Cholinesterase Detection Systems: Reaction Principles, Method Types, and Experimental Design
Cholinesterase Detection Systems: Reaction Principles, Method Types, and Experimental Design
Cholinesterase detection systems are mainly used to measure the activities of acetylcholinesterase (AChE), butyrylcholinesterase (BChE), and total cholinesterase (ChE). The differences among detection methods are mainly reflected in substrate type, signal generation mode, readout format, ability to distinguish enzyme species, and sample compatibility.
Keywords: cholinesterase; acetylcholinesterase; butyrylcholinesterase; AChE; BChE; ChE; Ellman method; DTNB; thiocholine substrates; enzyme activity detection; fluorescence method; electrochemical method; histochemical method
1 Basic Methodological Framework of Cholinesterase Detection
1.1 Detection Targets
(1) Acetylcholinesterase
Acetylcholinesterase mainly hydrolyzes acetylcholine and is the key enzyme responsible for terminating cholinergic neurotransmission. AChE detection is commonly performed in erythrocyte membranes, brain tissue, nerve cells, neuromuscular junctions, and insect nervous tissue. AChE assays are often used in neurotoxicology, Alzheimer’s disease-related research, pesticide exposure assessment, and inhibitor screening.
(2) Butyrylcholinesterase
Butyrylcholinesterase is mainly found in serum, plasma, liver, and some tissues, and has a broader substrate spectrum. Serum or plasma cholinesterase assays mostly reflect BChE activity and are commonly used to evaluate hepatic synthetic function, drug metabolism, organophosphate exposure, and cholinesterase inhibition status.
(3) Total cholinesterase
Total ChE detection reflects the combined activity of AChE, BChE, and other cholinesterase-like activities in a sample. Total activity is suitable for rapid screening, but it is not suitable for directly inferring the source of a specific enzyme species. If a study needs to distinguish AChE from BChE, substrate selection, specific inhibitors, or protein detection should be combined for interpretation.
1.2 Method Selection Logic
(1) Substrate determines enzyme preference
Acetylthiocholine is commonly used for AChE detection, butyrylthiocholine is commonly used for BChE detection, and propionylthiocholine can be used for some total ChE or substrate-spectrum analyses. Substrate selection can only provide an enzyme-species preference and cannot fully replace specificity validation.
(2) Signal determines readout mode
Cholinesterase detection can be achieved through colorimetric, fluorescent, luminescent, electrochemical, or in situ precipitated signals. Colorimetric methods are suitable for routine enzyme activity detection, fluorescence methods are suitable for low-activity samples and high-throughput screening, electrochemical methods are suitable for rapid sensor-based detection, and histochemical methods are suitable for spatial localization.
(3) Reaction rate determines enzyme activity calculation
Cholinesterase activity detection should preferably use kinetic readings and calculate the signal change per unit time during the initial linear phase of the reaction. Endpoint readings are suitable for certain screening or low-throughput experiments, but they are more easily affected by substrate depletion, product accumulation, and background reactions.
Table 1 Method Types and Application Positioning of Cholinesterase Detection
Method type | Signal source | Main advantages | Main limitations | Applicable scenarios |
Ellman colorimetric method | Thiocholine reacts with DTNB to generate yellow TNB | Classical, stable, high-throughput, easy to standardize | Interference from thiol compounds, color, and turbidity | Routine activity detection of AChE, BChE, and total ChE |
pH indicator method | pH change caused by substrate hydrolysis | Intuitive principle, simple system | Low sensitivity; affected by buffer system | Basic validation, teaching experiments |
Fluorogenic substrate method | Hydrolysis releases or activates fluorescent signal | High sensitivity, suitable for micro-samples | Affected by autofluorescence and quenching | Inhibitor screening, low-activity samples |
Luminescent coupling method | Enzymatic coupling generates luminescent signal | High sensitivity, low background | Complex system, relatively high cost | High-throughput screening, drug evaluation |
Electrochemical method | Hydrolysis product or coupled product produces current change | Rapid, portable, suitable for field detection | Electrode stability and matrix interference are significant | Pesticide residue testing, environmental toxicology, biosensors |
Histochemical method | In situ color development or precipitation | Displays spatial localization | Limited quantitative capability | Tissue sections, neuromuscular junctions, insect tissues |
Zymography / in-gel activity assay | Substrate color development or fluorescence after electrophoresis | Distinguishes active bands | Highly condition-dependent, semi-quantitative | Analysis of active enzyme components |
2 Ellman Colorimetric Method
2.1 Reaction Principle
(1) Substrate hydrolysis
The Ellman method usually uses acetylthiocholine, butyrylthiocholine, or propionylthiocholine as artificial substrates. Cholinesterase catalyzes the hydrolysis of thiocholine substrates, releasing the corresponding acidic product and thiocholine.
