Formation of amyloid fibrils from ovalbumin under Ohmic heating

Autor(en): Joeres, Eike
Drusch, Stephan
Töpfl, Stefan
Juadjur, Andreas
Psathaki, Olympia Ekaterini 
Heinz, Volker
Terjung, Nino
Stichwörter: Amyloid fibril formation; Cross-beta sheet structures; Field flow fractioning; Moderate electric fields; Protein aggregation; Thioflavin T
Erscheinungsdatum: 2023
Herausgeber: Elsevier Ltd
Journal: Heliyon
Volumen: 9
Ausgabe: 11
Zusammenfassung: 
Ohmic heating (OH) is an alternative sustainable heating technology that has demonstrated its potential to modify protein structures and aggregates. Furthermore, certain protein aggregates, namely amyloid fibrils (AF), are associated with an enhanced protein functionality, such as gelation. This study evaluates how Ohmic heating (OH) influences the formation of AF structures from ovalbumin source under two electric field strength levels, 8.5 to 10.5 and 24.0–31.0 V/cm, respectively. Hence, AF aggregate formation was assessed over holding times ranging from 30 to 1200 sunder various environmental conditions (3.45 and 67.95 mM NaCl, 80, 85 and 90 °C, pH = 7). AF were formed under all conditions. SDS-PAGE revealed that OH had a higher tendency to preserve native ovalbumin molecules. Furthermore, Congo Red and Thioflavin T stainings indicated that OH reduces the amount of AF structures. This finding was supported by FTIR measurements, which showed OH samples to contain lower amounts of beta-sheets. Field flow fractioning revealed smaller-sized aggregates or aggregate clusters occurred after OH treatment. In contrast, prolonged holding time or higher treatment temperatures increased ThT fluorescence, beta-sheet structures and aggregate as well as cluster sizes. Ionic strength was found to dominate the effects of electric field strength under different environmental conditions. © 2023 The Authors
Beschreibung: 
Cited by: 0; All Open Access, Gold Open Access
ISSN: 2405-8440
DOI: 10.1016/j.heliyon.2023.e22061
Externe URL: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85176152590&doi=10.1016%2fj.heliyon.2023.e22061&partnerID=40&md5=47e69786c9772573e338e091fb9df8a5

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