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Dive into the research topics where Alexey Khakalo is active.

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Featured researches published by Alexey Khakalo.


Biomacromolecules | 2016

Effect of PEG-PDMAEMA Block Copolymer Architecture on Polyelectrolyte Complex Formation with Heparin.

Salla Välimäki; Alexey Khakalo; Ari Ora; Leena-Sisko Johansson; Orlando J. Rojas; Mauri A. Kostiainen

Heparin is a naturally occurring polyelectrolyte consisting of a sulfated polysaccharide backbone. It is widely used as an anticoagulant during major surgical operations. However, the associated bleeding risks require rapid neutralization after the operation. The only clinically approved antidote for heparin is protamine sulfate, which is, however, ineffective against low molecular weight heparin and can cause severe adverse reactions in patients. In this study, the facile synthesis of cationic-neutral diblock copolymers and their effective heparin binding is presented. Poly(ethylene glycol)-poly(2-(dimethylamino)ethyl methacrylate) (PEG-PDMAEMA) block copolymers were synthesized in two steps via atom-transfer radical polymerization (ATRP) using PEG as a macroinitiator. Solution state binding between heparin and a range of PEG-PDMAEMA block copolymers and one homopolymer was studied with dynamic light scattering and methylene blue displacement assay. Also in vitro binding in plasma was studied by utilizing a chromogenic heparin anti-Xa assay. Additionally, quartz crystal microbalance and multiparametric surface plasmon resonance were used to study the surface adsorption kinetics of the polymers on a heparin layer. It was shown that the block copolymers and heparin form electrostatically bound complexes with varying colloidal properties, where the block lengths play a key role in controlling the heparin binding affinity, polyelectrolyte complex size and surface charge. With the optimized polymers (PEG114PDMAEMA52 and PEG114PDMAEMA100), heparin could be neutralized in a dose-dependent manner, and bound efficiently into small neutral complexes, with a hydrodynamic radius less than 100 nm. These complexes had only a limited effect on cell viability. Based on these studies, our approach paves the way for the development of new polymeric heparin binding agents.


Cellulose | 2017

Mechanically-induced dimensional extensibility of fibers towards tough fiber networks

Alexey Khakalo; Alexey Vishtal; Elias Retulainen; Ilari Filpponen; Orlando J. Rojas

The beneficial effect of materials with high aspect ratio as composite reinforcement has prompted continuous interest towards cellulosic fibers. Besides providing stiffness, fibers can potentially contribute to composite extensibility. While mechanical treatments are typically used to adjust the physical and surface properties of fibers, less is known about ensuing effects on their extensibility and that of associated networks. Fiber network dimensional extensibility of 16% was achieved by processing the precursor aqueous fiber dispersions following a simple mechanical treatment with a judicious combination of low (PFI refining) and high concentrations and temperatures (Wing defibrator). Consequently, deformation of fibers and increased inter-fiber bonding resulted in a three-fold increase in strength to rupture of the fiber network leading to the structures with unprecedented toughness.


Biomacromolecules | 2017

Protein Adsorption Tailors the Surface Energies and Compatibility between Polylactide and Cellulose Nanofibrils

Alexey Khakalo; Ilari Filpponen; Orlando J. Rojas

The state of dispersion and the interactions between a polymer and a filler in a nanocomposite crucially define its properties and performance. The affinity of polylactide (PLA) with vegetable and animal proteins (casein, gelatin, soy protein isolate, and hydrolysate) is investigated and their role as eco-friendly dispersants and compatibilizers of cellulose nanofibrils (CNF) is elucidated. The affinity of the proteins with PLA is determined by using sensograms acquired by electroacoustic (quartz crystal microgravimetry) and optical (surface plasmon resonance) techniques. The surface energy of PLA increases upon protein adsorption while the opposite effect is observed for CNF, under identical experimental conditions. A significant improvement in the thermodynamic work of adhesion for PLA/CNF systems is predicted by application of the denatured proteins at low concentrations (∼20% and ∼15% enhancement with soy protein and casein at pH 3 and pH 8, respectively). We offer a robust method to screen denatured proteins and to tailor the wettability and material compatibility in the synthesis of bionanocomposites based on CNF and PLA.


Carbohydrate Polymers | 2017

Layer-by-layer assembled hydrophobic coatings for cellulose nanofibril films and textiles, made of polylysine and natural wax particles

Nina Forsman; Alina Lozhechnikova; Alexey Khakalo; Leena-Sisko Johansson; Jari Vartiainen; Monika Österberg

Herein we present a simple method to render cellulosic materials highly hydrophobic while retaining their breathability and moisture buffering properties, thus allowing for their use as functional textiles. The surfaces are coated via layer-by-layer deposition of two natural components, cationic poly-l-lysine and anionic carnauba wax particles. The combination of multiscale roughness, open film structure, and low surface energy of wax colloids, resulted in long-lasting superhydrophobicity on cotton surface already after two bilayers. Atomic force microscopy, interference microscopy, scanning electron microscopy and X-ray photoelectron spectroscopy were used to decouple structural effects from changes in surface energy. Furthermore, the effect of thermal annealing on the coating was evaluated. The potential of this simple and green approach to enhance the use of natural cellulosic materials is discussed.


Reactive & Functional Polymers | 2014

Using gelatin protein to facilitate paper thermoformability

Alexey Khakalo; Ilari Filpponen; Leena-Sisko Johansson; Alexey Vishtal; Arcot R. Lokanathan; Orlando J. Rojas; Janne Laine


Mrs Bulletin | 2017

Supramolecular assemblies of lignin into nano- and microparticles

Mariko Ago; Blaise L. Tardy; Ling Wang; Jiaqi Guo; Alexey Khakalo; Orlando J. Rojas


ACS Sustainable Chemistry & Engineering | 2017

In-Plane Compression and Biopolymer Permeation Enable Super-stretchable Fiber Webs for Thermoforming toward 3-D Structures

Alexey Khakalo; Jarmo Kouko; Ilari Filpponen; Elias Retulainen; Orlando J. Rojas


Composites Science and Technology | 2018

Protein-mediated interfacial adhesion in composites of cellulose nanofibrils and polylactide: Enhanced toughness towards material development

Alexey Khakalo; Ilari Filpponen; Orlando J. Rojas


Archive | 2013

Cellulose-gelatin composite materials for packaging applications

Alexey Khakalo; Erkko Filpponen; Janne Laine


Archive | 2017

Advanced Structures and Compositions for 3D Forming of Cellulosic Fibers

Alexey Khakalo

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Janne Laine

Helsinki University of Technology

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Alexey Vishtal

VTT Technical Research Centre of Finland

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Elias Retulainen

VTT Technical Research Centre of Finland

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