From Functional Groups to Experimental Decision-Making: Protein Crosslinker Selection and Experimental Essentials
From Functional Groups to Experimental Decision-Making: Protein Crosslinker Selection and Experimental Essentials
1. Define the Experimental Objective First
Crosslinkers are used to form covalent linkages between two molecules, or between adjacent structural elements within the same molecule. In protein experiments, crosslinkers are mainly used to address four types of tasks: capturing interactions, preparing conjugates, immobilizing proteins, and assisting structural analysis. When selecting a crosslinker, first determine the experimental objective, then evaluate the reactive functional groups, spacer arm, solubility, membrane permeability, and detection method. Crosslinker selection should take reaction specificity, spacer arm length, solubility, and the specific application scenario into account simultaneously.
Experimental objective | Preferred strategy | Key consideration |
Capture protein-protein interactions | Homobifunctional crosslinkers | The two ends carry the same reactive group and are suitable for fixing spatial proximity relationships |
Prepare antibody, enzyme, or peptide conjugates | Heterobifunctional crosslinkers | The two ends carry different reactive groups, allowing stepwise conjugation and reducing self-polymerization |
Immobilize proteins or peptides on carboxylated surfaces | Zero-length coupling systems | Directly link surface carboxyl groups to protein primary amines without introducing an additional spacer arm |
Crosslinking mass spectrometry analysis | MS-cleavable or cleavable crosslinkers | Control the degree of crosslinking and reduce sample complexity |
Common selection logic:
Question | Corresponding choice |
Is the study limited to cell-surface proteins? | Prefer water-soluble, membrane-impermeable crosslinkers |
Is intracellular access required? | Choose membrane-permeable crosslinkers |
Is subsequent dissociation of the complex required? | Choose a cleavable spacer arm |
Is a long-term stable linkage required? | Choose a non-cleavable linkage |
Is retention of antibody binding or enzyme activity required? | Reduce the degree of modification and prioritize stepwise conjugation or site-specific conjugation |
2. Choose the Reaction Chemistry According to the Target Functional Group
Common reactive sites in protein crosslinking include primary amines, sulfhydryls, and carboxyl groups. Primary amines mainly come from lysine side chains and the protein N-terminus; sulfhydryls mainly come from free cysteine residues; carboxyl groups mainly come from aspartic acid, glutamic acid, the protein C-terminus, or the surface of carboxylated materials.
Target group | Common reaction system | Representative reagents | Common conditions | Components or conditions to avoid |
Primary amines | N-hydroxysuccinimide esters (NHS esters) or sulfo-N-hydroxysuccinimide esters (sulfo-NHS esters) | Bis(sulfosuccinimidyl) suberate (BS3), disuccinimidyl suberate (DSS) | Commonly used at pH 7.2 to 8.5 | Tris(hydroxymethyl)aminomethane (Tris), glycine, lysine, ethanolamine |
Sulfhydryls | Maleimide chemistry | Sulfo-SMCC, SMCC, N,N′-bismaleimidohexane (BMH) | Commonly used at pH 6.5 to 7.5 | Dithiothreitol (DTT), β-mercaptoethanol, and other thiol-containing reducing agents |
Carboxyl groups plus primary amines | 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide (EDC) combined with NHS or sulfo-NHS | EDC/NHS, EDC/sulfo-NHS | The activation step is commonly carried out at pH 4.5 to 7.2; after activation, reaction with primary amines is often performed around pH 7 to 8 | Exogenous primary amines, exogenous carboxylic acids, and protecting agents containing interfering components |
Primary amines | Imidoester chemistry | Dimethyl pimelimidate (DMP) | Higher efficiency at pH 8 to 9 | Amine-containing buffers such as Tris and glycine |
Supplementary notes
1. NHS ester reactions
NHS esters react with primary amines to form stable amide bonds and are commonly used for modification of lysine side chains and protein N-termini. NHS esters undergo hydrolysis in aqueous solution, and hydrolysis becomes faster as buffer pH increases. Tris and glycine can be used to quench the reaction after completion, but they should not be present at the start of the reaction.
2. Maleimide reactions
Maleimides react preferentially with sulfhydryls at pH 6.5 to 7.5 to form stable thioether bonds. Thiol-containing reducing agents such as DTT and β-mercaptoethanol will compete for reactive sites, so desalting or buffer exchange is usually required after reduction treatment.