(2) DTNB color development
The released thiocholine reacts with DTNB to generate the yellow 5-thio-2-nitrobenzoate anion (TNB). TNB has a clear absorption peak near 412 nm, so cholinesterase activity can be calculated from the rate of increase in absorbance.
(3) Kinetic readout
The Ellman method is more suitable for continuous readout mode. In experiments, absorbance changes are usually recorded immediately after substrate addition, and the slope is calculated from the initial linear phase of the reaction. If only endpoint absorbance is read, the result is more easily affected by spontaneous substrate hydrolysis and differences in reaction time.
2.2 Composition of the Experimental System
(1) Buffer
Phosphate buffer or other pH-stable systems are commonly used. pH affects both enzyme activity and DTNB reaction efficiency; therefore, pH, ionic strength, and reaction temperature should be fixed within the same experimental batch. For AChE and BChE detection, the buffer system should not be changed arbitrarily, otherwise comparability across experiments will decrease.
(2) Substrate
Acetylthiocholine iodide or acetylthiocholine chloride is commonly used for AChE detection; butyrylthiocholine iodide is commonly used for BChE detection. Substrate concentration should be optimized through preliminary experiments. Too low a concentration limits the reaction rate, whereas too high a concentration may cause substrate inhibition or increase non-enzymatic hydrolysis background.
(3) Chromogenic reagent
DTNB is the core chromogenic reagent of the Ellman method. DTNB is sensitive to thiol compounds, so if samples contain glutathione, cysteine, DTT, β-mercaptoethanol, or other reducing or thiol-containing components, the background reading may be significantly affected.
(4) Sample
Serum, plasma, erythrocyte lysate, tissue homogenate, cell lysate, and insect tissue extracts can all be used in the Ellman method, but different samples require different dilution factors, blank settings, and normalization approaches.
2.3 Endpoint Method and Rate Method
(1) Endpoint method
The endpoint method reads absorbance after a fixed reaction time. It is simple to operate and suitable for preliminary screening experiments or samples with large activity differences. This method is sensitive to incubation time, sample addition order, and background subtraction, and is not suitable for precise kinetic analysis.
(2) Rate method
The rate method continuously records absorbance changes and calculates enzyme activity from the slope of absorbance change per unit time. This method is more suitable for comparing activity differences among treatment groups and is also better for identifying substrate depletion, excessively rapid reactions, or nonlinearity.
(3) Microplate method
The microplate Ellman method is suitable for batch samples and inhibitor screening. During the experiment, sample addition order, reading delay, edge-well evaporation, and bubbles between wells should be controlled. For high-activity samples, dilution should be used to keep absorbance changes within the linear range.
2.4 Method Compatibility and Limitations
(1) Suitable for routine enzyme activity detection
The Ellman method is the most commonly used system for AChE, BChE, and total ChE detection, and is suitable for blood samples, tissue homogenates, cell lysates, and insect samples.
(2) Affected by thiol background
DTNB can react with free thiols. Reducing-agent-containing lysates, glutathione-rich tissue samples, or plant/insect extracts may show high background; therefore, sample blanks must be included.
(3) Interference from color and turbidity
Hemoglobin, bilirubin, lipemia, tissue pigments, and particle turbidity can all affect absorbance readings. For complex samples, sample blanks, centrifugal clarification, dilution linearity validation, or confirmation by fluorescence/electrochemical methods can be used.
3 pH Indicator Method and Acid-Base Titration Method
3.1 pH Indicator Method
(1) Reaction basis
When cholinesterase hydrolyzes acetylcholine or related choline ester substrates, acidic products can be generated, causing a pH change in the reaction system. pH indicators can convert this pH change into a color change, thereby indirectly evaluating enzyme activity.
(2) Detection characteristics
This method has a simple system and does not rely on DTNB or fluorogenic substrates, but its sensitivity is low and it is highly sensitive to buffer capacity and sample background pH. If the buffer capacity is too strong, the pH change is not obvious; if the buffer capacity is too weak, the intrinsic pH differences among samples can cause large errors.
(3) Application positioning
The pH indicator method is suitable for teaching demonstrations, early method validation, or rough observation of enzyme activity changes. For complex samples such as serum, tissue homogenates, or cell lysates, it should not be used as the preferred quantitative method.
3.2 Acid-Base Titration Method
(1) Method principle
The acid-base titration method indirectly calculates cholinesterase activity by quantitatively measuring the acidic products generated from substrate hydrolysis. This method was used historically, but its procedure is relatively cumbersome.
(2) Technical limitations
The titration method requires a larger sample volume and a longer reaction time, and is difficult to adapt to high-throughput testing. Sample buffering capacity, volatile components, and exogenous acid-base contamination can all affect results.
