We present a protocol for the construction of thioether/vinyl sulfide-tethered helical peptides using photo-induced thiol-ene/thiol-yne hydrothiolation.
Here, we describe a detailed protocol for the preparation of thioether-tethered peptides using on-resin intramolecular/intermolecular thiol-ene hydrothiolation. In addition, this protocol describes the preparation of vinyl-sulfide-tethered peptides using in-solution intramolecular thiol-yne hydrothiolation between amino acids that possess alkene/alkyne side chains and cysteine residues at i, i+4 positions. Linear peptides were synthesized using a standard Fmoc-based solid-phase peptide synthesis (SPPS). Thiol-ene hydrothiolation is carried out using either an intramolecular thio-ene reaction or an intermolecular thio-ene reaction, depending on the peptide length. In this research, an intramolecular thio-ene reaction is carried out in the case of shorter peptides using on-resin deprotection of the trityl groups of cysteine residues following the complete synthesis of the linear peptide. The resin is then set to UV irradiation using photoinitiator 4-methoxyacetophenone (MAP) and 2-hydroxy-1-[4-(2-hydroxyethoxy)-phenyl]-2-methyl-1-propanone (MMP). The intermolecular thiol-ene reaction is carried out by dissolving Fmoc-Cys-OH in an N,N-dimethylformamide (DMF) solvent. This is then reacted with the peptide using the alkene-bearing residue on resin. After that, the macrolactamization is carried out using benzotriazole-1-yl-oxytripyrrolidinophosphonium hexafluorophosphate (PyBop), 1-hydroxybenzotriazole (HoBt), and 4-Methylmorpholine (NMM) as activation reagents on the resin. Following the macrolactamization, the peptide synthesis is continued using standard SPPS. In the case of the thio-yne hydrothiolation, the linear peptide is cleaved from the resin, dried, and subsequently dissolved in degassed DMF. This is then irradiated using UV light with photoinitiator 2,2-dimethoxy-2-phenylacetophenone (DMPA). Following the reaction, DMF is evaporated and the crude residue is precipitated and purified using high-performance liquid chromatography (HPLC). These methods could function to simplify the generation of thioether-tethered cyclic peptides due to the use of the thio-ene/yne click chemistry that possesses superior functional group tolerance and good yield. The introduction of thioether bonds into peptides takes advantage of the nucleophilic nature of cysteine residues and is redox-inert relative to disulfide bonds.
The development of ligands to modulate protein-protein interactions (PPIs) provides an attractive approach for modern drug discovery. Thus, a great deal of effort has been invested into studying novel chemical modalities that could efficiently modulate PPIs1,2,3. PPIs generally consist of shallow, large, and/or discontinued interacting surfaces, and small molecules are typically considered to be unsuitable ligands for the modulation of PPIs4,5. With a suitable exposed interacting surface area, short peptides that mimic the structural features of protein interfaces represent ideal candidates to address this problem6,7. However, short peptides are typically unstructured in an aqueous solution. This is due to the fact that water molecules which compete with the intramolecular hydrogen bonding network of the peptide backbone and well-defined conformations are entropically unfavorable in water8. In addition, the peptides' inherently low stability and cell permeability properties largely limit their use in biological applications9,10. According to the protein data bank (PDB) analysis, >50% of PPIs involve short α-helix interactions11. Thus, different chemical methods have been developed in regard to helix stabilization. These include disulfide/thioether bond formation12,13,14, ring-closing metathesis15, lactam ring formation16, "click" chemistry17, addition of perfluoroarenes18,19, and vinyl-sulfide formation20.
