word insert Column 2 line 62 I I Second word should read leutinizing rather than "leutininzing" Column 3 line 18 Insert the word which between the words "material? and Column 4 line 13 Insert the word powdered between the words "purified" and "cellulose" Column 6 line 5 First word should read with rather than "wth" Column ,6 line 7 Between the words "ing" and "with" insert fluid front. No release was observed in the case of contact v UNITED STATES PATENT OFFICE I Page 2 CERTIFICATE OF CORRECTION Patent No. 3,641,235 Dated February 8, 1912 Inventor) Margaret Rozman Weiss It is certified thaterror appears in the above-identified patent and that said Letters Patent are hereby corrected as shown below:
Column 6, line 7 Also, between the words "with" and "myoglobin free" insert the word a J Signed and sealed this'l9th day of March 19m.
(SEAL) Attest:
EDWARD M.FLETCHER,JR. C. MARSHALL DAMN Attesting Officer Commissioner of Patents
US772852A 1968-11-01 1968-11-01 Immunological reagent and process for making same Expired - Lifetime US3641235A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US77285268A 1968-11-01 1968-11-01

Publications (1)

Publication Number Publication Date
US3641235A true US3641235A (en) 1972-02-08

Family

ID=25096449

Family Applications (1)

Application Number Title Priority Date Filing Date
US772852A Expired - Lifetime US3641235A (en) 1968-11-01 1968-11-01 Immunological reagent and process for making same

Country Status (4)

Country Link
US (1) US3641235A (en)
DE (1) DE1954974A1 (en)
FR (1) FR2022421A1 (en)
GB (1) GB1294463A (en)

Cited By (30)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3966897A (en) * 1973-04-02 1976-06-29 Marine Colloids, Inc. Medium for use in bioassay and method of using same
US4018884A (en) * 1975-06-26 1977-04-19 Hoffmann-La Roche Inc. Fluorogenic materials and labeling techniques
US4144306A (en) * 1977-01-14 1979-03-13 Eastman Kodak Company Element for analysis of liquids
US4160016A (en) * 1977-05-16 1979-07-03 Syva Company Receptor fluorescent immunoassay
US4161515A (en) * 1973-10-02 1979-07-17 Syva Company Double receptor fluorescent immunoassay
US4166105A (en) * 1973-07-30 1979-08-28 Block Engineering, Inc. Dye tagged reagent
US4169137A (en) * 1974-12-20 1979-09-25 Block Engineering, Inc. Antigen detecting reagents
JPS54158995A (en) * 1978-06-06 1979-12-15 Green Cross Corp Hemoglobin measuring kit
WO1980000455A1 (en) * 1978-08-15 1980-03-20 R Longenecker Colorimetric immunoassay employing a chromoprotein label
US4201763A (en) * 1975-10-09 1980-05-06 Bio-Rad Laboratories, Inc. Solid phase immunofluorescent assay method
US4231750A (en) * 1977-12-13 1980-11-04 Diagnostic Reagents, Inc. Methods for performing chemical assays using fluorescence and photon counting
US4254096A (en) * 1979-10-04 1981-03-03 Bio-Rad Laboratories, Inc. Reagent combination for solid phase immunofluorescent assay
US4256631A (en) * 1979-03-22 1981-03-17 Kowa Company, Limited Process for the preparation of immunoglobulin for intravenous administration
JPS56106154A (en) * 1980-01-17 1981-08-24 Suovaniemi Finnpipette Detection method of hemoglobin in night soil
EP0051213A1 (en) * 1980-10-30 1982-05-12 Miles Laboratories, Inc. Homogeneous specific binding assay device, method for preparing it and analytical method using the device
US4372883A (en) * 1979-09-05 1983-02-08 Kabushiki Kaisha Hayashibara Seibutsu Kagaku Kenkyujo Process for the production of vaccine
US4373932A (en) * 1980-01-11 1983-02-15 Akzona Incorporated Application of water-dispersible hydrophobic dyes or pigments as labels in immunoassays
US4582811A (en) * 1983-02-02 1986-04-15 Australian Monoclonal Development Pty. Ltd. Method and diagnostic aid for detecting occult faecal blood
US4668619A (en) * 1980-10-30 1987-05-26 Miles Laboratories, Inc. Multilayer homogeneous specific binding assay device
US4670381A (en) * 1985-07-19 1987-06-02 Eastman Kodak Company Heterogeneous immunoassay utilizing horizontal separation in an analytical element
US5053054A (en) * 1988-09-12 1991-10-01 Ortho Pharmaceutical Corporation Methods and reagents for staining intracellular components
US20060040258A1 (en) * 2004-08-23 2006-02-23 Huiyan Guo Water-soluble conjugates and methods of preparation
US20060205090A1 (en) * 2005-03-14 2006-09-14 Newton Michael W Water-soluble conjugates for electrochemical detection
CN100424500C (en) * 2004-08-27 2008-10-08 陈丽君 Cereal distilled liquor test agent
WO2012099897A1 (en) 2011-01-18 2012-07-26 Symbolics, Llc Lateral flow assays using two dimensional features
WO2014012077A1 (en) 2012-07-13 2014-01-16 Genisphere, Llc Lateral flow assays using dna dendrimers
WO2014015076A1 (en) 2012-07-18 2014-01-23 Symbolics, Llc Lateral flow assays using two dimensional features
WO2015038978A1 (en) 2013-09-13 2015-03-19 Symbolics, Llc Lateral flow assays using two dimensional test and control signal readout patterns
US9414813B2 (en) 2009-02-16 2016-08-16 Express Diagnostics Int'l, Inc. Device for assaying analytes in bodily fluids
CN107782891A (en) * 2017-10-19 2018-03-09 天津医科大学 A kind of construction method of multi-functional upper conversion nano platform