(3) Scope of application
This method is more suitable for methodological comparison or historical method description. In modern cholinesterase detection, it is usually replaced by the Ellman method, fluorescence methods, and automated biochemical methods.
4 Fluorescence and Luminescence Methods
4.1 Fluorogenic Substrate Method
(1) Reaction principle
Fluorescence methods use fluorogenic substrates that can be hydrolyzed by cholinesterase. After hydrolysis, the substrate releases a fluorescent molecule or changes fluorescence intensity. Compared with colorimetric methods, fluorescence methods are more sensitive to low activity changes.
(2) Detection workflow
A typical workflow includes sample pre-dilution, substrate addition, constant-temperature incubation, and continuous or endpoint fluorescence reading. Kinetic fluorescence readings are more suitable for enzyme activity calculation, whereas endpoint fluorescence readings are more suitable for preliminary screening.
(3) Applicable scenarios
Fluorescence methods are suitable for low-enzyme-activity samples, small cell samples, micro tissue samples, and high-throughput cholinesterase inhibitor screening. In drug screening, concentration gradients can be set and inhibition rates or IC50 values calculated.
4.2 Fluorescence-Coupled Reactions
(1) Coupled detection
Some fluorescence systems do not directly detect cholinesterase substrate hydrolysis. Instead, they couple choline or thiocholine products to subsequent enzymatic or chemical reactions, ultimately generating a fluorescent signal. This design can improve sensitivity, but the reaction chain is more complex.
(2) Background control
Insufficiency in any substrate, enzyme, or cofactor in the coupled system will affect the final signal. During method development, it is necessary to verify separately whether both the cholinesterase reaction and the coupled reaction are within their linear ranges.
(3) Matrix effects
Tissue homogenates, blood samples, plant extracts, and insect samples may have autofluorescence or fluorescence quenching effects. Sample blanks should be included, and excitation/emission wavelengths should be selected to avoid sample background as much as possible.
4.3 Luminescence Method
(1) Reaction characteristics
Luminescence methods amplify cholinesterase hydrolysis signals through enzymatic coupling or chemiluminescence systems, offering low background and high sensitivity. This method is suitable for high-throughput screening and low-abundance enzyme activity detection.
(2) Experimental control
Luminescence reactions are sensitive to time and temperature, and the reading window after adding detection reagents must be strictly consistent. In batch plate experiments, large reaction-time differences among wells should be avoided.
(3) Application boundaries
Luminescence methods have high sensitivity, but they are more costly and reagent-dependent. If used for mechanistic studies, they should be cross-validated with the Ellman method or protein detection.
Table 2 Technical Characteristics of Different Signal Systems
Signal system | Typical readout | Sensitivity | Throughput | Main interference | Recommended use |
Ellman colorimetric method | A412 kinetic slope | Medium | High | Thiol compounds, color, turbidity | Routine AChE/BChE activity detection |
pH indicator method | Color or pH change | Low | Medium | Sample pH, buffer capacity | Basic validation |
Fluorescence method | Change in fluorescence intensity | High | High | Autofluorescence, fluorescence quenching | Low-activity samples, inhibitor screening |
Luminescence method | Luminescence intensity | High | High | Reading time, coupled reaction stability | High-throughput screening |
Electrochemical method | Current or potential change | Medium to high | Medium | Electroactive substances, electrode fouling | Rapid testing, sensor development |
Histochemical method | In situ color development or precipitation | Qualitative/semi-quantitative | Low | Section thickness, substrate diffusion | Spatial localization |
5 Electrochemical Detection Methods
5.1 Direct Electrochemical Detection
(1) Thiocholine oxidation
After cholinesterase hydrolyzes thiocholine substrates, thiocholine is produced. Thiocholine can be oxidized on the electrode surface, generating a detectable current. This method converts enzyme activity into an electrochemical signal.
(2) Response characteristics
Direct electrochemical methods respond rapidly, require small sample volumes, and are suitable for miniaturized and portable detection. Sensor performance depends on electrode materials, modification layers, enzyme immobilization methods, and the electrochemical window.
(3) Interference sources
Ascorbic acid, uric acid, glutathione, polyphenols, and other electroactive components in samples may produce background currents. Before testing complex samples, matrix validation or selective membrane modification should be performed.
5.2 Choline Oxidase-Coupled Electrochemical Method
(1) Coupling principle
Some systems use choline generated from acetylcholine hydrolysis as an intermediate. Choline oxidase then catalyzes the generation of hydrogen peroxide, which subsequently produces a signal through electrochemical oxidation-reduction of hydrogen peroxide.
(2) System advantages
This method is closer to the natural substrate conversion logic and is suitable for constructing cholinesterase-choline oxidase coupled sensors. By immobilizing enzyme layers, rapid detection and repeated use can be achieved.