Stabilized helical peptides are widely utilized for various intracellular targets, including p53, estrogen receptors, Ras, BCL-2 family proteins, and others21,22,23,24. ALRN-6924, an all-hydrocarbon stapled peptide dual inhibitor of MDM2 and MDMX, is currently being used for clinical investigation25. In the past few years, our group has focused on the development of novel peptide stabilization methods using thiol-ene and thiol-yne reactions26,27,28. In general, we have demonstrated that these photo-initiated reactions are efficient under mild conditions when naturally abundant cysteine is used. In addition, we have shown that these reactions have an excellent functional group tolerance, are bio-orthogonal, and have been proven to be applicable for peptide and protein modifications29. The resulting thioether/vinyl sulfide tethered peptides largely improve the chemical space of constraint peptides, provide a labile on-tether modification center, and is proven to be applicable for uses in numerous biological applications30,31,32. To date, only limited reports have been described regarding thiol-ene/thiol-yne peptide cyclization. In a study published by Anseth et al. in 2009, an on-resin intramolecular thiol-ene reaction for peptide cyclization between activated alkenes with cysteine was demonstrated33. In 2015, Chou et al. described a two-component radical initiated thiol-ene reaction for peptide stapling34 and a subsequent, sequential thiol-yne/ene coupling reaction35. Recently, we described a series of work based on thioether/vinyl sulfide tethered peptides20,26,27. This protocol describes a detailed synthesis of the above-mentioned thioether/vinyl sulfide tethered peptides in hope that it will be helpful for the broader research community.
1. Equipment Preparation
2. Resin Preparation
NOTE: In general, the construction of peptide substrates is carried out using Fmoc-based solid-phase peptide synthesis protocols. These are carried out using the rink amide resin which leaves a C-terminal amide remaining following peptide cleavage. This protocol is used throughout the paper.
CAUTION: N,N-dimethylformamide (DMF), dichloromethane (DCM), 4-methylmorpholine (NMM), and N,N-diisoproylethylamine (DIPEA) are toxic and harmful by inhalation, ingestion, or skin contact. Diethyl ether is highly flammable. Trifluoroacetic acid (TFA) is corrosive. 1,2-ethanedithiol (EDT) is highly malodorous. Therefore, all organic solvents and chemicals should be handled with appropriate personal protective equipment (nitrile gloves, lab coat, and protective eyeglasses) and handled inside a chemical fume hood.
3. N-terminal Fmoc Deprotection and Washing
4. Fmoc-protected Amino Acid Coupling
5. Thiol-ene Hydrothiolation and Thiol-yne Cyclization
The HPLC and MS spectra of the peptide Ac-YmS5AAAC-NH2 and its cyclized product Ac-Y-(cyclo-1,5)-[mS5AAAC]-NH2 that were generated using the on-resin intramolecular thiol-ene photoreaction are depicted in Figure 6B. The cyclic peptide was found to have an identical molecular weight relative to its linear precursor. However, its HPLC retention time was observed to be approximately 2 min earlier than that of its precursors under the same separation conditions. Short peptides with different sequences were all observed to have a good conversion, as depicted in Figure 6C.
The screening process for the thio-yne photoreaction conditions is depicted in Figure 7B, and the isomer conversion and ratio were determined using the integration of reverse-phase HPLC. Only trace levels of peptide 2c were observed following UV irradiation. This is likely due to a conformational preference for a trapping of the thiyl radical at the N-terminus during the contracting step to a 20-membered macrocycle. Both peptides 1a and 1b were found to generate two isomers with an 8-member vinyl sulfide crosslink. Peptides 2a-A and 2a-B, which were generated from peptide 1a, exhibited distinct retention times as well as different ratios for different UV irradiation times (0 – 30 min) (Figure 7C). These were assigned as the E/Z isomers due to the double bond proton signals on the 1H-NMR spectroscopy (Figure 7D). In the case of peptides 2d-2f, the Z-isomer was found to be the dominant product. This is likely due to the conformational preference during the construction of a compact structure relative to the 8-member vinyl sulfide crosslink. As depicted in Figure 7E, according to the circular dichroism (CD) spectrum, peptides 2a-A/B and 2b-A/B that possess an 8-member vinyl sulfide crosslink exhibit a random coil, while peptide 2d that possesses a 7-member vinyl sulfide crosslink exhibits a helical conformation. In summary, the Z-isomer of the vinyl sulfide bond was found to be formed preferentially and displayed a better helix induction.