Cited By (44)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3966897A (en) * 1973-04-02 1976-06-29 Marine Colloids, Inc. Medium for use in bioassay and method of using same
US4166105A (en) * 1973-07-30 1979-08-28 Block Engineering, Inc. Dye tagged reagent
US4161515A (en) * 1973-10-02 1979-07-17 Syva Company Double receptor fluorescent immunoassay
US4169137A (en) * 1974-12-20 1979-09-25 Block Engineering, Inc. Antigen detecting reagents
US4018884A (en) * 1975-06-26 1977-04-19 Hoffmann-La Roche Inc. Fluorogenic materials and labeling techniques
US4201763A (en) * 1975-10-09 1980-05-06 Bio-Rad Laboratories, Inc. Solid phase immunofluorescent assay method
US4144306A (en) * 1977-01-14 1979-03-13 Eastman Kodak Company Element for analysis of liquids
US4160016A (en) * 1977-05-16 1979-07-03 Syva Company Receptor fluorescent immunoassay
US4231750A (en) * 1977-12-13 1980-11-04 Diagnostic Reagents, Inc. Methods for performing chemical assays using fluorescence and photon counting
JPS54158995A (en) * 1978-06-06 1979-12-15 Green Cross Corp Hemoglobin measuring kit
JPS6114466B2 (en) * 1978-06-06 1986-04-18 Green Cross Corp
WO1980000455A1 (en) * 1978-08-15 1980-03-20 R Longenecker Colorimetric immunoassay employing a chromoprotein label
US4302536A (en) * 1978-08-15 1981-11-24 Longenecker Robert W Colorimetric immunoassay process
US4256631A (en) * 1979-03-22 1981-03-17 Kowa Company, Limited Process for the preparation of immunoglobulin for intravenous administration
US4372883A (en) * 1979-09-05 1983-02-08 Kabushiki Kaisha Hayashibara Seibutsu Kagaku Kenkyujo Process for the production of vaccine
US4254096A (en) * 1979-10-04 1981-03-03 Bio-Rad Laboratories, Inc. Reagent combination for solid phase immunofluorescent assay
US4373932A (en) * 1980-01-11 1983-02-15 Akzona Incorporated Application of water-dispersible hydrophobic dyes or pigments as labels in immunoassays
JPH0121907B2 (en) * 1980-01-17 1989-04-24 Komandeiiteiyuuteio Fuinpipetsute Osumo Ee Suobaniemi
JPS56106154A (en) * 1980-01-17 1981-08-24 Suovaniemi Finnpipette Detection method of hemoglobin in night soil
EP0051213A1 (en) * 1980-10-30 1982-05-12 Miles Laboratories, Inc. Homogeneous specific binding assay device, method for preparing it and analytical method using the device
US4668619A (en) * 1980-10-30 1987-05-26 Miles Laboratories, Inc. Multilayer homogeneous specific binding assay device
US4582811A (en) * 1983-02-02 1986-04-15 Australian Monoclonal Development Pty. Ltd. Method and diagnostic aid for detecting occult faecal blood
US4670381A (en) * 1985-07-19 1987-06-02 Eastman Kodak Company Heterogeneous immunoassay utilizing horizontal separation in an analytical element
US5053054A (en) * 1988-09-12 1991-10-01 Ortho Pharmaceutical Corporation Methods and reagents for staining intracellular components
US20060040258A1 (en) * 2004-08-23 2006-02-23 Huiyan Guo Water-soluble conjugates and methods of preparation
CN100424500C (en) * 2004-08-27 2008-10-08 陈丽君 Cereal distilled liquor test agent
US20060205090A1 (en) * 2005-03-14 2006-09-14 Newton Michael W Water-soluble conjugates for electrochemical detection
US20060216704A1 (en) * 2005-03-14 2006-09-28 Newton Michael W Water-soluble conjugates for electrochemical detection
US10076314B2 (en) 2009-02-16 2018-09-18 Express Diagnostics Int'l, Inc. Device for assaying analytes in bodily fluids
US9462998B2 (en) 2009-02-16 2016-10-11 Express Diagnostics Int'l, Inc. Device for assaying analytes in bodily fluids
US9414813B2 (en) 2009-02-16 2016-08-16 Express Diagnostics Int'l, Inc. Device for assaying analytes in bodily fluids
WO2012099897A1 (en) 2011-01-18 2012-07-26 Symbolics, Llc Lateral flow assays using two dimensional features
US11016090B2 (en) 2011-01-18 2021-05-25 Symbolics, Llc Lateral flow assays using two dimensional features
EP3187876A1 (en) 2011-01-18 2017-07-05 Symbolics, LLC Lateral flow assays using two dimensional features
US8486717B2 (en) 2011-01-18 2013-07-16 Symbolics, Llc Lateral flow assays using two dimensional features
US9874576B2 (en) 2011-01-18 2018-01-23 Symbolics, Llc Lateral flow assays using two dimensional features
US9851366B2 (en) 2011-01-18 2017-12-26 Symbolics, Llc Lateral flow assays using two dimensional features
WO2014012077A1 (en) 2012-07-13 2014-01-16 Genisphere, Llc Lateral flow assays using dna dendrimers
US9651549B2 (en) 2012-07-13 2017-05-16 Genisphere, Llc Lateral flow assays using DNA dendrimers
US9874556B2 (en) 2012-07-18 2018-01-23 Symbolics, Llc Lateral flow assays using two dimensional features
WO2014015076A1 (en) 2012-07-18 2014-01-23 Symbolics, Llc Lateral flow assays using two dimensional features
US9599615B2 (en) 2013-03-13 2017-03-21 Symbolics, Llc Lateral flow assays using two dimensional test and control signal readout patterns
WO2015038978A1 (en) 2013-09-13 2015-03-19 Symbolics, Llc Lateral flow assays using two dimensional test and control signal readout patterns
CN107782891A (en) * 2017-10-19 2018-03-09 天津医科大学 A kind of construction method of multi-functional upper conversion nano platform

