The aim of the present study is to rationalize acrylamide pendant Phos-Tag™ in-gel discrimination of phosphorylated and non-phosphorylated plant protein species with standard immunoblot analysis, and optimize sample preparation, efficient electrophoretic separation and transfer. We tested variants of the method including extraction buffers suitable for preservation of phosphorylated protein species in crude extracts from plants and we addressed the importance of the cation (Mn(2+) or Zn(2+)) used in the gel recipe for efficient transfer to PVDF membranes for further immunoblot analysis. We demonstrate the monitoring of Medicago sativa stress-induced mitogen activated protein kinase (SIMK) in stress-treated wild type plants and transgenic SIMKK RNAi line. We further show the hyperosmotically-induced phosphorylation of the previously uncharacterized HvMPK4 of barley. The method is validated using inducible phosphorylation of barley and wheat α-tubulin and of Arabidopsis MPK6. Acrylamide pendant Phos-Tag™offers a flexible tool for studying protein phosphorylation in crops and Arabidopsis circumventing radioactive labeling and the use of phosphorylation specific antibodies.
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http://dx.doi.org/10.3389/fpls.2015.00336 | DOI Listing |
Int J Biol Macromol
December 2024
Research Center of Material Sciences and Engineering, Jilin Institute of Chemical Technology, Jilin 132022, PR China. Electronic address:
Polysaccharide-based hydrogels have attracted significant attention in fields such as drug delivery, tissue engineering, and wound healing, primarily due to their excellent water-retention capacity, biocompatibility, and biodegradability. This study reports the preparation of a hydrogel through the copolymerization of acrylamide (AM) and carboxymethyl cellulose (CMC) using a simple free-radical polymerization method. β-cyclodextrin (β-CD), capable of encapsulating hydrophobic drugs, was chemically modified with double bonds (Ac-β-CD) and incorporated as a pendant unit in the polymerization reaction, forming a ternary copolymer hydrogel with CMC, AM, and Ac-β-CD.
View Article and Find Full Text PDFAdv Healthc Mater
December 2024
Chair of Macromolecular Chemistry, Julius-Maximilians-Universität Würzburg, 97070, Würzburg, Germany.
Polymers (Basel)
September 2024
Biopolymer Group, Department of Chemistry, Faculty of Science, Naresuan University, Phitsanulok 65000, Thailand.
This study investigates hydrogels based on 2-Acrylamido-2-methyl-1-propanesulfonic acid sodium salt (AMPS) copolymers, incorporating N-hydroxyethyl acrylamide (HEA) and 3-sulfopropyl acrylate potassium salt (SPA). The addition of HEA and SPA is designed to fine-tune the hydrogels' water absorption and mechanical properties, ultimately enhancing their characteristics and expanding their potential for biomedical applications. A copolymer of AMPS, 2-carboxyethyl acrylate (CEA) combined with methacrylic acid (MAA) as poly(AMPS-stat-CEA-stat-MAA, PACM), was preliminarily synthesized.
View Article and Find Full Text PDFLangmuir
June 2024
Department of Chemical & Materials Engineering, National Central University, Jhong-Li, Taoyuan 320, Taiwan.
A biocompatible and antifouling polymeric medical coating was developed through rational design for anchoring pendant groups for the modification of stainless steel. Zwitterionic 2-methacryloyloxyethyl phosphorylcholine (MPC) was copolymerized individually with three anchoring monomers of carboxyl acrylamides with different alkyl spacers, including acryloylglycine (2-AE), 6-acrylamidohexanoic acid (6-AH), and 11-acrylamidoundecanoic acid (11-AU). The carboxylic acid groups are responsible for the stable grafting of copolymers onto stainless steel via a coordinative interaction with metal oxides.
View Article and Find Full Text PDFJ Colloid Interface Sci
October 2024
Department of Materials Science and Engineering, School of Physical Science and Engineering, Beijing Jiaotong University, Beijing 100044, China; State Key Laboratory of Molecular Engineering of Polymers (Fudan University), Shanghai 200438, China. Electronic address:
There are few explorations that have integrated multiple properties into photonic microobjects in a facile and controlled manner. In this work, we present a straightforward method to integrate different functions into individual photonic microobject. Droplet-based microfluidics was used to produce uniform droplets of an aqueous dispersion of monodispersed SiO nanoparticles (NPs).
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