Figure 1: Manual peptide-synthesis apparatus for solid phase peptide synthesis. The columns were placed on the vacuum manifold through the three-way stopcocks and the apparatus was connected to a nitrogen or argon gas line for the bubbling. Please click here to view a larger version of this figure.
Figure 2: The photoreactor device used for the photoreactions. The device was equipped with ten 350 nm lamps (Table of Materials) for UV irradiation and an argon gas tank to ensure that the photoreactor was filled with argon gas prior to and during the photoreactions. Please click here to view a larger version of this figure.
Figure 3: On-resin intramolecular thiol-ene reaction in the case of shorter peptides. This reaction was carried out using an on-resin deprotection of the trityl groups of cysteine residues following the complete synthesis of the linear peptide and then set the resin to the UV irradiation using the photoinitiators MAP and MMP. Please click here to view a larger version of this figure.
Figure 4: On-resin intermolecular thio-ene reaction. This reaction was carried out by dissolving Fmoc-Cys-OH in the DMF solvent and then irradiated with the alkene-bearing peptide residue on the resin, followed by a macrolactamization using PyBop, HoBt, and NMM as activation reagents. Then the peptide synthesis was continued using a standard SPPS. Please click here to view a larger version of this figure.
Figure 5: Intramolecular thiol-yne reaction in solution phase. This reaction was carried out in the solution phase following the complete synthesis of the linear peptide, after which the linear peptide was dissolved in degassed DMF and irradiated using UV light with the photoinitiator DMPA. Please click here to view a larger version of this figure.
Figure 6: Thioether tethered cyclic peptides generated using an on-resin intramolecular thiol-ene reaction. A. This panel shows the scheme of the on-resin intramolecular thio-ene reaction. mS5: "m" represents the mono-substituted olenic amino acids, "S" represents the S configured amino acid, and "5" refers to the number of side chain atoms38. B. This panels shows the HPLC and MS spectra of the peptide Ac-YmS5AAAC-NH2 prior to and following its cyclization. C. This panel shows the conversion of the cyclic peptides with different sequences. This figure has been modified from Zhao, B. et al.28 Please click here to view a larger version of this figure.
Figure 7: Peptide stapling through photo-induced thiol-yne hydrothiolation. A. This is a schematic illustration of intramolecular thiol-yne hydrothiolation. B. This panel shows the peptide sequences evaluated in this study. Initiator: (I) 0.5 eq. DMPA, 1 h; (II) no initiator, 1 h; (III) 0.5 eq. DMPA, 0.5 eq. MAP, 1 h; (IV) 0.5 eq. MMP, 0.5 h. C. This panel shows the HPLC traces of the reaction mixture of peptide 1a with different UV irradiation times and monitored at 220 nm. D. This panel shows the 1H-NMR spectra of 1a, 2a-A, and 2a-B (measured in DMSO-d6 at 400 MHz). The asterisks indicate the formation of a vinyl sulfide double bond following UV irradiation. E. This panel shows the circular dichroism spectra of peptides with vinyl sulfide cross-links. This figure has been modified from Tian, Y. et al.44 Please click here to view a larger version of this figure.
