AI Article Synopsis

  • PEGylation of therapeutic proteins can extend their effectiveness in the body, and this study focuses on three types of TNF Nanobody-PEG conjugates: linear, branched, and their effects on pharmacokinetics and biodistribution.
  • The branched PEG conjugates showed a better pharmacokinetic (PK) profile than the linear ones, though all had similar potency in testing.
  • Biophysical analysis revealed that the linear PEG conjugate was more extended and exposed, which may contribute to its lower effectiveness in the body compared to branched ones, suggesting that further research is necessary to confirm these findings.

Article Abstract

Covalent attachment of poly(ethylene glycol) (PEG) to therapeutic proteins has been used to prolong in vivo exposure of therapeutic proteins. We have examined pharmacokinetic, biodistribution, and biophysical profiles of three different tumor necrosis factor alpha (TNF) Nanobody-40 kDa PEG conjugates: linear 1 × 40 KDa, branched 2 × 20 kDa, and 4 × 10 kDa conjugates. In accord with earlier reports, the superior PK profile was observed for the branched versus linear PEG conjugates, while all three conjugates had similar potency in a cell-based assay. Our results also indicate that (i) a superior PK profile of branched versus linear PEGs is likely to hold across species, (ii) for a given PEG size, the extent of PEG branching affects the PK profile, and (iii) tissue penetration may differ between linear and branched PEG conjugates in a tissue-specific manner. Biophysical analysis (R(g)/R(h) ratio) demonstrated that among the three protein-PEG conjugates the linear PEG conjugate had the most extended time-average conformation and the most exposed surface charges. We hypothesized that these biophysical characteristics of the linear PEG conjugate accounts for relatively less optimal masking of sites involved in elimination of the PEGylated Nanobodies (e.g., intracellular uptake and proteolysis), leading to lower in vivo exposure compared to the branched PEG conjugates. However, additional studies are needed to test this hypothesis.

Download full-text PDF

Source
http://dx.doi.org/10.1021/bc300066aDOI Listing

Publication Analysis

Top Keywords

peg conjugates
16
linear peg
12
peg
9
pharmacokinetic biodistribution
8
biodistribution biophysical
8
biophysical profiles
8
linear branched
8
polyethylene glycol
8
therapeutic proteins
8
vivo exposure
8

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!