3. EDC-mediated carboxyl activation
EDC is a zero-length coupling reagent. It first activates carboxyl groups to form reactive intermediates, which then react with primary amines to form amide bonds. EDC itself is not retained in the final linkage structure, so it is suitable for carboxyl-to-amine coupling and surface immobilization when a short linkage distance is desired.
4. DMP imidoester reactions
DMP is an imidoester crosslinker rather than an NHS ester. It reacts with primary amines and is commonly used for protein amine-to-amine crosslinking and for immobilizing antibodies onto protein A- or protein G-based supports.
3. Control Crosslinking Outcomes with the Spacer Arm
The spacer arm determines the distance between the two linked groups and also affects the flexibility, hydrophilicity, membrane permeability, and downstream analytical difficulty of the crosslinked product.
Selection point | Experimental impact | Typical use case |
Short spacer arm | Stricter spatial restriction; crosslinking efficiency may be lower | Assessing close-range interactions |
Long spacer arm | Makes linkage to target groups easier, but lowers spatial interpretation precision | When the distance between target groups is uncertain |
Polyethylene glycol spacer arm | Improves hydrophilicity and reduces hydrophobic aggregation | When conjugates precipitate easily or improved solubility is needed |
Disulfide-containing spacer arm | Can be cleaved by reducing agents | When complexes need to be compared under reducing and non-reducing conditions |
Non-cleavable spacer arm | Gives more stable linkage | Preparation of protein conjugates intended for long-term use |
Common reagent differences:
Reagent | Reaction type | Solubility and membrane permeability | Suitable use |
BS3 | Amine-amine | Water-soluble, membrane-impermeable | Cell-surface protein crosslinking |
DSS | Amine-amine | Water-insoluble, membrane-permeable | Crosslinking of intracellular proteins or membrane-associated proteins |
DTSSP | Amine-amine | Water-soluble; central disulfide bond can be reductively cleaved | Protein complexes that need to be dissociated under reducing conditions |
Sulfo-SMCC | Amine-sulfhydryl | Water-soluble | Stepwise conjugation of antibodies, enzymes, and peptides |
SMCC | Amine-sulfhydryl | Water-insoluble and must first be dissolved in an organic solvent | Conjugation systems that can tolerate a small amount of organic solvent |
DMP | Amine-amine | Water-soluble, membrane-permeable | Immobilization of antibodies onto protein A/G supports and crosslinking of protein complexes |
4. Key Operating Conditions
Crosslinking failure is often caused by buffer incompatibility, crosslinker hydrolysis, inaccessibility of the target group, excessive reagent loading, or insufficient purification. Before the reaction, samples should first be exchanged into a compatible buffer, and conditions should be determined using small-scale gradients.
Reaction system | Recommended buffer | pH | Quenching or purification |
NHS ester-primary amine | Phosphate, carbonate, borate, or 4-(2-hydroxyethyl)-1-piperazineethanesulfonic acid (HEPES) buffer | Commonly used at 7.2 to 8.5 | Quench with Tris or glycine; remove small molecules by desalting or dialysis |
Maleimide-sulfhydryl | Phosphate or HEPES buffer; ethylenediaminetetraacetic acid (EDTA) may be added to reduce metal-catalyzed oxidation | Commonly used at 6.5 to 7.5 | Remove free crosslinker; if necessary, quench with free sulfhydryl compounds |
EDC/NHS carboxyl activation | 2-(N-morpholino)ethanesulfonic acid (MES) buffer is commonly used | Commonly used at 4.5 to 7.2 | Add the amine-containing molecule after activation; cap residual active sites after the reaction |
DMP imidoester reaction | Phosphate, borate, carbonate, or HEPES buffer | Higher efficiency at 8 to 9 | Can be quenched with acid or primary amines, followed by removal of excess small molecules |
Operational control points:
Step | Key point |
Crosslinker preparation | NHS esters, maleimides, and imidoester reagents should be prepared fresh whenever possible |
Reagent ratio | Set low, medium, and high molar ratio gradients; avoid using a highly excessive condition from the start |
Reaction time | Start screening with short reaction times; optimization is often performed within the range of 30 minutes to 2 hours |
Protein concentration | Excessively high protein concentration can lead to multimer formation; excessively low concentration may reduce crosslinking efficiency |
Organic solvents | Water-insoluble reagents such as DSS and SMCC should first be dissolved in dimethyl sulfoxide (DMSO) or dimethylformamide (DMF), with the final solvent concentration controlled |
Post-treatment | Desalting, ultrafiltration, dialysis, or size-exclusion chromatography can be used to remove free crosslinker and by-products |
5. Three Common Experimental Scenarios
5.1 Capturing cell-surface receptor-ligand interactions
Item | Selection |
Recommended reagent | BS3; choose DTSSP if reductive cleavage is required |
