Literature DB >> 29575605

Impact of Cavitation, High Shear Stress and Air/Liquid Interfaces on Protein Aggregation.

Mark Duerkop1, Eva Berger1, Astrid Dürauer1,2, Alois Jungbauer1,2.   

Abstract

The reported impact of shear stress on protein aggregation has been contradictory. At high shear rates, the occurrence of cavitation or entrapment of air is reasonable and their effects possibly misattributed to shear stress. Nine different proteins (α-lactalbumin, two antibodies, fibroblast growth factor 2, granulocyte colony stimulating factor [GCSF], green fluorescence protein [GFP], hemoglobin, human serum albumin, and lysozyme) are tested for their aggregation behavior on vapor/liquid interfaces generated by cavitation and compared it to the isolated effects of high shear stress and air/liquid interfaces generated by foaming. Cavitation induced the aggregation of GCSF by +68.9%, hemoglobin +4%, and human serum albumin +2.9%, compared to a control, whereas the other proteins do not aggregate. The protein aggregation behaviors of the different proteins at air/liquid interfaces are similar to cavitation, but the effect is more pronounced. Air-liquid interface induced the aggregation of GCSF by +94.5%, hemoglobin +35.5%, and human serum albumin (HSA) +31.1%. The results indicate that the sensitivity of a certain protein toward cavitation is very similar to air/liquid-induced aggregation. Hence, hydroxyl radicals cannot be seen as the driving force for protein aggregation when cavitation occurs. Further, high shear rates of up to 108  s-1 do not affect any of the tested proteins. Therefore, also within this study generated extremely high isolated shear rates cannot be considered to harm structural integrity when processing proteins.
© 2018 The Authors. Biotechnology Journal Published by Wiley-VCH Verlag GmbH & Co. KGaA.

Entities:  

Keywords:  bioprocess engineering; cavitation; downstream processing; industrial biotechnology; protein aggregation; protein purification; shear stress

Mesh:

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Year:  2018        PMID: 29575605     DOI: 10.1002/biot.201800062

Source DB:  PubMed          Journal:  Biotechnol J        ISSN: 1860-6768            Impact factor:   4.677


  9 in total

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4.  Characterization of hydrodynamics and volumetric power input in microtiter plates for the scale-up of downstream operations.

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5.  Shear-Induced Amyloid Aggregation in the Brain: V. Are Alzheimer's and Other Amyloid Diseases Initiated in the Lower Brain and Brainstem by Cerebrospinal Fluid Flow Stresses?

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6.  The uniqueness of flow in probing the aggregation behavior of clinically relevant antibodies.

Authors:  Leon F Willis; Amit Kumar; Tushar Jain; Isabelle Caffry; Yingda Xu; Sheena E Radford; Nikil Kapur; Maximiliano Vásquez; David J Brockwell
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7.  Amyloidogenesis via interfacial shear in a containerless biochemical reactor aboard the International Space Station.

Authors:  Patrick McMackin; Joe Adam; Shannon Griffin; Amir Hirsa
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8.  The Role of Cyclodextrins against Interface-Induced Denaturation in Pharmaceutical Formulations: A Molecular Dynamics Approach.

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Review 9.  Structure and Aggregation Mechanisms in Amyloids.

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Journal:  Molecules       Date:  2020-03-06       Impact factor: 4.411

  9 in total

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