Issue 42, 2021

Small-volume extensional rheology of concentrated protein and protein-excipient solutions

Abstract

Limited studies measure extensional rheology in protein solutions due to volume constraints and measurement challenges. We developed a small-volume, dripping-onto-substrate (DoS) extensional rheology device to measure the capillary thinning of protein and protein-excipient solutions via DoS for the first time. Ovalbumin (OVA) was used as a model system, examined via DoS both with and without excipient poloxamer 188 (P188). Water and dilute OVA break apart rapidly and demonstrate inertiocapillary (IC) thinning behavior, where longer breakup times in OVA can be attributed to lower surface tension. Further increasing OVA content leads to longer breakup times and deviations from IC thinning at the start of thinning, however, no evidence of elastic behavior is observed. P188 more effectively lowers the droplet surface tension than OVA, transitioning from IC behavior in dilute solution to weakly elastic behavior at higher concentrations. Combined protein/excipient formulations act synergistically at low concentrations, where breakup times are identical to those of the individual components despite the higher total concentration. However concentrated protein/excipient formulations exhibit elasticity, where extensional rheology parameters depend on P188 content and total concentration. These findings imply that excipients intended to stabilize proteins in shear flow can cause undesirable behavior in extensional flows like injection.

Graphical abstract: Small-volume extensional rheology of concentrated protein and protein-excipient solutions

Supplementary files

Article information

Article type
Paper
Submitted
30 Aug 2021
Accepted
29 Sep 2021
First published
01 Oct 2021

Soft Matter, 2021,17, 9624-9635

Author version available

Small-volume extensional rheology of concentrated protein and protein-excipient solutions

K. T. Lauser, A. L. Rueter and M. A. Calabrese, Soft Matter, 2021, 17, 9624 DOI: 10.1039/D1SM01253C

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