Reason for selection | Water-soluble and membrane-impermeable, making it suitable for preferentially fixing neighboring proteins on the cell surface |
Reaction buffer | Phosphate or HEPES buffer without primary amines |
Key controls | No-crosslinker control, competing ligand control, reducing/non-reducing condition control |
Detection methods | Sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE), immunoblotting, immunoprecipitation, liquid chromatography-tandem mass spectrometry (LC-MS/MS) |
Common problems:
Observation | Cause | Solution |
High-molecular-weight smearing | Excess crosslinker, overly long reaction time, or excessively high protein concentration | Reduce the crosslinker ratio and shorten the reaction time |
No obvious complex formation | Surface primary amines are inaccessible, reaction conditions are unsuitable, or the crosslinker has hydrolyzed | Change the spacer length, prepare the reagent fresh, and optimize the pH |
High background signal | Intracellular proteins are involved, lysis conditions are too harsh, or washing is insufficient | Use membrane-impermeable reagents and increase washing and negative controls |
5.2 Preparing antibody-peptide or antibody-enzyme conjugates
Item | Selection |
Recommended reagent | Sulfo-SMCC |
Reason for selection | One end reacts with primary amines on the antibody or carrier protein, and the other end reacts with sulfhydryls on the peptide or enzyme |
Reaction mode | Stepwise conjugation |
Intermediate treatment | Free crosslinker must be removed after the first step |
Result verification | SDS-PAGE, size-exclusion chromatography, antigen-binding assay, enzyme activity assay |
Recommended workflow:
Step | Operational focus |
First step | Modify primary amines on the antibody or carrier protein with sulfo-SMCC |
Purification | Remove free sulfo-SMCC by desalting or size-exclusion chromatography |
Second step | Add a peptide, enzyme, or small molecule containing a free sulfhydryl; if the target itself does not have an available free sulfhydryl, a sulfhydryl can first be introduced using 2-iminothiolane hydrochloride (Traut’s Reagent) or SATA |
Optimization | Set input gradients for the peptide or enzyme |
Verification | Evaluate both conjugation efficiency and retention of function |
Common problems:
Observation | Cause | Solution |
Low conjugation efficiency | Sulfhydryl oxidation, interference from free reducing agents, or maleimide hydrolysis | Reduce immediately before use, desalt, and proceed rapidly to conjugation |
Decreased antibody binding ability | Random lysine modification affects the binding region | Reduce the degree of modification or switch to site-specific sulfhydryl conjugation |
Aggregation | Multisite crosslinking or excessive reagent loading | Reduce the ratio of crosslinker and peptide, and increase purification steps |
5.3 Immobilizing proteins on carboxylated magnetic beads or carboxylated surfaces
Item | Selection |
Recommended system | EDC combined with NHS or sulfo-NHS |
Reason for selection | After carboxyl activation, stable amide bonds are formed with protein primary amines |
Suitable objects | Carboxylated magnetic beads, carboxylated microspheres, carboxylated chips, carboxylated plate surfaces |
Key controls | No-EDC control, no-protein control, blank surface control after blocking |
Result verification | Immobilized amount, retained amount after washing, binding capability, enzyme activity, or antigen recognition ability |
Recommended workflow:
Step | Operational focus |
Surface activation | React the carboxylated surface with EDC/NHS |
Protein addition | Use a protein solution free of exogenous primary amines |
Blocking | Block residual active sites with ethanolamine or similar agents |
Washing | Remove non-covalently adsorbed protein |
Verification | Compare immobilization amount and retention of function |
Common problems:
Observation | Cause | Solution |
Low immobilization level | Insufficient carboxyl activation or incompatible protein buffer | Optimize activation time and buffer conditions |
High immobilization level but low activity | Random conjugation affects active sites | Reduce the degree of surface activation and adjust protein orientation |
High background adsorption | Insufficient surface blocking | Optimize the blocking agent and washing conditions |
6. Result Verification and Troubleshooting
Successful crosslinking should not be judged only by the appearance of high-molecular-weight bands. It is also necessary to determine whether the product matches the experimental objective. For structural analysis, attention should be paid to whether the crosslinking sites are interpretable; for conjugate preparation, whether function is retained; for immobilization, whether stability and activity are maintained after washing. Crosslinking combined with mass spectrometry can be used to analyze protein conformation and protein-protein interactions, but excessive crosslinking, high sample complexity, and insufficient data analysis can all reduce result reliability.