Materials | MW | N(0.5mmol/g Resin×0.05g×5eq.) | M(Amino Acid) (mg) |
(Da) | (mmol) | ||
Fmoc-Gly-OH | 297 | 0.125 | 37.1 |
Fmoc-Ala-OH | 331 | 0.125 | 41.4 |
Fmoc-Val-OH | 339 | 0.125 | 42.4 |
Fmoc-Leu-OH | 353 | 0.125 | 44.1 |
Fmoc-Ile-OH | 353 | 0.125 | 44.1 |
Fmoc-Pro-OH | 337 | 0.125 | 42.1 |
Fmoc-Phe-OH | 387 | 0.125 | 48.4 |
Fmoc-Tyr(tBu)-OH | 460 | 0.125 | 57.5 |
Fmoc-Trp(Boc)-OH | 527 | 0.125 | 65.9 |
Fmoc-Ser(tBu)-OH | 384 | 0.125 | 48 |
Fmoc-Thr(tBu)-OH | 398 | 0.125 | 49.8 |
Fmoc-Cys(Trt)-OH | 586 | 0.125 | 73.3 |
Fmoc-Met-OH | 372 | 0.125 | 46.5 |
Fmoc-Asn(Trt)-OH | 597 | 0.125 | 74.6 |
Fmoc-Gln(Trt)-OH | 611 | 0.125 | 76.4 |
Fmoc-Asp(OtBu)-OH | 412 | 0.125 | 51.5 |
Fmoc-Glu(OtBu)-OH | 426 | 0.125 | 53.3 |
Fmoc-Lys(Boc)-OH | 469 | 0.125 | 58.6 |
Fmoc-Arg(Pbf)-OH | 617 | 0.125 | 77.1 |
Fmoc-His(Trt)-OH | 620 | 0.125 | 77.5 |
HCTU | 414 | 0.122 | 50.5 |
DIPEA | 129 | 0.25 | 43.5(μL) |
DMF | 0.5 mL |
Table 1: The amounts of the coupling conditions.
Column | Zorbax SB-Aq column, 4.6 × 250 mm(pore size 80 Å, particle size 5 μm) |
Solvents | A: water, 0.1% (vol/vol) TFA; B: acetonitrile |
Flow rate | 1 mL/min |
Gradient | 20–70% (vol/vol) B over 25 min; 70%-98% over 5 min; 98% over 5min; |
Injection volume | 30–500 μL |
Wavelength (nm) | 280 (for Fmoc-, Trp- or Tyr-containing peptides), or 494 (FITC-labeled peptides) or 220 (for others) |
Table 2: High-performance liquid chromatography conditions.
In the on-resin intramolecular thio-ene cyclization described in Figure 3, the removal of the trityl group of a cysteine residue was found to be a critical step for the subsequent photoreaction. In addition, the peptide molecular weight prior to and following the reaction was found to be identical as depicted in Figure 6B. Therefore, the use of an HPLC identification or a DTNB assay is required in order to monitor the reaction. In the case of the intermolecular thio-ene reaction described in Figure 4, MS monitoring is necessary. While a further step of lactam coupling was found to be required for the construction of a thioether tether, we suggest that this protocol will be used for long peptides in order to achieve an overall higher efficiency.
The vinyl sulfide bond generated by the thio-yne photoreaction was not stable in the strongly acidic TFA solution that is used for resin cleavage. Therefore, the use of the thio-yne photoreaction in the solution phase was adopted. This reaction was diluted to a low concentration (0.5 mM) in order to avoid potential intermolecular by-reactions. It is also equally important to degas the solvent in order to avoid product oxidation during the photoreactions. Following the reaction, vacuum evaporation of the organic solvent DMF should also be carefully carried out in order to prevent peptide oxidation/degradation or machinery depreciation. The thio-yne cyclization reaction depicted in Figure 5 provides a mechanism for post-peptide synthesis modification35.
While the intramolecular thiol-ene reaction successfully generated thioether tethered peptides with good conversion, a simple thioether cross-link failed to constrain the peptides into the desired helical conformation. Based on this on-tether modification strategy, an in-tether chiral center induced peptide helicity concept was developed, where the γ substituted group with the R configuration at the peptide C-terminal was able to induce the peptide's helical conformation (Figure 4)39,40. The limitation associated with this approach is the synthesis of the enantiomerically pure unnatural amino acid with two chiral centers (α(S), γ(R))41,42.
