Recommended by Marek Osinski
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We report the design and synthesis of a tetraethylene glycol- (TEG-) based bidentate ligand functionalized with dihydrolipoic acid (DHLA) and biotin (DHLA—TEG—biotin) to promote biocompatibility of luminescent quantum dots (QD's). This new ligand readily binds to CdSe—ZnS core-shell QDs via surface ligand exchange. QDs capped with a mixture of DHLA and DHLA—TEG—biotin or polyethylene glycol- (PEG-) (molecular weight average ∼600) modified DHLA (DHLA—PEG600) and DHLA—TEG—biotin are easily dispersed in aqueous buffer solutions. In particular, homogeneous buffer solutions of QDs capped with a mixture of DHLA—PEG600 and DHLA—TEG—biotin that are stable over broad pH range have been prepared. QDs coated with mixtures of DHLA/DHLA—TEG—biotin and with DHLA—PEG600/DHLA—TEG—biotin were tested in surface binding assays and the results indicate that biotin groups on the QD surface interact specifically with NeutrAvidin-functionalized microtiter well plates.
Luminescent semiconductor nanocrystals, such as those made of CdSe–ZnS core-shell quantum
dots (QD's), provide substantial advantages for use as stable fluorophores in
biological assays and imaging. As synthesized by conventional methods using high-temperature solution reaction
from organometallic precursors, highly luminescent QD's are capped with
hydrophobic organic ligands primarily made of a mixture of trioctylphosphine/trioctylphosphine
oxide (TOP/TOPO). Further surface modification is required to make them water-soluble and
biocompatible. Methods reported to date for achieving water solubility of such materials include silica coating [
We have previously utilized readily available thioctic acid and polyethylene glycols
(PEGs) in simple esterification schemes, followed by reduction of the
1,2-dithiolane to synthesize a series of PEG-terminated dihydrolipoic acid
(DHLA–PEG) capping substrates [
In this study, we further expanded those findings and report the design and synthesis of ligands functionalized with a biotin end group. The designed ligands have a central tetraethylene glycol (TEG) segment, a dithiol terminal group for anchoring on the QD surface and a lateral biotin. Appending biotin at the end of surface-attached ligands should permit the use of the ubiquitous avidin-biotin binding motif to conjugate QD's to proteins and other biomolecules via an avidin bridge. Cap exchange reactions were carried out with mixed ligands and preliminary binding assays of the biotin-coated water-soluble QD's to NeutrAvidin-functionalized substrates showed that specific capture of the QD's due to avidin-biotin interactions was achieved.
All manipulations were carried out under dry nitrogen and air-sensitive solids were handled in an MBraun Labmaster
130 glovebox. TEG was purchased from Sigma-Aldrich (Milwaukee, Wis, USA). Triphenylphosphine, thioctic acid, 4-(
1H NMR spectra were recorded on a Bruker SpectroSpin 400 MHz spectrometer. Electronic absorption spectra were recorded using an HP 8453 diode array spectrophotometer (Agilent technologies, Santa Clara, Calif, USA), while fluorescence spectra were collected using a Spex Fluorolog-3 spectrophotometer (Jobin Yvon Inc, Edison, NJ, USA). To account for the nonlinear (wavelength-dependent) quantum efficiency of the PMT detector, the fluorescence spectra were corrected using calibration curves accounting for the wavelength-dependence of the PMT's detection efficiency.
The biotin-terminated ligands were synthesized stepwise using commercially available TEG. The choice of a short TEG segment to test this synthetic scheme was motivated by the well-defined chain length of the TEG molecules compared to longer PEG chains, which is expected to make separation using column chromatography easier. In the following section we detail the synthesis of each intermediate compound necessary for preparation of the final DHLA–TEG–biotin ligand. All the compounds were characterized by thin layer chromatography (TLC) and 1H NMR.