Detection method | Question answered |
SDS-PAGE | Whether dimers, multimers, or an upward molecular-weight shift appear |
Immunoblotting | Whether the target protein is present in the crosslinked complex |
Size-exclusion chromatography | Whether aggregates, free protein, and the target conjugate are present |
LC-MS/MS | Whether the crosslinking sites support spatial proximity |
Enzyme activity assay | Whether the enzyme retains activity after conjugation or immobilization |
Antigen-binding assay | Whether the antibody retains recognition ability after conjugation |
Surface binding assay | Whether the immobilized protein remains stably retained and can bind the target molecule |
Failure mode | Common cause | Solution |
Insufficient crosslinking | Inaccessible target groups, reagent hydrolysis, or unsuitable pH | Switch to a longer spacer arm, prepare reagents fresh, and optimize the pH |
Over-crosslinking | Excess crosslinker or overly long reaction time | Reduce the reagent ratio and shorten the reaction time |
Protein precipitation | Too much hydrophobic crosslinker, overly high organic solvent content, or excessive protein modification | Switch to a water-soluble crosslinker and reduce the final concentration of organic solvent |
Loss of function after conjugation | Modified sites affect the active region or binding interface | Reduce the degree of modification or switch to site-specific conjugation or a longer spacer arm |
Maleimide reaction failure | Sulfhydryl oxidation or competing reaction from reducing agents | Reduce immediately before use, desalt, and conjugate rapidly |
High background in EDC immobilization | Insufficient surface blocking or nonspecific adsorption | Add blank surface controls and optimize blocking and washing |
Complex mass spectrometry results | Over-crosslinking, excessive sample complexity, or lack of controls | Reduce the degree of crosslinking and first validate in a purified system |
7. Classification, Features, and Applications of Representative Chemicals Related to Protein Crosslinker Selection and Experimental Essentials (Tables 1-6)
Table 1. Buffers, Dilution Media, and Organic Solvents for Crosslinking Reactions
Classification | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Carboxyl activation buffer | 4432-31-9 | MES | For plant cell culture, ≥99.5% | Used to prepare reaction systems free of primary amines; commonly used for carbodiimide-mediated carboxyl activation and immobilization on carboxylated materials | |
Borate buffer component | 10043-35-3 | Boric acid | Molecular biology grade, ≥99.5%(T) | Used to prepare borate buffer; applicable to imidoester crosslinking and some primary amine modification systems | |
Bicarbonate buffer component | 144-55-8 | Sodium bicarbonate | Molecular biology grade, ≥99.7% | Used to prepare bicarbonate buffer; commonly used for reactions between active esters and protein primary amines | |
Phosphate buffer component | 7558-79-4 | Sodium phosphate dibasic | Molecular biology grade, ≥99.5%(T) | Used with sodium dihydrogen phosphate to prepare phosphate buffer for protein crosslinking, sulfhydryl conjugation, and elution systems | |
Tris buffer system component | 77-86-1 | Tris(hydroxymethyl)aminomethane (Tris base) | For cell culture, ≥99.9%(T) | Commonly used as a quenching agent or buffer component; because it contains a primary amine, it is usually avoided at the start of active ester reactions | |
Organic cosolvent | 67-68-5 | Dimethyl sulfoxide (DMSO) | Pharmaceutical grade, PharmPure™ | Used to dissolve water-insoluble crosslinkers and hydrophobic modification reagents, allowing small-volume addition into protein reaction solutions | |
Carbonate buffer component | 497-19-8 | S774703 | Sodium carbonate | Anhydrous grade, PharmPure™, JP, BP, European Pharmacopoeia (Ph. Eur.), NF | Used to prepare carbonate buffer for active ester conjugation under conditions that favor deprotonation of primary amines |