(3) System limitations
The coupled system is affected by the activities of both cholinesterase and choline oxidase. If choline oxidase is insufficient or hydrogen peroxide is consumed by reducing substances in the sample, cholinesterase activity will be underestimated.
5.3 Inhibition-Based Sensor Detection
(1) Detection logic
Organophosphates or carbamates can inhibit cholinesterase activity. After immobilizing cholinesterase on the electrode surface, the decrease in signal before and after inhibition can be used to evaluate cholinesterase-inhibiting contaminants in samples.
(2) Application scenarios
This method is suitable for rapid screening of pesticide residues, water pollution, food safety, and environmental toxicology. Its advantages include fast response, miniaturizable equipment, and suitability for on-site detection.
(3) Confirmation requirements
Inhibition-based sensors detect an “enzyme activity inhibition effect” and cannot directly identify the specific pollutant type or concentration. Positive samples usually require further confirmation by GC-MS, LC-MS/MS, or targeted chemical analysis.
6 Histochemical and In Situ Detection Methods
6.1 Koelle Method and Karnovsky-Roots Method
(1) Method basis
Histochemical methods usually rely on cholinesterase in tissue sections to hydrolyze thiocholine substrates. The generated thiocholine reacts with metal salts or chromogenic systems to form insoluble precipitates, thereby showing the spatial distribution of enzyme activity.
(2) Localization advantage
These methods can show AChE or ChE localization in neuromuscular junctions, brain regions, peripheral nerves, insect nervous systems, or tissue sections. Compared with homogenate enzyme activity assays, histochemical methods preserve spatial information.
(3) Fixation conditions
Over-fixation reduces enzyme activity, whereas insufficient fixation affects tissue structure and background control. Before detection, fixative type, fixation time, section thickness, and incubation conditions must be optimized.
6.2 Inhibitor-Assisted Localization
(1) AChE localization
Adding a BChE inhibitor to a histochemical system can reduce BChE background and highlight AChE-related signals. This strategy is suitable for AChE localization in complex tissues.
(2) BChE localization
Adding an AChE inhibitor and selecting a BChE-preferred substrate can help observe BChE distribution. Regions rich in blood vessels, liver tissue, glial cells, or plasma components should be interpreted cautiously.
(3) Control of nonspecific esterases
Tissue sections often contain nonspecific esterases. Without inhibitor groups or substrate-negative controls, nonspecific esterase precipitates may be misinterpreted as cholinesterase activity.
6.3 Image Analysis
(1) Semi-quantitative analysis
Histochemical staining can be semi-quantitatively analyzed using image grayscale, positive area, or integrated optical density. Section batch, color development time, and background correction must be standardized.
(2) Spatial colocalization
If AChE or BChE activity in specific cell types needs to be determined, immunofluorescence, cell markers, or serial section analysis can be combined. Histochemical staining alone usually cannot accurately identify the cellular source.
(3) Result boundaries
Histochemical methods show in situ enzyme activity distribution and are not equivalent to protein expression levels. If expression regulation needs to be explained, qPCR, Western blot, ELISA, or immunostaining should be combined.
7 Zymography and Molecular Typing Methods
7.1 Native PAGE Activity Staining
(1) Method principle
Native PAGE can separate different cholinesterase components under non-denaturing conditions, followed by activity staining using substrate and chromogenic systems. This method can reveal active bands with different migration rates.
(2) Applicable scenarios
This method is suitable for analyzing serum BChE multimers, different ChE active components in tissues, insect AChE variants, or active components in enzyme preparations.
(3) Limitations
Active bands are affected by electrophoresis conditions, protein conformation, substrate penetration, and staining time. This method is usually qualitative or semi-quantitative. If precise quantification is required, routine enzyme activity assays should be combined.
7.2 Protein Expression Detection
(1) Western blot
Western blot can be used to detect AChE or BChE protein levels and to help determine whether changes in enzyme activity arise from expression changes. Different splice forms, glycosylation, and polymerization states may cause band differences.
(2) ELISA
ELISA is suitable for batch detection of AChE or BChE protein content. Unlike enzyme activity assays, ELISA reflects protein amount and does not necessarily reflect enzyme activity status. Inhibitor binding, oxidative modification, or conformational changes may result in “unchanged protein level but decreased enzyme activity.”
(3) qPCR
qPCR can analyze ACHE or BCHE gene transcription levels and is suitable for studying expression regulation. mRNA level cannot directly replace enzyme activity and should be interpreted together with protein and functional readouts.
7.3 Mass Spectrometry and Structural Analysis
(1) Protein mass spectrometry
Mass spectrometry can be used to identify cholinesterase proteins, modification sites, and inhibitor adducts. In organophosphate exposure studies, mass spectrometry helps identify adduct modifications related to the enzyme active center.
