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Cited 30 time in webofscience Cited 33 time in scopus
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Effects of pH and Buffer Concentration on the Thermal Stability of Etanercept Using DSC and DLSopen access

Authors
Kim, Nam AhAn, In BokLim, Dae GonLim, Jun YeulLee, Sang YeolShim, Woo SunKang, Nae-GyuJeong, Seong Hoon
Issue Date
May-2014
Publisher
PHARMACEUTICAL SOC JAPAN
Keywords
buffer concentration; etanercept; differential scanning calorimetry (DSC); dynamic light scattering (DLS); pH effect; scan rate effect
Citation
BIOLOGICAL & PHARMACEUTICAL BULLETIN, v.37, no.5, pp 808 - 816
Pages
9
Indexed
SCI
SCIE
SCOPUS
Journal Title
BIOLOGICAL & PHARMACEUTICAL BULLETIN
Volume
37
Number
5
Start Page
808
End Page
816
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/24852
DOI
10.1248/bpb.b13-00926
ISSN
0918-6158
1347-5215
Abstract
The protein size, electrical interaction, and conformational stability of etanercept (marketed as Enbrel (R)) were examined by thermodynamic and light scattering methods with changing pH and buffer concentration. As pH of etanercept increased from pH 6.6 to 8.6, electrical repulsion in the solution increased, inducing a decrease in protein size. However, the size changed less in high buffer concentration and irreversible aggregation issues were not observed; in contrast, aggregates of about 1000nm were observed in low buffer concentration at the pH range. Three significant unfolding transitions (T-m) were observed by differential scanning calorimetry (DSC). Unlikely to T(m)1, T(m)2 and T(m)3 were increased as the pH increased. Higher T-m at high buffer concentration was observed, indicating increased conformational stability. The apparent activation energy of unfolding was further investigated since continuous increase of T(m)2 and T(m)3 was not sufficient to determine optimal conditions. A higher energy barrier was calculated at T(m)2 than at T(m)3. In addition, the energy barriers were the highest at pH from 7.4 to 7.8 where higher T(m)1 was also observed. Therefore, the conformational stability of protein solution significantly changed with pH dependent steric repulsion of neighboring protein molecules. An optimized pH range was obtained that satisfied the stability of all three domains. Electrostatic circumstances and structural interactions resulted in irreversible aggregation at low buffer concentrations and were suppressed by increasing the concentration. Therefore, increased buffer concentration is recommended during protein formulation development, even in the earlier stages of investigation, to avoid protein instability issues.
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