Soft synthetic microgels as mimics of mycoplasma

Büning D, Schumacher J, Helling A, Chakroun R, Ennen-Roth F, Gröschel AH, Thomband V, Ulbricht M

Forschungsartikel (Zeitschrift) | Peer reviewed

Zusammenfassung

Artificial model colloids are of special interest in the development of advanced sterile filters, as they are able to efficiently separate pleomorphic, highly deformable and infectious bacteria such as mycoplasma, which, until now, has been considered rather challenging and laborious. This study presents a full range of different soft to super soft synthetic polymeric microgels, including two types with similar hydrodynamic mean diameter, i.e., 180 nm, and zeta potential, i.e., −25 ± 10 mV, but different deformability, synthesized by inverse miniemulsion terpolymerization of acrylamide, sodium acrylate and N,N′-methylenebisacrylamide. These microgels were characterized by means of dynamic, electrophoretic and static light scattering techniques. In addition, the deformability of the colloids was investigated by filter cake compressibility studies during ultrafiltration in dead-end mode, analogously to a study of real mycoplasma, i.e., Acholeplasma laidlawii, to allow for a direct comparison. The results indicate that the variation of the synthesis parameters, i.e., crosslinker content, polymeric solid content and content of sodium acrylate, has a significant impact on the swelling behavior of the microgels in aqueous solution as well as on their deformability under filtration conditions. A higher density of chemical crosslinking points results in less swollen and more rigid microgels. Furthermore, these parameters determine electrokinetic properties of the more or less permeable colloids. Overall, it is shown that these soft synthetic microgels can be obtained with tailor-made properties, covering the size of smallest species of and otherwise similar to real mycoplasma. This is a relevant first step towards the future use of synthetic microgels as mimics for mycoplasma.

Details zur Publikation

FachzeitschriftSoft Matter
Jahrgang / Bandnr. / Volume17
Ausgabe / Heftnr. / Issue26
Seitenbereich6445-6460
StatusVeröffentlicht
Veröffentlichungsjahr2021
Sprache, in der die Publikation verfasst istEnglisch
DOI10.1039/D1SM00379H
Link zum Volltexthttps://pubs.rsc.org/en/content/articlelanding/2021/SM/D1SM00379H

Autor*innen der Universität Münster

Chakroun, Ramzi
Professur für Physikalische Chemie (Prof. Gröschel)
Gröschel, Andre
Professur für Physikalische Chemie (Prof. Gröschel)
Center for Soft Nanoscience (SoN)