(2) Substrate conversion analysis
LC-MS/MS can directly analyze changes in acetylcholine, choline, or related metabolites, providing a supplement to enzyme activity detection. This method has high specificity but requires expensive instruments and higher technical expertise.
(3) Mechanism validation
When enzyme activity decreases while expression level remains unchanged, mass spectrometry or targeted modification analysis can help determine whether inhibitor adducts, oxidative modifications, or post-translational modifications are present.
8 Sample Processing Methods
8.1 Serum and Plasma Samples
(1) Sampling requirements
Serum or plasma is commonly used for BChE activity detection. After collection, serum or plasma should be separated as soon as possible to avoid prolonged room-temperature exposure. Obvious hemolysis introduces erythrocyte AChE and hemoglobin interference.
(2) Anticoagulant selection
For plasma samples, anticoagulant compatibility should be considered. Different anticoagulants may affect enzyme activity or detection background, so the same anticoagulant type should be used throughout the experiment.
(3) Storage conditions
Cholinesterase activity is affected by storage temperature and freeze-thaw cycles. For long-term storage, samples should be aliquoted and frozen at low temperature to avoid repeated freeze-thaw cycles. Samples from different batches should use the same storage duration and freeze-thaw history as much as possible.
8.2 Erythrocyte Samples
(1) Sample preparation
Erythrocyte AChE detection usually requires erythrocyte separation, washing, and preparation of erythrocyte suspensions or membrane-related samples. Inadequate washing can leave residual plasma BChE and affect AChE interpretation.
(2) Hemolysis treatment
Erythrocyte AChE is mainly located on the cell membrane, and sample preparation affects enzyme accessibility. Hemolysis, membrane preparation, and dilution conditions should be standardized.
(3) Normalization approach
Erythrocyte AChE can be normalized to hemoglobin concentration, erythrocyte count, or membrane protein amount. Different normalization approaches should not be mixed, especially in samples with anemia, hemolysis, or abnormal hematocrit.
8.3 Tissue and Cell Samples
(1) Tissue homogenates
Brain tissue, muscle, liver, and insect tissue should be homogenized at low temperature before detection. Reducing agents such as DTT or β-mercaptoethanol, which interfere with DTNB color development, should be avoided in the buffer. If detergents must be used, their effects on enzyme activity and reading background should be validated.
(2) Cell lysates
Cell samples can be lysed under mild conditions to preserve enzyme activity. Strong denaturing lysis buffers are not suitable for enzyme activity assays and are only suitable for protein expression analysis. After lysis, debris should be removed by centrifugation, and protein concentration should be measured for normalization.
(3) Insect samples
Insect tissues often contain high nonspecific esterase activity. AChE detection should be validated using substrate selection and specific inhibitors. In resistance studies, AChE mutations, expression changes, and metabolic enzyme contributions should also be considered.
Table 3 Detection Method Compatibility for Different Samples
Sample type | Recommended method | Main detection target | Key control points |
Serum | Butyrylthiocholine-Ellman method | Mainly BChE | Avoid hemolysis; standardize storage conditions |
Plasma | Butyrylthiocholine-Ellman method or automated ChE detection | Mainly BChE | Use consistent anticoagulants; set sample blanks |
Erythrocytes | Acetylthiocholine-Ellman method | Mainly AChE | Wash sufficiently; normalize to Hb or membrane protein |
Brain tissue | Ellman method, histochemical method, fluorescence method | Mainly AChE | Homogenize at low temperature; avoid reducing-agent interference |
Liver tissue | Ellman method, protein detection | BChE and total ChE | Pay attention to nonspecific esterase background |
Cell lysate | Ellman method, fluorescence method, Western blot | AChE or BChE | Use mild lysis; normalize to protein amount |
Insect tissue | Ellman method, inhibitor typing, zymography | AChE and esterase background | Combine with specific inhibitor validation |
Tissue sections | Histochemical method | In situ ChE activity | Control fixation, section thickness, and incubation time |
Environmental samples | Inhibition-based electrochemical method, enzyme inhibition screening | Inhibitory effect | Positive results require chemical confirmation |
9 Enzyme Activity Calculation and Result Expression
9.1 Kinetic Slope Calculation
(1) Linear range selection
The slope should be calculated from the region where absorbance or fluorescence intensity increases linearly over time. The initial lag phase, late substrate-depletion phase, and signal-saturation region are not suitable for enzyme activity calculation.
(2) Blank subtraction
Before enzyme activity calculation, reagent blanks and sample blanks should be subtracted. Reagent blanks reflect spontaneous substrate hydrolysis and chromogenic reagent background; sample blanks reflect intrinsic sample color, turbidity, or endogenous reactions.