Organic cosolvent | 68-12-2 | N,N-Dimethylformamide (DMF) | Anhydrous grade, ≥99.8% | Used to dissolve hydrophobic crosslinkers, protected thiolation reagents, and some photo-crosslinking reagents | |
HEPES buffer system component | 7365-45-9 | HEPES | Animal-free, for cell culture, ≥99.5%, ultra-low endotoxin | Suitable for mild protein reaction conditions; commonly used in sulfhydryl conjugation and cell-surface crosslinking buffer systems | |
Phosphate buffer component | 10049-21-5 | Sodium dihydrogen phosphate monohydrate | European Pharmacopoeia (Ph. Eur.), suitable for analysis, ACS, premium grade | Used with sodium phosphate dibasic to prepare phosphate buffer for protein crosslinking, washing, and solution preparation before desalting |
Table 2. Broad-Spectrum Fixatives, Reducing Agents, Quenching/Blocking Reagents, and Detection-Auxiliary Reagents
Classification | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Aldehyde broad-spectrum fixative/crosslinker | 111-30-8 | Glutaraldehyde | Photographic grade, 50% in H2O | Strong aldehyde crosslinking fixative; can be used for protein fixation, enzyme immobilization, and surface activation of carriers | |
Metal ion chelating additive | 6381-92-6 | Ethylenediaminetetraacetic acid disodium salt dihydrate | For plant cell culture, ≥99% | Chelates metal ions and slows sulfhydryl oxidation; commonly used in sulfhydryl conjugation and protein preservation systems | |
Sulfhydryl reducing agent | 60-24-2 | 2-Mercaptoethanol | For cell culture, suitable for electrophoresis, molecular biology grade, ≥99% | Reduces disulfide bonds and is commonly used in sample pretreatment; usually needs to be removed before sulfhydryl conjugation | |
Reaction quenching/blocking reagent | 141-43-5 | Ethanolamine | For cell culture, ≥99% | Used to cap residual active esters or activated surfaces; commonly used in post-treatment after immobilization and affinity carrier conjugation | |
Sulfhydryl reducing agent | 3483-12-3 | DL-Dithiothreitol | Suitable for electrophoresis, ≥99% | Reduces disulfide bonds and can also cleave disulfide-containing linkages; usually needs to be removed by desalting before sulfhydryl conjugation | |
Aldehyde broad-spectrum fixative/crosslinker | 50-00-0 | Formaldehyde solution | Molecular biology grade, ≥36.0% in H2O(T), contains 10-15% methanol as stabilizer | Commonly used for cell fixation and capture of protein interactions; suitable for systems requiring relatively mild fixation conditions | |
Sulfhydryl reducing agent | 51805-45-9 | Tris(2-carboxyethyl)phosphine hydrochloride (TCEP HCl) | UltraBio™, suitable for electrophoresis, SDS-PAGE tested | A non-thiol reducing agent suitable for liberating free cysteine residues; usually does not need to be removed in advance before maleimide conjugation, while for other sulfhydryl conjugation systems, desalting should be determined according to the reagent instructions | |
Reaction quenching/blocking reagent | 56-40-6 | Glycine | UltraBio™, molecular biology grade, ultrapure grade, ≥99%(NT) | Commonly used to quench active ester reactions and to quench residual aldehyde groups after fixation | |
Sulfhydryl quantification reagent | 69-78-3 | 5,5'-Dithio bis-(2-nitrobenzoic acid) | ≥98% | Used to quantify free sulfhydryl groups and assess reduction efficiency and the degree of thiolation | |
Deprotection/cleavage auxiliary reagent | 5470-11-1 | Hydroxylammonium chloride | PrimorTrace™, ≥99.99% metals basis | Used to remove acetyl protecting groups and release sulfhydryl groups; can also be used in the post-treatment of some cleavable linkages | |
Reaction quenching/blocking reagent | 56-87-1 | L-Lysine | Moligand™, 10 mM in Water | Contains a primary amine; can be used for active ester quenching, surface blocking, and competitive blocking | |
Aldehyde broad-spectrum fixative/crosslinker | 30525-89-4 | Paraformaldehyde | AR | Polymerized formaldehyde commonly used for preparing fixation solutions; suitable for cell and tissue fixation |
