For research use only. NOT for use in diagnostic procedures.
Figure 1. Structures of Retinol and Beta Carotene (Vitamin A), 25-OH-Vitamins D2 and D3 (Vitamin D), Alpha Tocopherol (Vitamin E) and Phylloquinone and Menaquinone-4 (Vitamin K).
This application note describes the extraction of a panel of fat-soluble vitamins (including those representing Vitamins A, D, E & K) from human serum using ISOLUTE® SLE+ Supported Liquid Extraction plates prior to LC/MS analysis.
The simple sample preparation procedure delivers clean extracts and analyte recoveries approximately or above 90% with RSDs lower than 10% for all analytes.
Retinol, Beta Carotene, 25-OH Vitamin D2, 25-OH Vitamin D3, Alpha Tocopherol, Phylloquinone, Menaquinone-4.
D6 25-OH Vitamin D3 was used as an internal standard for 25-OH Vitamin D2, 25 OH Vitamin D3 and Retinol. It is recommended that an additional internal standard is used for Vitamin K.
Table 1. Concentration ranges for fat-soluble vitamins.
|
Analyte name and Vitamin reference |
Lower limit of Quantification (ng/mL) |
Upper limit of Quantification (ng/mL) |
|
Alpha Tocopherol (Vitamin E) |
800 |
40000 |
|
Retinol and Beta Carotene (Vitamin A) |
80 |
4000 |
|
25-OH Vitamins D2 & D3 (Vitamin D) |
4 |
200 |
|
Phylloquinone and Menaquinone-4 (Vitamin K) |
0.4 |
20 |
ISOLUTE® SLE+ 400 µL supported liquid extraction plate, part number 820-0400-P01.
Internal standard solution (10 µL) and 10 µL of either spiking solvent or calibration standard spiking solution (see ‘Chemicals and Reagents’ section for preparation details) were transferred to a 2 mL collection plate. 100 µL of sample or blank matrix was added, capped, briefly mixed and then left to stand in the dark for 1 hour to equilibrate. The sample was then combined with 400 µL of pre-treatment solvent, briefly mixed and then left to stand for a further 5 minutes.
Approximately 500 µL pre-treated serum (or as much of the sample as possible) was transferred to an ISOLUTE® SLE+ plate. The sample was vigorously drawn up and down into the pipette tip with additional air (by setting a larger volume than the sample e.g. 650 µL) a number of times immediately prior to transfer to create a temporary suspension. If necessary, a low positive pressure was used to push the sample into the SLE material. The ISOLUTE SLE+ plate was then left to equilibrate for 5 minutes.
Analytes were eluted with 2 x 500 µL heptane.
The extract was dried in a stream of air or nitrogen using a Biotage® SPE Dry 96 at room temperature, 20 to 40 L/min.
Evaporated samples were reconstituted with propan-2-ol (IPA, 150 µL) and mixed thoroughly.
Waters Acquity UPLC
Restek Raptor Biphenyl (100 mm x 2.1 mm, 2.7 µm) with a Restek EXP holder and guard.
A: 5 mM ammonium acetate 0.1% formic acid (v/v) in water
B: Methanol : Propan-2-ol (3:1 v/v) containing 5 mM ammonium acetate and 0.1% formic acid
0.4 mL/min
40 °C
10 °C
10 μL (Partial Loop with Needle Overfill)
Table 2. UHPLC gradient.
|
Time (min) |
%A |
%B |
|
0 |
60 |
40 |
|
3 |
0 |
100 |
|
5.1 |
0 |
100 |
|
5.2 |
60 |
40 |
|
7 |
60 |
40 |
Waters Quattro Premier XE
1200 L/hr
50 L/r
150 °C
450 °C
4 kV
3 V
Table 3. MS conditions and retention times for target analytes.