(3) Unit conversion
Colorimetric methods can calculate enzyme activity units based on molar extinction coefficient, optical path length, sample volume, and dilution factor. In microplate assays, the actual optical path is shorter than 1 cm. If absolute enzyme activity is calculated, pathlength correction or a standard curve should be used.
9.2 Result Expression
(1) Serum or plasma
Serum or plasma ChE/BChE activity is commonly expressed as U/L or U/mL. When comparing results from different platforms, detection temperature, substrate, unit definition, and calibration method must be considered.
(2) Tissue and cells
Tissue homogenates and cell lysates are commonly expressed as U/mg protein. If tissue blood content differs significantly, the influence of blood cholinesterase background should be considered.
(3) Erythrocytes
Erythrocyte AChE can be expressed as U/g Hb, U/mL packed RBC, U/10⁹ RBC, or U/mg membrane protein. In toxicological studies, the normalization method most consistent with the experimental design should be selected and kept consistent throughout.
9.3 Inhibition Rate Calculation
(1) Basic formula
Inhibition rate is usually calculated as the ratio of “control enzyme activity minus treated enzyme activity” to control enzyme activity. In inhibitor screening, comparison should be performed under the same reaction time, substrate concentration, and sample concentration.
(2) IC50 determination
In drug screening, inhibitor concentration gradients can be established and IC50 values fitted based on residual enzyme activity. For irreversible inhibitors, pre-incubation time and enzyme concentration should also be considered because inhibition is time-dependent.
(3) Reversibility analysis
Carbamate inhibition is relatively reversible, whereas organophosphate inhibition is usually more persistent. If inhibition recovery is being studied, elution, reactivator, or time-recovery experiments should be included.
10 Selection of Reagents and Materials for Cholinesterase Detection
Table 4 Reagents and Detection Tools Related to Cholinesterase Detection Systems
Cat. No. | Product Name | Grade/Specification | Corresponding detection step | Application positioning |
Acetylcholinesterase (AchE) activity detection kit (DNTB, microcalorimetry) | BioReagent | AChE activity detection | Used to measure AChE activity in micro-samples; suitable for Ellman-like detection systems in tissues, cells, or insect samples | |
Acetylcholinesterase (AchE) Activity Assay Kit (DTNB, Colorimetric Method) | BioReagent | AChE activity detection | Used for colorimetric detection of AChE activity; suitable for routine enzyme activity assays and inhibitor evaluation | |
Acetylcholinesterase Activity Assay Kit | 110T/50S | AChE activity detection | Used for quantitative AChE activity measurement and can serve as a routine AChE detection tool | |
Human Acetylcholinesterase (AchE) ELISA Kit | BioReagent | AChE protein quantification | Used for detecting AChE protein levels in human samples; should be interpreted separately from enzyme activity results | |
Mouse Acetylcholinesterase (AchE) ELISA Kit | BioReagent | AChE protein quantification | Used for AChE protein detection in mouse samples; suitable for neurotoxicology and cholinergic system research | |
Mouse Cholinesterase(CHE) ELISA Kit | BioReagent | Total ChE/CHE detection | Used to detect cholinesterase-related protein in mouse samples; suitable for combined analysis with total ChE activity results | |
Acetylcholinesterase | 200u/g | AChE positive enzyme source | Used as a positive control enzyme source for AChE detection systems, substrate hydrolysis validation, and inhibitor screening | |
Butyrylcholinesterase (BCHE) | Bioactive,ActiBioPure™,Native,High Performance,EnzymoPure™,from Equine Serum; ≥50 U/mg enzyme powder; ≥300 U/mg protein | BChE positive enzyme source | Used for establishing BChE activity systems, validating butyrylthiocholine substrates, and evaluating inhibitors | |
Butyrylcholinesterase (BChE) | Bioactive,ActiBioPure™,Native,High Performance,EnzymoPure™,from Equine Serum; Protein content: See COA; ≥10 U/mg protein | BChE positive enzyme source | Used as a control for serum/plasma BChE detection systems and enzymatic method validation | |
Butyrylcholinesterase from Human Plasma | ActiBioPure™, Bioactive, High Performance, EnzymoPure™, ≥90%(SDS-PAGE), Pre-lyophilization Protein Concentration | Human BChE enzyme source | Used for human BChE activity studies, plasma cholinesterase assay development, and inhibitor response validation | |
Acetylthiocholine chloride | ≥99% | AChE substrate | Common AChE thio-substrate in the Ellman method; hydrolysis releases thiocholine for DTNB color development | |