Table 3. Auxiliary Reagents for Carboxyl Activation, Sulfhydryl Introduction, and Protected Thiolation
Classification | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Zero-length carboxyl activation reagent | 25952-53-8 | N-(3-Dimethylaminopropyl)-N′-ethylcarbodiimide hydrochloride | ≥98% | Zero-length carboxyl activation reagent used for direct conjugation of carboxyl groups with primary amines and for surface immobilization | |
Primary amine thiolation reagent | 4781-83-3 | 2-Iminothiolane hydrochloride | ≥98% | Converts primary amines into sulfhydryl groups, facilitating subsequent maleimide, iodoacetyl, or pyridyldisulfide conjugation | |
Carboxyl activation auxiliary reagent | 6066-82-6 | N-Hydroxysuccinimide (NHS) | ≥98% | Used with carbodiimides to form active esters and improve conjugation efficiency between carboxyl groups and primary amines | |
Water-soluble carboxyl activation auxiliary reagent | 106627-54-7 | N-Hydroxysulfosuccinimide sodium salt | ≥98% | Improves the stability of activated esters in aqueous phase and is suitable for conjugation of proteins with carboxylated materials | |
Protected sulfhydryl introduction reagent | 84271-78-3 | N-Succinimidyl-S-acetylthiopropionate | ≥95% | Introduces protected sulfhydryl groups into proteins or peptides; after deprotection, site-directed sulfhydryl conjugation can be performed | |
Protected sulfhydryl introduction reagent | 76931-93-6 | N-Succinimidyl S-Acetylthioglycolate | ≥94% | Introduces short-chain protected sulfhydryl groups into primary amine-containing molecules for subsequent sulfhydryl crosslinking and labeling |
Table 4. Homobifunctional Amine-Reactive Crosslinkers (NHS Ester Type, PEG Spacer Type, Cleavable Type, and MS-Cleavable Type)
Classification | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
MS-cleavable amine-amine crosslinker | 1351828-03-9 | Disuccinimidyl sulfoxide | ≥99% | MS-cleavable amine-amine crosslinker suitable for crosslinking mass spectrometry analysis of protein interactions and conformational restraints | |
PEG spacer amine-amine crosslinker | 1008402-79-6 | Bis-PEG17-NHS ester | ≥98% | Long PEG spacer active ester used to improve conjugate hydrophilicity and reduce aggregation | |
Non-cleavable NHS ester amine-amine crosslinker | 68528-80-3 | Di(N-succinimidyl) Suberate | ≥98% | Hydrophobic homobifunctional amine-amine crosslinker suitable for crosslinking soluble proteins and membrane-related systems | |
PEG spacer amine-amine crosslinker | 756526-03-1 | Bis-PEG5-NHS ester | ≥98% | Medium-length PEG spacer active ester that improves water solubility and post-conjugation dispersibility | |
Non-cleavable NHS ester amine-amine crosslinker | 79642-50-5 | Disuccinimidyl glutarate | ≥98% | Shorter spacer amine-amine crosslinker suitable for capturing close-range spatial proximity in proteins | |
Reducibly cleavable NHS ester amine-amine crosslinker | 57757-57-0 | Di(N-succinimidyl) 3,3'-Dithiodipropionate [Cross-linking Reagent] | ≥97% | Amine-amine crosslinker containing a disulfide bond that can be dissociated under reducing conditions after crosslinking | |
Ester-cleavable NHS ester amine-amine crosslinker | 70539-42-3 | EGS Crosslinker (EGNHS) | ≥96% | Ester bond-containing amine-amine crosslinker used in conjugation systems requiring subsequent chemical cleavage | |
MS-cleavable amine-amine crosslinker | 1240387-33-0 | Urea crosslinker – C4-arm, NHS ester (DSBU, BuUrBU) | ≥95%(NMR) | MS-cleavable urea-based crosslinker suitable for studies of protein complexes and conformation | |
Water-soluble sulfo-NHS ester amine-amine crosslinker | 82436-77-9 | BS3 Crosslinker | ≥90% | Water-soluble homobifunctional amine-amine crosslinker commonly used for cell-surface protein crosslinking | |
Water-soluble ester-cleavable amine-amine crosslinker | 167410-92-6 | Sulfo-EGS | —— | Water-soluble ester bond-containing amine-amine crosslinker suitable for aqueous protein conjugation and subsequent cleavage analysis |