Also Published As

Publication number Publication date
FR2022421A1 (en) 1970-07-31
GB1294463A (en) 1972-10-25
DE1954974A1 (en) 1970-05-06

Similar Documents

Publication Publication Date Title
US3641235A (en) Immunological reagent and process for making same
DK160108C (en) Method and equipment for direct or indirect detection of reaction between a specific binding agent and the corresponding acceptor substance
Samols et al. A comparison of insulin immunoassays.
EP0074520B1 (en) Method and kit for pregnancy detection
CN104614536B (en) A kind of kit for detecting G17 and its preparation method and application
AU614109B2 (en) Test method and reagent kit therefor
US4338094A (en) Macroencapsulated immunosorbent assay technique
US4469787A (en) Immunoassay involving soluble complex of second antibody and labeled binding protein
US4410633A (en) Method for the measurement of free thyroxine or 3,5,3'-triiodothyronine in a liquid sample
JPH01152367A (en) Immunologically diagnosing apparatus and method
CA1195925A (en) Method for assaying antigen-antibody reactions and reagent therefor
GB1564578A (en) Column chromatography specific binding assay method and test kit
JPS6325553A (en) Immunological analysis method
CA2398864C (en) Device and method for detecting substance
AU592971B2 (en) Solid phase diffusion assay
JPS58172551A (en) Method of inspecting free section of substance in biological liquid
EP0643307A1 (en) Visual immunoassay method for the detection of ligands, based in the use of opaque plastic supports
KR920000057B1 (en) Process and reagent for the determination of a specifically bindable substance
CN107356743B (en) Assay kit for detecting myoglobin
EP0679892B1 (en) Microparticle immunoassay reagents, sensitive and specific immunoassay reagents and immunoassay methods using these reagents
US5143825A (en) Stabilized substrate for use in an immunoassay
EP0064275B1 (en) Immunochemical reagent
US4713350A (en) Hydrophilic assay reagent containing one member of specific binding pair
JP4426122B2 (en) Blood antigen detection method and apparatus
EP0762123A1 (en) Immunoassay device and immunoassay method using the same