Diazide-functionalization of TEG (
Transformation to monoamine-terminated
TEG (
Coupling of amino-terminated TEG to thioctic acid: TA-TEG-N3,
compound
Transformation to amine-terminated TA-TEG,
compound
Biotinyl-
Compound
The CdSe–ZnS core-shell QD's used
were synthesized using high-temperature reaction of organometallic precursors
in a mixture of TOP/TOPO and alkylamine, as described in the literature [
Samples were separated in agarose gels as described previously [
The binding capacity of NeutrAvidin-covered 96-well microtiter
flat-bottom plates from Pierce Biotechnology is 60 picomoles of biotin per
well. 100
The chemical structures and synthetic schemes of a few representative ligands
(namely DHLA, DHLA–PEG600, and DHLA–TEG–biotin) and
reaction steps involved are summarized in
We verified quality of the new compounds by collecting 1H-NMR spectra
throughout the various steps employed.
The 1H-NMR spectra show that TEG-modified compounds have
large peaks around ∼3.6 ppm, which are ascribed to CH2 groups of TEG
chains. After coupling between
We have previously shown that QD's capped with DHLA–PEG600 or DHLA–PEG1000 ligands
can be dispersed in buffers with pH ranging between 5 ∼ 12 [
In the first characterization experiment of the cap exchange, we monitored changes in the electrophoretic
mobility of QD's (run on a 1.5% agarose gel) as a function of the capping
mixture used. The gel image in
Absorption
and fluorescence spectra were measured for both the native TOP/TOPO-capped QD's
in toluene and the new hydrophilic QD's capped with DHLA–TEG derivatives
in H2O (data not shown).
Absorption spectra measured before and after the cap exchange were
essentially unchanged, though a few nm red shift of the lowest absorption
maximum of the hydrophilic QD's was occasionally measured compared with that of
QD's capped with TOP/TOPO ligands. The
fluorescence spectra showed similar trends.
These occasional small changes in the optical properties of QD's
following transfer into aqueous solutions are commonly observed [
QD's cap-exchanged with mixture containing the new DHLA–TEG–biotin ligands
were also stable and aggregate-free over extended periods of time
(months).
Once
cap exchange with biotin-terminated DHLA–TEG and transfer
into aqueous environment was successfully realized, targeted biological assays
were carried out. The binding properties
of QD's partially capped with biotin-terminated DHLA–TEG (
We have demonstrated simple and efficient synthetic procedures to prepare new biotin-functionalized ligands based on the DHLA motif and employing short TEG segment. The present synthetic route provided high quality and stable compounds, which were further employed to make biotin-functionalized luminescent QD's, using easy-to-implement cap exchange procedure. The new biotin-appended ligand mixed with either DHLA or DHLA–PEG600 effectively cap exchanged with the native TOP/TOPO and provided QD's that are water-soluble over extended periods of time and biologically active. QD's cap-exchanged with a mixture of DHLA–PEG600 (neutral) and DHLA–TEG–biotin showed specific interactions with NeutrAvidin in surface binding assays. The present synthetic methodologies of hydrophilic surface ligands and cap-exchange reactions promise access to a variety of biological entities. Further studies of these surface-functionalized QD's for coupling with a variety of bioreceptors and biological assays are in progress.
The authors acknowledge NRL, Office of Naval Research (ONR), and the Army Research Office for financial support.
Chemical structures and synthetic routes
of the surface ligands used in this study: (A) (i) MsCl, Et3N, THF, 0°C→20°C, 20 hours, (ii) NaN3, NaHCO3, H2O,
70°C, 14 hours; (B) PPh3, 0.7 M H3PO4, Et2O,
<5°→room temperature, 16 hours; (C) DCC, DMAP, CH2Cl2,
0°C, 2 hour→room temperature, 20 hours; (D) PPh3, H2O,
THF, reflux, 20 hour→room temperature, 20 hours; (E) Biotin
Gel shift of 510-nm emitting CdSe–ZnS QD's coated with different ligands in 1.5% agarose gel buffered with TBE buffer: (A,E) DHLA; (B) DHLA–PEG600; (C) DHLA : DHLA–TEG–Biotin (7 : 1); (D) DHLA–PEG600 : DHLA–TEG–Biotin (7 : 1).
Luminescence image set of 540 nm emitting CdSe–ZnS QD with DHLA–PEG600 : DHLA–TEG–Biotin (4 : 1) at pH 5.5 ∼ 9 in phosphate buffer saline at various pH values at room temperature. Samples were excited with a handheld UV lamp at 365 nm.
Surface binding plate assay of QD's with
different surface ligands: (