Acetylthiocholine iodide | ≥98% | AChE substrate | Used for AChE activity detection, kinetic analysis, and inhibition-rate evaluation | |
S-Butyrylthiocholine iodide | ≥98% | BChE substrate | Used for BChE activity detection; suitable for serum, plasma, and BChE enzyme source systems | |
Propionylthiocholine iodide | ≥98% | ChE substrate / substrate-spectrum analysis | Used for total ChE activity detection or comparison of substrate preference among different cholinesterases | |
Benzoylthiocholine Iodide | ≥98% | Cholinesterase substrate | Can be used for BChE-related substrate-spectrum analysis or evaluation of cholinesterase hydrolysis capacity | |
thiocholine iodide | ≥95% | Chromogenic product / methodological control | Used for DTNB color reaction validation, thiocholine product response, and standardized controls | |
5,5′-Dithio-bis-(2-nitrobenzoic Acid) | Sulfhydryl reagent used to characterize reactive SH groups. | DTNB chromogenic reagent | Core chromogenic reagent of the Ellman method; reacts with thiocholine to generate TNB for 412 nm reading | |
5,5'-Dithio bis-(2-nitrobenzoic acid) | 10mM in DMSO | DTNB chromogenic reagent | Suitable for direct addition to Ellman chromogenic systems for microplate or colorimetric detection | |
5,5'-Dithio bis-(2-nitrobenzoic acid) | ≥98% | DTNB chromogenic reagent | Used in cholinesterase activity assays for thiocholine color development | |
Acetylcholine chloride(ACh) | ≥99% | Natural substrate / standard | Used for acetylcholine hydrolysis, choline generation, and validation of coupled detection systems | |
Acetylcholine chloride(ACh) | 10mM in DMSO | Natural substrate / standard solution | Used for natural substrate systems, cell treatment, or methodological controls | |
Acetylcholine chloride(ACh) | for cell culture, ≥99% | Natural substrate / cell experiment | Suitable for cholinergic cell experiments and AChE hydrolysis-system validation | |
Acetylcholine bromide | ≥98% | Natural substrate salt form | Used for acetylcholine-related substrate validation and cholinesterase hydrolysis research | |
Acetylcholine iodide | 10mM in DMSO | Natural substrate salt form | Used for ACh-related detection systems or cholinesterase substrate reaction validation | |
Acetylcholine iodide | ≥98% | Natural substrate salt form | Used for acetylcholine substrate hydrolysis and methodological controls | |
Acetylcholine-d9 Chloride | ≥98 atom%,≥98% | Isotope-labeled ACh | Used for LC-MS/MS acetylcholine detection, substrate conversion tracing, and method validation | |
Acetylcholine-d9 Bromide | ≥98% | Isotope-labeled ACh | Used for tracing acetylcholine hydrolysis by mass spectrometry or establishing an internal-standard system | |
Butyrylcholine Iodide | ≥99% | BChE natural/simulated substrate | Used for BChE substrate hydrolysis research and butyrylcholine-related method validation | |
Benzoylcholine Chloride | ≥98%(T) | BChE-related substrate | Used for benzoylcholine hydrolysis experiments and BChE substrate-spectrum studies | |
Benzoylcholine Bromide | ≥98% | BChE-related substrate | Can be used for BChE substrate specificity and hydrolytic activity analysis | |
Benzoylcholine Iodide | ≥98%(T) | BChE-related substrate | Used for cholinesterase substrate-spectrum analysis and methodological comparison | |
Choline chloride | for cell culture, suitable for insect cell culture, ≥99% | Choline standard / product control | Used for choline generation, coupled detection, choline oxidase reaction, and standard curve validation | |
Choline chloride | ≥99% | Choline standard | Used for validation of natural substrate hydrolysis products and calibration of coupled systems | |
Choline chloride | UltraBio™, ≥99%(AT) | High-purity choline standard | Suitable for choline oxidase-coupled detection requiring stronger background control | |
Choline chloride | 10mM in DMSO | Choline standard solution | Suitable for direct use in standard curves, product recovery, and method validation | |
Choline-d4 Chloride | ≥99%,≥98atom%D | Isotope-labeled choline | Used as an LC-MS/MS internal standard for choline quantification or tracing acetylcholine hydrolysis products | |
Choline chloride-(trimethyl-d₉) | ≥98 atom% D,≥95% | Isotope-labeled choline | Used for mass spectrometric choline detection, coupled-system validation, and product quantification correction | |
Choline chloride-¹⁵N | ≥98 atom% 15N,≥99% | Isotope-labeled choline | Used for mass spectrometric quantification of choline metabolites and tracing hydrolysis products | |
Choline bromide-(methyl-¹³C) | ≥99 atom% 13C | Isotope-labeled choline | Used as an LC-MS/MS internal standard or for choline product validation | |
