3-(2-Pyridyldithio)propanoic acid

 CAS No.: 68617-64-1  Cat No.: BP-501333  Purity: 95% 4.5  

3-(2-Pyridyldithio)propanoic acid is a heterobifunctional disulfide-containing linker building block featuring a pyridyl disulfide moiety tethered to a propanoic acid handle. The pyridyl disulfide group is a well-established thiol-reactive functionality that undergoes exchange with protein or small-molecule thiols, forming a new disulfide bond while releasing pyridine-2-thione. In PROTAC and targeted protein degradation workflows, this chemistry enables controlled conjugation of thiol-bearing ligands (e.g., cysteine- or engineered thiol-containing binding elements) to the remainder of a degrader construct, or facilitates assembly of multi-component systems through disulfide-mediated linkage. The carboxylic acid provides an additional site for coupling or further functionalization, supporting modular synthesis and purification strategies. As a result, it is valuable for researchers seeking reliable, reversible disulfide conjugation to generate degraders with tunable attachment chemistry and experimentally tractable construct assembly.

3-(2-Pyridyldithio)propanoic acid

Structure of 68617-64-1

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Category
PROTAC Linker
Molecular Formula
C8H9NO2S2
Molecular Weight
215.29
Appearance
White Solid

* For research and manufacturing use only. Not for human or clinical use.