|
Analytes |
MRM Transition |
Collision Energy |
Cone, V |
Period |
|
Alpha Tocopherol (E) |
433.3 > 165.9 |
22 |
25 |
2 |
|
Retinol (A) |
269.3 > 92.9 |
20 |
18 |
1 |
|
Beta Carotene (A) |
536.3 > 444.4 |
15 |
30 |
2 |
|
25-OH Vitamin D2 |
395.5 > 269.5 |
30 |
30 |
1 |
|
25-OH Vitamin D3 |
383.5 > 257.5 |
17 |
30 |
1 |
|
Phylloquinone (K1) |
445.3 > 186.9 |
20 |
22 |
2 |
|
Menaquinone-4 (K2) |
451.4 > 187.0 |
23 |
30 |
2 |
|
D6 25-OH Vitamin D3 (IS) |
389.6 > 263.5 |
16 |
30 |
1 |
All analytes were measured in positive mode using Electrospray ionization.
Note: The transition for Alpha Tocopherol was significantly different from the optimum settings. Due to the high MS sensitivity of the analyte and the high concentrations expected this was intentionally de-tuned on the instrument.
Extraction recoveries were first measured using a manual processing method (using a Biotage® PRESSURE+ 96 manifold). The method was then transferred to a Biotage® Extrahera™ for automated processing. The Extrahera™ recoveries were slightly lower in line with the slower mixing of this compared to the manual method. Extraction recoveries (manual and automated methods), and associated RSDs are shown in table 4.
Table 4. Analyte calibration curve r2 and LOQ performance.
|
Analytes |
Manual |
Biotage® ExtraheraTM |
||
|
|
Recovery |
% RSD |
Recovery |
% RSD |
|
Retinol (A) |
94.9 |
3.3 |
75.9 |
5.3 |
|
Beta Carotene (A) |
89.0 |
4.1 |
71.3 |
10.5 |
|
25 OH Vitamin D2 (D) |
101.0 |
5.1 |
79.2 |
5.4 |
|
25 H Vitamin D3 (D) |
95.6 |
4.6 |
81.9 |
5.5 |
|
Alpha Tocopherol (E) |
99.1 |
4.6 |
84.0 |
4.6 |
|
Phylloquinone (K) |
95.7 |
10.5 |
71.0 |
6.3 |
|
Menaquinone-4 (K) |
95.7 |
9.6 |
73.4 |
4.5 |
D6 25-OH Vitamin D3 was used as an internal standard for 25-OH Vitamin D2, 25-OH Vitamin D3 and Retinol.
Figure 3. Calibration curves for 25-OH Vitamin D2 (a), 25-OH Vitamin D3 (b), Retinol (c), Alpha Tocopherol (d), Vitamin K1 (Phylloquinone) (e), Vitamin K2d4 (Menaquinone) (f) and Beta Carotene (g).
This method provides high, reproducible recoveries of a range of fat-soluble vitamins in human serum, in clinically appropriate concentration ranges.
Due to the extremely non-polar (hydrophobic) nature of the analytes, and the wide difference in biological concentration range, some non-standard modifications to the standard supported liquid extraction process were adopted in this application. See the ‘Additional Method Notes’ section for a comprehensive description of the steps taken to ensure successful extraction of these analytes.
Where solids were provided these were diluted in a stock solution solvent of MTBE + 1 mg/mL BHT.
Stock solutions were prepared at 1 mg/mL (Retinol, Phylloquinone, Menaquinone). Due to the challenges of precisely weighing an oil Alpha Tocopherol was prepared in stock solution solvent at known concentrations between 1 and 5 mg/mL. Due to limited solubility beta carotene was prepared in stock solution solvent at a concentration of 100 µg/mL. 25-OH Vitamin D2 and D3 were purchased as solutions. All stock solutions were stored protected from light at approximately -20 °C.
Spiking solvent was prepared by combining BHT in propan-2-ol (IPA) at a level of 0.1% w/v or 1 mg/mL. As an example: 100 mL of propan-2-ol would be added 100 mg of BHT.
Internal standard (D6 25-OH Vitamin D3) was diluted in spiking solvent to a concentration of 1 µg/mL. A 10 µL aliquot of this is equivalent to 100 µL of sample containing internal standard at a level of 100 ng/mL.
