| Literature DB >> 31935808 |
Dong Han Won1,2, Heejun Park2, Eun-Sol Ha2, Yong Min Kim1, Hyung Don Hwang1, Sun Woo Jang1, Min-Soo Kim2.
Abstract
The aim of this study was to investigate the effects of various parameters at each control strategy in drug product degradation on the stability of pemetrexed in injectable aqueous solution. A forced degradation study confirmed that oxidation is the main mechanism responsible for the degradation of pemetrexed in aqueous solutions. As control strategies, the antioxidant levels, drug concentration, pH of the control formulation, dissolved oxygen (DO) levels in the control process, and headspace oxygen levels in the control packaging were varied, and their effects on the stability of pemetrexed were evaluated. Sodium sulfite was found to be particularly effective in preventing the color change, and N-acetylcysteine (NAC) had a significant effect in preventing chemical degradation. The sulfite and NAC were found to stabilize pemetrexed in the aqueous solution by acting as sacrificial reductants. A pH below 6 caused significant degradation. The stability of pemetrexed in the solution increased as the concentration of the drug increased from 12.5 to 50 mg/mL. In addition, the DO levels in the solution were controlled by nitrogen purging, and the oxygen levels in headspace were controlled by nitrogen headspace, which also had significant positive effects in improving the stability of the pemetrexed solution; thus, it was confirmed that molecular oxygen is involved in the rate-limiting oxidation step. Based on these results obtained by observing the effects of various control strategies, the optimal formulation of an injectable solution of pemetrexed is suggested as follows: sodium sulfite at 0.06 mg/mL, as an antioxidant for prevention of color change; NAC at 1.63 mg/mL, as an antioxidant for prevention of chemical degradation; pH range 7-8; DO levels below 1 ppm; and headspace oxygen levels below 1%. In conclusion, it can be suggested that this study, which includes well-designed control strategies, can lead to a better understanding of the complex degradation mechanism of pemetrexed; thus, it can lead to the development of an injectable solution formulation of pemetrexed, with improved stability.Entities:
Keywords: aqueous injectable solution; control strategy; oxidation; pemetrexed; stability
Year: 2020 PMID: 31935808 PMCID: PMC7023127 DOI: 10.3390/pharmaceutics12010046
Source DB: PubMed Journal: Pharmaceutics ISSN: 1999-4923 Impact factor: 6.321
HPLC elution program of the binary gradient system for pemetrexed analysis.
| Time (min) | A 1 (%) | B 2 (%) |
|---|---|---|
| 0 | 95 | 5 |
| 15 | 86 | 14 |
| 30 | 82 | 18 |
| 48 | 70 | 30 |
| 60 | 30 | 70 |
| 70 | 30 | 70 |
| 71 | 95 | 5 |
| 91 | 95 | 5 |
1 1.36 g/L potassium dihydrogen phosphate with pH 2.5, 2 Acetonitrile.
Compositions of stability test sample solutions.
| Control Strategy | Factors | Antioxidants | Pemetrexed Conc. (mg/mL) | Mannitol Conc. (mg/mL) | pH | DO (ppm) | Headspace Oxygen (%) | Storage Condition | |||
|---|---|---|---|---|---|---|---|---|---|---|---|
| Classification [ | Name | Conc. (mg/mL) | |||||||||
| Formulation | Antioxidants | Oxidation reducing agents | Sulfide | Sodium sulfide | 20 | 50 | 50 | 7 | 1 | 1 | 60 °C, 3 w |
| Sulfite | Sodium sulfite | 0.03, 0.06, 0.12 | 50 | 50 | 7 | 1 | 1 | ||||
| Sodium metabisulfite | 0.06 | 50 | 50 | 7 | 1 | 1 | |||||
| Amino acids | NAC | 1.00, 1.32, 1.63 | 50 | 50 | 7 | 1 | 1 | ||||
| 17 | 50 | 50 | 7 | 1 | 1 | ||||||
| Phenolic | Vitamin | Vitamin E TPGS | 0.7 | 50 | 50 | 7 | 1 | 1 | |||
| Inclusion complex | HP-β-CD | 20 | 50 | 50 | 7 | 1 | 1 | ||||
| Drug conc. | Oxidation reducing agents | Sodium sulfite | 0.06 | 12.5, 25, 50 | 50 | 7 | 1 | 1 | 40 and 60 °C, 4 w | ||
| NAC | 1.63 | ||||||||||
| pH | Oxidation reducing agents | Sodium sulfite | 0.06 | 50 | 50 | 6–8.5 | 1 | 1 | 60 °C, 3 w | ||
| NAC | 1.63 | ||||||||||
| Process | DO 1 | Oxidation reducing agents | Sodium sulfite | 0.06 | 50 | 50 | 7 | 1, 7 | 1 | 60 °C, 4 w | |
| NAC | 1.63 | ||||||||||
| Packaging | Headspace oxygen | Oxidation reducing agents | Sodium sulfite | 0.06 | 50 | 50 | 7 | 1 | 0.2–2.5 | 40 °C, 4 w | |
