Tuning Molecular Orientation Responses of Microfluidic Liquid Crystal Dispersions to Colloid and Polymer Flows.

colloids dispersion liquid crystals microfluidics molecular diagnostics molecular orientation ordering polymer solutions surfactants

Journal

International journal of molecular sciences
ISSN: 1422-0067
Titre abrégé: Int J Mol Sci
Pays: Switzerland
ID NLM: 101092791

Informations de publication

Date de publication:
31 Aug 2023
Historique:
received: 10 08 2023
revised: 28 08 2023
accepted: 30 08 2023
medline: 11 9 2023
pubmed: 9 9 2023
entrez: 9 9 2023
Statut: epublish

Résumé

An important approach to molecular diagnostics is integrating organized substances that provide complex molecular level responses to introduced chemical and biological agents with conditions that optimize and distinguish such responses. In this respect, liquid crystal dispersions are attractive components of molecular diagnostic tools. This paper analyzes a colloid system, containing a nematic liquid crystal as a dispersed phase, and aqueous surfactant and polymer solutions as the continuous phases. We applied a microfluidic approach for tuning orientation of liquid crystal molecules in picoliter droplets immobilized on microchannel walls. Introduction of surfactant to the aqueous phase was found to proportionally increase the order parameter of liquid crystal molecules in microdroplets. Infusion of polymer solutions into surfactant-mediated microfluidic liquid crystal dispersions increased the order parameter at much lower surfactant concentrations, while further infusion of surfactant solutions randomized the orientation of liquid crystal molecules. These effects were correlated with the adsorption of surfactant molecules on surfaces of microdroplets, stabilizing the effect of a polymer matrix on bound surfactant ions and the formation of insoluble polymer-colloid aggregates, respectively. The revealed molecular behavior of liquid crystal dispersions may contribute to optimized synthesis of responsive liquid crystal dispersions for in-flow molecular diagnostics of polymers and colloids, and the development of functional laboratory-on-chip prototypes.

Identifiants

pubmed: 37686359
pii: ijms241713555
doi: 10.3390/ijms241713555
pmc: PMC10488184
pii:
doi:

Substances chimiques

Colloids 0
Pulmonary Surfactants 0
Surface-Active Agents 0
Polymers 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Déclaration de conflit d'intérêts

The authors declare no conflicts of interest.

Références

Biosensors (Basel). 2021 Oct 12;11(10):
pubmed: 34677341
Chem Soc Rev. 2012 May 21;41(10):4067-85
pubmed: 22481608
Langmuir. 2016 Oct 25;32(42):11029-11038
pubmed: 27689751
Chem Soc Rev. 2018 Jun 5;47(11):3788-3803
pubmed: 29714390
Langmuir. 2006 Nov 21;22(24):9986-93
pubmed: 17106990
J Microsc. 2018 Mar;269(3):321-337
pubmed: 28940444
Pharmaceutics. 2018 Dec 09;10(4):
pubmed: 30544868
Adv Drug Deliv Rev. 2018 Mar 15;128:84-100
pubmed: 29567396
Coord Chem Rev. 2021 Jan 15;427:
pubmed: 34108734
Nanoscale. 2019 Sep 19;11(36):16708-16722
pubmed: 31469374
Opt Express. 2011 Feb 14;19(4):3297-303
pubmed: 21369152
Molecules. 2021 Oct 05;26(19):
pubmed: 34641588
Nat Biotechnol. 2019 Apr;37(4):389-406
pubmed: 30804534
Chem Commun (Camb). 2022 Sep 15;58(74):10303-10328
pubmed: 36043863
Sensors (Basel). 2015 Dec 01;15(12):30011-31
pubmed: 26633409
Lab Chip. 2012 Oct 7;12(19):3746-53
pubmed: 22842797
Mol Syst Des Eng. 2022 Mar 7;7(6):607-621
pubmed: 36876150
RSC Adv. 2020 Mar 23;10(20):11652-11680
pubmed: 35496619
Int J Mol Sci. 2023 Jan 18;24(3):
pubmed: 36768199
J Mater Chem C Mater. 2023 Apr 11;11(17):5831-5845
pubmed: 37153011
Nat Commun. 2020 Jan 2;11(1):59
pubmed: 31896755
Polymers (Basel). 2022 Sep 30;14(19):
pubmed: 36236059
Electrophoresis. 2000 Jan;21(1):27-40
pubmed: 10634468
Anal Chem. 2023 Feb 7;95(5):2750-2756
pubmed: 36599406
Acc Chem Res. 2020 Mar 17;53(3):588-598
pubmed: 31913015
J Am Chem Soc. 2008 Jul 2;130(26):8188-94
pubmed: 18528984
Int J Mol Sci. 2023 Feb 02;24(3):
pubmed: 36769237
J Am Chem Soc. 2007 Sep 12;129(36):11223-31
pubmed: 17705384
J Mater Chem B. 2014 Aug 14;2(30):4922-4928
pubmed: 32261784
ACS Appl Bio Mater. 2020 Jan 21;3(1):107-120
pubmed: 35019430
Langmuir. 2021 Apr 6;37(13):3789-3807
pubmed: 33775094
Lab Chip. 2013 Jan 21;13(2):204-7
pubmed: 23196715
Micromachines (Basel). 2022 Feb 19;13(2):
pubmed: 35208453
Biosensors (Basel). 2022 May 09;12(5):
pubmed: 35624614
ACS Appl Mater Interfaces. 2013 Dec 26;5(24):13135-9
pubmed: 24251831
Langmuir. 2012 Dec 18;28(50):17571-7
pubmed: 23163482
Int J Pharm. 2022 Jun 10;621:121785
pubmed: 35500690
Micromachines (Basel). 2021 Nov 28;12(12):
pubmed: 34945317
Biosensors (Basel). 2022 Sep 15;12(9):
pubmed: 36140143
Lab Chip. 2019 Mar 13;19(6):1082-1089
pubmed: 30785139

Auteurs

Artem Bezrukov (A)

Department of Physical and Colloid Chemistry, Kazan National Research Technological University, 68 Karl Marx Str., Kazan 420015, Russia.

Yury Galyametdinov (Y)

Department of Physical and Colloid Chemistry, Kazan National Research Technological University, 68 Karl Marx Str., Kazan 420015, Russia.

Articles similaires

Semiconductors Photosynthesis Polymers Carbon Dioxide Bacteria
Animals Huntington Disease Mitochondria Neurons Mice
Nanoparticles Needles Polylactic Acid-Polyglycolic Acid Copolymer Polyethylene Glycols Curcumin

Strain learning in protein-based mechanical metamaterials.

Naroa Sadaba, Eva Sanchez-Rexach, Curt Waltmann et al.
1.00
Serum Albumin, Bovine Stress, Mechanical Animals Polymers Materials Testing

Classifications MeSH