Choline-1,1,2,2-d₄bromide | ≥98 atom% D,≥98% | Isotope-labeled choline | Used for choline quantification and analysis of acetylcholine hydrolysis products | |
Choline Oxidase (CODA) | Bioactive,Recombinant,ActiBioPure™,High Performance,EnzymoPure™,≥5 U/mg enzyme powder; ≥15 U/mg protein | Choline oxidase coupling enzyme | Used for oxidation detection of choline generated from acetylcholine hydrolysis; suitable for fluorescence, electrochemical, or HRP-coupled systems | |
Choline Oxidase (CHO) from Alcaligenes sp. | Bioactive,ActiBioPure™,Native,High Performance,EnzymoPure™,≥10 U/mg enzyme powder | Choline oxidase coupling enzyme | Used for oxidizing choline to generate hydrogen peroxide; suitable for natural substrate coupled detection and sensor systems | |
Horseradish Peroxidase (HRP) | Bioactive,ActiBioPure™,Native,High Performance,EnzymoPure™,from Horseradish; ≥250 U/mg enzyme powder; RZ≥3 | HRP-coupled colorimetric/fluorescent enzyme | Used for POD/HRP colorimetric or fluorescent signal amplification after H₂O₂ generation by choline oxidase | |
Horseradish Peroxidase (HRP) | Bioactive,ActiBioPure™,Native,High Performance,EnzymoPure™,≥300U/mg enzyme powder, Rz≥3; from Horseradish | High-activity HRP | Suitable for high-sensitivity choline oxidase-HRP coupled systems | |
Horseradish Peroxidase (HRP) | Bioactive,Recombinant,ActiBioPure™,High Performance,EnzymoPure™,≥250U/mg enzyme powder, Rz ≥3; expressed in Nicotiana benthamiana | Recombinant HRP | Used in recombinant-source HRP coupled systems; suitable for experiments requiring high formulation consistency and background control | |
Peroxidase from horseradish(EIA Grade,Purified) | EnzymoPure™, RZ 2.9,≥500 units/mg protein | High-purity HRP | Suitable for coupled detection systems requiring high background control, purity, and signal amplification efficiency | |
Fasciculin-II | ≥99% | AChE inhibitor | Used as an AChE-specific inhibitory control, suitable for confirming AChE signal origin | |
Physostigmine salicylate | Moligand™, ≥98% | Cholinesterase inhibitor | Used in AChE/BChE inhibition experiments, positive inhibitory controls, and method validation | |
Physostigmine salicylate | Moligand™, 10 mM in DMSO | Cholinesterase inhibitor solution | Suitable for direct use in inhibition-rate assays and inhibitor screening systems | |
Neostigmine Bromide | Moligand™, ≥99%(T) | Reversible cholinesterase inhibitor | Used for reversible cholinesterase inhibition models and positive controls | |
Neostigmine Bromide | 10mM in Water | Reversible cholinesterase inhibitor solution | Used for microplate inhibition experiments, cell treatment, and method validation | |
Carbaryl | ≥97% | Carbamate inhibitor | Used for reversible cholinesterase inhibition, pesticide toxicology, and insect resistance research | |
Carbaryl | analytical standard, ≥98% | Pesticide toxicology inhibitor standard | Used for cholinesterase inhibition-rate evaluation and positive method controls | |
Carbaryl | analytical standard, ≥99.5%(HPLC) | High-purity inhibitor standard | Suitable for quantitative inhibition experiments, standard curves, and toxicological method validation | |
Carbaryl | 10mM in DMSO | Inhibitor stock solution | Used for cholinesterase inhibitor screening and dose-response experiments | |
Carbaryl solution | analytical standard, 10ug/ml in acetone | Inhibitor standard solution | Used for low-concentration inhibition experiments and pesticide residue-related method validation | |
Carbaryl solution | analytical standard, 100ug/ml in acetone | Inhibitor standard solution | Used for cholinesterase inhibition-rate assays and standardized controls | |
Carbaryl | 1000ug/ml in Acetonitrile | Inhibitor standard solution | Used for high-concentration stocks, toxicological exposure gradients, and instrumental method comparison | |
Carbaryl in Methanol | 100μg/mL in Methanol | Inhibitor reference material | Used for pesticide inhibitor standardization, method validation, and quality control | |
Carbaryl in Methanol | 1000μg/mL in Methanol | Inhibitor reference material | Used for high-concentration stock preparation, toxicological gradients, and detection-system quality control |
The core of cholinesterase detection systems is to accurately reflect AChE, BChE, or total ChE activity using appropriate substrates and signal systems. The Ellman method is suitable as the main system for routine enzyme activity detection, fluorescence and luminescence methods are suitable for high-sensitivity or high-throughput applications, electrochemical methods are suitable for rapid screening and sensor-based detection, and histochemical methods are used for in situ localization.