| NAC | 1.63 | ||||||||||
1 Dissolved oxygen (DO) level in solution.
HPLC elution program of the binary gradient system for NAC analysis.
| Time (min) | A 1 (%) | B 2 (%) |
|---|---|---|
| 0 | 100 | 0 |
| 7 | 100 | 0 |
| 8 | 50 | 50 |
| 13 | 50 | 50 |
| 14 | 100 | 0 |
| 28 | 100 | 0 |
1 50 mM of KH2PO4 with pH 3.0, 2 Acetonitrile.
Relative retention time (RRT) of pemetrexed’s degradation products.
| Degradation Product | RRT | ||
|---|---|---|---|
| This Study | Literature [ | USP | |
| Pemetrexed | 1 | 1 | 1 |
| α-Hydroxy lactams | 0.45 | 0.39/0.40 | 0.16/0.17 |
| Ketopemetrexed | 0.60/0.61 | 0.56/0.57 | 0.32 |
| 0.74 | 0.79 | 0.76 | |
| Oxidative dimers | 0.88 | 0.86/0.87 | 0.66 |
| Gamma glutamate | 0.90 | 0.88 | 0.70 |
| Ring-opened keto-amide | 0.93 | 0.91 | 0.80 |
| Ring-opened keto-formamide | 1.12 | 1.14 | 1.09 |
| Epoxy hemiaminal | NA 1 | 0.23 | 0.08 |
1 Not applicable.
Figure 1HPLC chromatograms of pemetrexed solution samples: (a) initial standard; (b) thermal stressed; (c) acidic hydrolysis; (d) basic hydrolysis; (e) oxidation by hydrogen peroxide; and (f) photo-oxidation.
Figure 2Effect of antioxidants on pemetrexed degradation induced by stress condition at 60 °C in aqueous solution: (a) increase in keto-metotrexed content; (b) increase in oxidative dimer content; (c) increase in total impurity content; and (d) increase in b* value as an indicator of color change to yellowish.
Figure 3Effect of antioxidant concentration on the total impurity (■) and color change (□) generated by stress condition at 60 °C for 3 weeks in aqueous solution: (a) sodium sulfite and (b) NAC.
Figure 4Ability of sodium sulfite (0.12 mg/mL) and NAC (1.63 mg/mL) as sacrificial reductants (25 °C for 22 months): (a) changes in total impurity (╳) and in concentrations of sulfite (■), oxidized sulfate (●) and their sum (○), with storage period; (b) changes in total impurity (╳) and in concentrations of NAC (■) with storage period.
Figure 5Effect of pemetrexed concentration on its degradation in aqueous solution induced by stress condition at 40 and 60 °C for four weeks.
Figure 6Effect of pH on the pemetrexed degradation induced by stress condition at 60 °C in aqueous solution. * indicate significant difference compared to inital (p < 0.05).
Figure 7Effect of DO level (ppm) on pemetrexed degradation in aqueous solution induced by stress condition at 60 °C for four weeks: (a) increase in oxidative dimers and (b) increase in total impurity. * indicate significant difference compared to 1 ppm DO (p < 0.05); # indicate significant difference compared to initial value (p < 0.05).
Figure 8Effect of headspace oxygen level (%) on pemetrexed degradation in aqueous solution induced by accelerated condition at 40 °C for four weeks and six months. * indicate significant difference compared to 1.0% headspace oxygen sample (p < 0.05).