This research demonstrated that the thio-yne reaction can constrain the peptide into a helical conformation with good conversion, as depicted in Figure 7E. In terms of the construction of helical peptides, we recommend thio-yne photoreaction for the construction of helical peptides. The on-resin intramolecular thio-ene cyclization was demonstrated to be suitable for the construction of short thioether tether peptides (less than 15) in case long peptides are too flexible to ensure effective cyclization. In addition, the on-resin intermolecular thio-ene cyclization is recommended for long peptide cyclization.
In summary, we have developed a series of chemical protocols for the construction of thioether/vinyl sulfide tethered peptides through the use of photoinduced thio-ene/thio-yne click chemistry. The reaction is efficient, metal catalyst-free, convenient for manipulations, and has been demonstrated to possess a superior functional group tolerance and bio-orthogonal. Further, this method was developed in order to stabilize other peptide secondary structures such as a β-hairpin43,44. This paper shows that the thioether tether provides a traceless modification site. This largely expands the chemical space following peptide synthesis modification. Furthermore, the aliphatic thioether/vinyl sulfide tethered peptides that exhibited a reduced membrane toxicity relative to the hydrocarbon staple peptides are applied in diverse biological applications with demonstrated good bioactivity and bioavailability45,46.
The authors have nothing to disclose.
The authors acknowledge financial support from the Natural Science Foundation of China Grants (No. 21372023, 21778009 and 81701818); the Ministry of Science and Technology of the People's Republic of China (No. 2015DFA31590); the Shenzhen Science and Technology Innovation Committee (No. JCYJ20170412150719814, JCYJ20170412150609690, JCYJ20150403101146313, JCYJ20160301111338144, JCYJ20160331115853521, JSGG20160301095829250, and GJHS20170310093122365); and the China Postdoctoral Science Foundation (No. 2017M610704).
Rink Amide MBHA resin(0.53 mmol/g) | HECHENG | GRM50407 | |
Standard Fmoc-protected amino acids | GL Biochem (Shanghai) Ltd. | ||
N-Methyl-2-pyrrolidinone | Shenzhen endi Biotechnology Co.Ltd. | 3230 | skin harmful |
N,N-Dimethyl formamide | Energy | B020051 | skin harmful |
Dichloromethane | Energy | W330229 | skin harmful |
N,N-Diisoproylethylamine | Aldrich | 9578 | irritant |
Trifluoroacetic acid | J&K | 101398 | corrosive |
Triisopropylsilane | J&K | 973821 | |
1,2-Ethanedithiol | J&K | 248897 | Stench |
2-(6-Chloro-1H-benzotriazole-1-yl)-1,1,3,3-tetramethylaminium hexafluorophosphate | GL Biochem (Shanghai) Ltd. | 851012 | |
Morpholine | Aldrich | M109062 | irritant |
Diethyl ether | Aldrich | 673811 | flammable |
Acetonitrile | Aldrich | 9758 | toxicity |
Methanol | Aldrich | 9758 | toxicity |
2-hydroxy-1-[4-(2-hydroxyethoxy)-phenyl]-2-methyl-1-propanone | Energy | A050035 | |
4-methoxyacetophenone | Energy | A050098 | |
2,2-dimethoxy-2-phenylacetophenone | Energy | D070132 | |
5,5'-Dithiobis-(2-nitrobenzoic acid) | J&K | 281281 | |
Benzotriazole-1-yl-oxytripyrrolidinophosphonium hexafluorophosphate | Energy | E020172 | |
1-Hydroxybenzotriazole | Energy | D050256 | |
4-Methylmorpholine | Energy | W320038 | |
High Performance Liquid Chromatography | SHIMADZU | LC-30AD | |
Electrospray Ionization Mass | SHIMADZU | LCMS-8030 | |
Lyophilizer | Labconco | FreeZone | |
SpeedVac concentration system | Thermo | Savant | |
vacuum manifold | promega | A7231 | |
three-way stopcocks | Bio-Rad | 7328107 | |
poly-prep chromatography columns | Bio-Rad | 7311550 |