Table 5. Imidoester Amine-Amine Crosslinkers and Sulfhydryl-Sulfhydryl Crosslinkers
Classification | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Imidoester amine-amine crosslinker | 34490-86-3 | Dimethyl Suberimidate Dihydrochloride | ≥98%(T) | Imidoester amine-amine crosslinker that reacts with primary amines under mildly alkaline conditions and is suitable for protein complex crosslinking | |
Imidoester amine-amine crosslinker | 58537-94-3 | Dimethyl Pimelimidate Dihydrochloride | ≥98% | Commonly used to immobilize antibodies onto protein A or protein G supports, reducing antibody contamination during immunoprecipitation elution | |
Reducibly cleavable imidoester amine-amine crosslinker | 38285-78-8 | Dimethyl 3,3′-dithiopropionimidate dihydrochloride | ≥95% | Imidoester crosslinker containing a disulfide bond that can be cleaved under reducing conditions | |
Short-chain sulfhydryl-sulfhydryl crosslinker | 5132-30-9 | 1,2-Bis(maleimido)ethane | ≥98% | Short spacer sulfhydryl-sulfhydryl crosslinker suitable for close-range linkage between two cysteine sites | |
Medium-chain sulfhydryl-sulfhydryl crosslinker | 28537-70-4 | 1,4-Bis(maleimido)butane | ≥96% | Medium spacer sulfhydryl-sulfhydryl crosslinker used for bridging cysteine sites | |
Long-chain sulfhydryl-sulfhydryl crosslinker | 4856-87-5 | 1,6-Bis(maleimido)hexane | ≥97% | Longer spacer sulfhydryl-sulfhydryl crosslinker that can be used for protein sulfhydryl bridging and conformational restriction |
Table 6. Amine-Sulfhydryl Heterobifunctional Crosslinkers and Photo-Reactive Crosslinkers
Classification | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Aromatic maleimide-NHS ester amine-sulfhydryl heterobifunctional crosslinker | 58626-38-3 | N-Succinimidyl 3-Maleimidobenzoate [Cross-linking Reagent] | ≥98%(HPLC) | Aromatic amine-sulfhydryl heterobifunctional crosslinker used for conjugation between primary amine-containing molecules and sulfhydryl-containing molecules | |
Cyclohexane maleimide-NHS ester amine-sulfhydryl heterobifunctional crosslinker | 64987-85-5 | N-Succinimidyl 4-(N-Maleimidomethyl) cyclohexanecarboxylate (SMCC) | ≥98%(HPLC) | Cyclohexane spacer amine-sulfhydryl heterobifunctional crosslinker commonly used for conjugation of antibodies, enzymes, proteins, and peptides | |
Aliphatic maleimide-NHS ester amine-sulfhydryl heterobifunctional crosslinker | 80307-12-6 | N-Succinimidyl 4-Maleimidobutyrate [Cross-linking Reagent] | ≥98%(HPLC) | Shorter aliphatic-chain amine-sulfhydryl heterobifunctional crosslinker suitable for conjugation of proteins with small molecules or peptides | |
Long-chain cyclohexane maleimide-NHS ester amine-sulfhydryl heterobifunctional crosslinker | 125559-00-4 | N-Succinimidyl 6-[[4-(N-Maleimidomethyl)cyclohexyl]carboxamido]hexanoate | ≥98%(HPLC) | Long-chain amine-sulfhydryl heterobifunctional crosslinker suitable for conjugation systems requiring a certain spacer distance | |
PEG spacer maleimide-NHS ester amine-sulfhydryl heterobifunctional crosslinker | 756525-99-2 | Maleimide-PEG4-NHS Ester | ≥98% | PEG spacer amine-sulfhydryl heterobifunctional crosslinker used to improve conjugate hydrophilicity and reduce aggregation | |
Aromatic maleimide-NHS ester amine-sulfhydryl heterobifunctional crosslinker | 79886-55-8 | N-Succinimidyl 4-(p-Maleimidophenyl)butyrate | ≥97%(HPLC) | Aromatic spacer amine-sulfhydryl heterobifunctional crosslinker suitable for directional protein-protein conjugation | |
Photo-reactive heterobifunctional crosslinker | 1239017-80-1 | NHS-Diazirine(SDA) | ≥97% | One end reacts with primary amines, while the other captures neighboring molecules upon light activation; suitable for studies of transient interactions | |
Haloacetyl amine-sulfhydryl heterobifunctional crosslinker | 72252-96-1 | SIAB (N-succinimidyl (4-iodoacetyl)aminobenzoate) | ≥97% | Iodoacetyl amine-sulfhydryl heterobifunctional crosslinker that forms stable thioether bonds with sulfhydryl groups | |