A spiking solvent was prepared by combining fat-soluble vitamin solutions and diluting with spiking solvent such that the following concentrations were met: Vitamin K1 and K2D4 = 200 ng/mL, 25-OH Vitamin D2 and D3 = 2 µg/mL, Retinol and Beta Carotene = 40 µg/mL and Alpha Tocopherol = 400 µg/mL. It is recommended that at least 0.5 mL of this solution is prepared on a daily basis. The “Additional Information” section contains an example spiking procedure to reach the required concentra- tions. It is recommended that this solution is prepared daily.
Calibration standard spiking solutions were prepared from the combined fat-soluble vitamin spiking solution. The “Additional Information” section contains an example spiking procedure to reach the required concentrations. It is recommended that this solution is prepared daily.
BHT was combined with a solution of IPA/heptane (1:3, v/v) at a level of 1 mg/mL.
Heptane was used as the SLE elution solvent. Hexane is an acceptable alternative, but extract cleanliness may be slightly compromised (slightly higher levels of co-extracted phospho- lipids may be observed).
Propan-2-ol was used as the reconstitution solvent.
Calibration standards were prepared by combining substock 2 with spiking solvent (see Table 5).
Table 5. Spiking regimen of calibration standard spiking solutions.
|
Standard ID |
Volume of Substock 2 (µL) |
Volume of Spiking Solvent (µL) |
|
1 |
10 |
490 |
|
2 |
10 |
240 |
|
3 |
20 |
230 |
|
4 |
40 |
210 |
|
5 |
30 |
70 |
|
6 |
60 |
40 |
|
7 |
100 |
0 |
|
Part Number |
Description |
Quantity |
|
820-0400-P01 |
ISOLUTE® SLE+ 400 µL Supported Liquid Extraction Plate |
1 |
|
PPM-96 |
Biotage® PRESSURE+ 96 Positive Pressure Manifold |
1 |
|
SD-9600-DHS |
Biotage® SPE Dry Sample Concentrator system |
1 |
|
121-5203 |
Collection Plate, 2 mL Square |
50 |
|
121-5204 |
Pierceable Sealing Mat |
50 |
The method described in this application note was automated on the Biotage® Extrahera™ using ISOLUTE® SLE+ 400 µL capacity 96-well plates. This appendix contains the software settings required to configure Extrahera™ to run this method. Screenshots may or may not match those here depending upon the instrument software version.
|
Sample Name: |
Fat Soluble Vitamins in Serum |
|
Sample Plate/Rack: |
2 mL 96 well FSV |
|
Extraction Media: |
ISOLUTE® SLE+ 400 µL 96 |
|
|
Solvent Description |
|
1 |
Heptane : Propan-2-ol |
|
2 |
Heptane |
|
3 |
|
|
4 |
|
|
5 |
|
|
6 |
|
|
7 |
|
|
8 |
|
|
9 |
|
|
10 |
|
|
Solvent |
1 |
2 |
3 |
4 |
5 |
6 |
7 |
8 |
9 |
10 |
|
Reservoir Type |
Refillable |
Non Refillable |
||||||||
|
Capacity |
||||||||||
|
Aspiration flow rate |
10 |
10 |
||||||||
|
Dispense flow rate |
10 |
10 |
||||||||
|
Aspiration post dispense? |
No |
No |
||||||||
|
Lower air gap flow rate |
10 |
10 |
||||||||
|
Lower air gap volume |
5 |
5 |
||||||||
|
Upper air gap flow rate |
120 |
20 |
||||||||
|
Upper air gap volume |
100 |
100 |
||||||||
|
Upper air gap dispense pause |
200 |
200 |
||||||||
|
Conditioning? |
Yes |
Yes |
||||||||
|
Frequency |
1st Asp. Only |
|||||||||
|
Cond. Times |
4 |
4 |
||||||||
|
Cond. Flow rate |
20 |
20 |
||||||||
|
Cond. Volume |
100 |
100 |
||||||||
|
Chlorinated |
No |
No |
||||||||
|
Serial dispense |
No |
No |
||||||||
|
Highly Volatile |
No |
No |
||||||||
Literature Number: AN945