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Purity
95%
Solubility
In DMSO: 250 mg/mL (1161.22 mM; Need ultrasonic)
Appearance
White Solid
Application
Crosslinking agent in immobilization of thrombogenesis-inhibiting enzymes
Storage
4°C, stored under nitrogen; In solvent, -80°C, 6 months; -20°C, 1 month (stored under nitrogen)
Shipping
Room temperature in continental US; may vary elsewhere.
IUPACName
3-(pyridin-2-yldisulfanyl)propanoic acid
Synonyms
2-Carboxyethyl 2-Pyridyl Disulfide; 3-(2-Pyridinyldithio)propanoic Acid
InChI Key
DJBRKGZFUXKLKO-UHFFFAOYSA-N
InChI
InChI=1S/C8H9NO2S2/c10-8(11)4-6-12-13-7-3-1-2-5-9-7/h1-3,5H,4,6H2,(H,10,11)
SMILES
C1=CC=NC(=C1)SSCCC(=O)O
1. Grafting of wool fibers through disulfide bonds: An advanced application of S-protected thiolated starch
Nguyet-Minh Nguyen Le, Christian Steinbring, Barbara Matuszczak, Randi Angela Baus, Martina Tribus, Tung Pham, Thomas Bechtold, Andreas Bernkop-Schnürch Int J Biol Macromol. 2020 Mar 15;147:473-481.doi: 10.1016/j.ijbiomac.2020.01.075.Epub 2020 Jan 9.
The purpose of this study is to develop a potential pathway for grafting polymers onto wool fibers based on thiol-disulfide exchange reactions. S-protected thiolated starch (PTS) was synthesized by coupling 3-(2-pyridyldithio) propanoic acid to starch through esterification, resulting in 417.3 ± 15.1 μmol ligand binding to 1 g of starch. PTS was labelled with fluorescein isothiocyanate (FITC) prior to grafting. Wool fibers were preactivated by raising the amount of thiol groups utilizing mild reducing agents. The highest degree of preactivation on the surface of wool fibers was achieved by a 0.2% (w/v) sodium borohydride and 1.5% (w/v) sodium bisulfite mixture pH 5.0 resulting in 182.6 ± 8.7 μmol thiol groups per gram of fibers. Different incubation times and ratios between FITC-labelled PTS and wool fibers were investigated. A graft yield of 58.5% was achieved at a ratio of 1:1.5 (w/w) between wool fibers and FITC-labelled PTS within 18 h of incubation. Successful coating of PTS on wool fibers was confirmed by confocal imaging, scanning electron microscopy and FT-IR. Mechanical properties of grafted wool fibers were tested regarding elongation and tensile strength. These results provide evidence for the potential of S-protected thiolated starch as a superior coating material for wool fibers.
2. Preparation of tethered-lipid bilayers on gold surfaces for the incorporation of integral membrane proteins synthesized by cell-free expression
Angélique Coutable, Christophe Thibault, Jérôme Chalmeau, Jean Marie François, Christophe Vieu, Vincent Noireaux, Emmanuelle Trévisiol Langmuir. 2014 Mar 25;30(11):3132-41.doi: 10.1021/la5004758.Epub 2014 Mar 11.
There is an increasing interest to express and study membrane proteins in vitro. New techniques to produce and insert functional membrane proteins into planar lipid bilayers have to be developed. In this work, we produce a tethered lipid bilayer membrane (tBLM) to provide sufficient space for the incorporation of the integral membrane protein (IMP) Aquaporin Z (AqpZ) between the tBLM and the surface of the sensor. We use a gold (Au)-coated sensor surface compatible with mechanical sensing using a quartz crystal microbalance with dissipation monitoring (QCM-D) or optical sensing using the surface plasmon resonance (SPR) method. tBLM is produced by vesicle fusion onto a thin gold film, using phospholipid-polyethylene glycol (PEG) as a spacer. Lipid vesicles are composed of 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC) and 1,2-distearoyl-sn-glycero-3-phosphoethanolamine-N-poly(ethyleneglycol)-2000-N-[3-(2-pyridyldithio)propionate], so-called DSPE-PEG-PDP, at different molar ratios (respectively, 99.5/0.5, 97.5/2.5, and 95/5 mol %), and tBLM formation is characterized using QCM-D, SPR, and atomic force technology (AFM). We demonstrate that tBLM can be produced on the gold surface after rupture of the vesicles using an α helical (AH) peptide, derived from hepatitis C virus NS5A protein, to assist the fusion process. A cell-free expression system producing the E. coli integral membrane protein Aquaporin Z (AqpZ) is directly incubated onto the tBLMs for expression and insertion of the IMP at the upper side of tBLMs. The incorporation of AqpZ into bilayers is monitored by QCM-D and compared to a control experiment (without plasmid in the cell-free expression system). We demonstrate that an IMP such as AqpZ, produced by a cell-free expression system without any protein purification, can be incorporated into an engineered tBLM preassembled at the surface of a gold-coated sensor.
3. Enzyme potentiated radioimmunoassay (EPRIA): a sensitive third-generation test for the detection of hepatitis B surface antigen
H A Fields, C L Davis, G R Dreesman, D W Bradley, J E Maynard J Immunol Methods. 1981;47(2):145-59.doi: 10.1016/0022-1759(81)90115-0.
A sensitive, specific immunoassay for detection of hepatitis B surface antigen (HBsAg) is described. The assay combined enzyme-linked immunosorbent assay and solid-phase radioimmunoassay and is termed enzyme potentiated radioimmunoassay (EPRIA). HBsAg was quantitated by enzymatic conversion of L[14C]glutamic acid to 14CO2 and gamma-aminobutyric acid by glutamate decarboxylase (GDC) conjugated wih goat anti-HGs IgG. Conjugation of IgG and GDC was by a thiol-disulfide bond exchange reaction after reacting N-succinimidyl 3-(2-pyridyldithio) propionate (SPDP) with each reagent. A positive/negative ratio of 2.2 was established as significant by examination of 40 normal sera negative for HBsAg. This value was the mean cpm plus 3 standard deviations. By an identical statistical analysis of sensitivity, EPRIA was found to be approximately 100-fold more sensitive than Ausria II (Abbott Laboratories, North Chicago, IL).
ConcentrationVolumeMass1 mg5 mg10 mg
1 mM4.6449 mL23.2245 mL46.4490 mL
5 mM0.9290 mL4.6449 mL9.2898 mL
10 mM0.4645 mL2.3224 mL4.6449 mL

3-(2-Pyridyldithio)propanoic acid, provides a reactive dithio functionality that can be leveraged to build degraders requiring thiol-mediated conjugation and controlled linkage formation. Its pyridyl-disulfide motif is well suited for forming reversible disulfide bonds with thiol-containing partners, enabling modular assembly of PROTAC constructs. The structural design supports stable incorporation into larger degradation scaffolds, and the subsequent sections describe its structure and practical reactivity considerations in PROTAC synthesis.

Structure: The linker contains a carboxylic acid group and a pyridyl-disulfide moiety connected through a propyl spacer. It features disulfide (S–S) bonding and aromatic heterocycle character, with an acidic functionality that can influence solubility and coupling behavior under standard organic synthesis conditions.

Reactivity: The pyridyl-disulfide group undergoes thiol–disulfide exchange, where nucleophilic thiols generate a new disulfide linkage while releasing the pyridine leaving group. PROTAC assembly typically employs thiol-containing ligands or intermediate functionalized handles under mild, non-reducing conditions to preserve disulfide integrity. Commonly used solvents include polar aprotic or buffered aqueous-organic mixtures, and reaction progress is often monitored by analytical methods suitable for disulfide exchange.

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Tip: Chemical formula is case sensitive. C22H30N4O c22h30n40
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