Haloacetyl amine-sulfhydryl heterobifunctional crosslinker | 57159-62-3 | SBAP (succinimidyl 3-(bromoacetamido)propionate) | ≥95% | Bromoacetyl amine-sulfhydryl heterobifunctional crosslinker used for covalent linkage between primary amines and sulfhydryl groups | |
Pyridyldisulfide amine-sulfhydryl heterobifunctional crosslinker | 1334177-95-5 | NHS-PEG4-SPDP | ≥95% | PEGylated pyridyldisulfide crosslinker that forms reducible disulfide linkages and is suitable for dissociable conjugates | |
Pyridyldisulfide amine-sulfhydryl heterobifunctional crosslinker | 68181-17-9 | SPDP (Succinimidyl 3-[2-pyridyldithio] propionate) | ≥95% | Classic pyridyldisulfide amine-sulfhydryl heterobifunctional crosslinker that forms reducible disulfide linkages | |
Haloacetyl amine-sulfhydryl heterobifunctional crosslinker | 39028-27-8 | N-Succinimidyl Iodoacetate | ≥95% | Short-chain iodoacetyl amine-sulfhydryl heterobifunctional crosslinker suitable for low-spacer sulfhydryl conjugation | |
Long-chain pyridyldisulfide amine-sulfhydryl heterobifunctional crosslinker | 158913-22-5 | SPDP-C6-NHS ester | ≥90% | Long-chain pyridyldisulfide crosslinker suitable for cleavable conjugation requiring a certain spacer distance | |
Water-soluble long-chain pyridyldisulfide amine-sulfhydryl heterobifunctional crosslinker | 169751-10-4 | SPDP-C6-Sulfo-NHS ester | ≥90% | Water-soluble long-chain pyridyldisulfide crosslinker suitable for aqueous conjugation between proteins and sulfhydryl-containing molecules | |
Water-soluble maleimide-sulfo-NHS ester amine-sulfhydryl heterobifunctional crosslinker | 185332-92-7 | Sulfo-N-succinimidyl 4-maleimidobutyrate sodium salt | ≥90% | Water-soluble maleimide active ester crosslinker suitable for conjugation of proteins with sulfhydryl-containing molecules | |
Water-soluble aromatic maleimide-sulfo-NHS ester amine-sulfhydryl heterobifunctional crosslinker | 92921-25-0 | m-Maleimidobenzoyl-N-hydroxysulfosuccinimide ester (Sulfo-MBS) | ≥80% | Water-soluble aromatic maleimide crosslinker suitable for aqueous protein conjugation and surface modification | |
Water-soluble cyclohexane maleimide-sulfo-NHS ester amine-sulfhydryl heterobifunctional crosslinker | 92921-24-9 | 4-(N-Maleimidomethyl)cyclohexane-1-carboxylic acid 3-sulfo-N-hydroxysuccinimide ester sodium salt | —— | Water-soluble cyclohexane spacer amine-sulfhydryl heterobifunctional crosslinker commonly used for conjugation of antibodies, enzymes, and proteins |
Note: The above are representative Aladdin products. For more product specifications, search by “product name/CAS/catalog number” on the Aladdin official website.
References
[1] Hermanson GT. Bioconjugate Techniques. 3rd ed. Amsterdam: Academic Press; 2013.
[2] Mattson G, Conklin E, Desai S, Nielander G, Savage MD, Morgensen S. A practical approach to crosslinking. Molecular Biology Reports. 1993;17(3):167-183. doi:10.1007/BF00986726.
[3] Thermo Fisher Scientific. Amine-Reactive Crosslinker Chemistry.
[4] Thermo Fisher Scientific. Sulfhydryl-Reactive Crosslinker Chemistry.
[5] Thermo Fisher Scientific. Carbodiimide Crosslinker Chemistry.
[6] Thermo Fisher Scientific. Imidoester Crosslinkers: DMA, DMP, DMS, DTBP.
[7] Chavez JD, Bruce JE. Chemical cross-linking with mass spectrometry: a tool for systems structural biology. Current Opinion in Chemical Biology. 2019;48:8-18. doi:10.1016/j.cbpa.2018.08.006.
[8] Piersimoni L, Kastritis PL, Arlt C, Sinz A. Cross-Linking Mass Spectrometry for Investigating Protein Conformations and Protein-Protein Interactions. Chemical Reviews. 2022;122(7):7500-7531. doi:10.1021/acs.chemrev.1c00786.
For more related articles, please see below:
General Conjugation Protocols of PEG linkers——PEG SPDP
A bridge to protein science——Aladdin@Polypeptide
Photo-activated nucleotide analog-mediated RNA-protein cross-linking experiments
