Institute of Fundamental Technological Research
Polish Academy of Sciences

Staff

Angelika Zaszczyńska, MSc

Laboratory of Polymers and Biomaterials (SPPiB)
position: Assistant
telephone: (+48) 22 826 12 81 ext.: 171
room: 334
e-mail:
ORCID: 0000-0003-3571-1438

Recent publications
1.  Zaszczyńska A., Gradys A. D., Kołbuk-Konieczny D., Zabielski K., Szewczyk P., Stachewicz U., Sajkiewicz P. Ł., Poly(L-lactide)/nano-hydroxyapatite piezoelectric scaffolds for tissue engineering, Micron, ISSN: 0968-4328, DOI: 10.1016/j.micron.2024.103743, Vol.188, pp.103743-1-15, 2025

Abstract:
The development of bone tissue engineering, a field with significant potential, requires a biomaterial with high bioactivity. The aim of this manuscript was to fabricate a nanofibrous poly(L-lactide) (PLLA) scaffold containing nano-hydroxyapatite (nHA) to investigate PLLA/nHA composites, particularly the effect of fiber arrangement and the addition of nHA on the piezoelectric phases and piezoelectricity of PLLA samples. In this study, we evaluated the effect of nHA particles on a PLLA-based electrospun scaffold with random and aligned fiber orientations. The addition of nHA increased the surface free energy of PLLA/nHA (42.9 mN/m) compared to PLLA (33.1 mN/m) in the case of aligned fibers. WAXS results indicated that at room temperature, all the fibers are in an amorphous state indicated by a lack of diffraction peaks and amorphous halo. DSC analysis showed that all samples located in the amorphous/disordered alpha' phase crystallize intensively at temperatures just above the Tg and recrystallize on further heating, achieving significantly higher crystallinity for pure PLLA than for doped nHA, 70 % vs 40 %, respectively. Additionally, PLLA/nHA fibers show a lower heat capacity for PLLA in the amorphous state, indicating that nHA reduces the molecular mobility of PLLA. Moreover, piezoelectric constant d33 was found to increase with the addition of nHA and for the aligned orientation of the fibers. In vitro tests confirmed that the addition of nHA and the aligned orientation of nanofibers increased osteoblast proliferation.

Keywords:
Scaffolds, Tissue engineering, Bone tissue engineering, Smart medicine, Biodegradable polymers, Regenerative medicine

Affiliations:
Zaszczyńska A. - IPPT PAN
Gradys A. D. - IPPT PAN
Kołbuk-Konieczny D. - IPPT PAN
Zabielski K. - IPPT PAN
Szewczyk P. - other affiliation
Stachewicz U. - AGH University of Science and Technology (PL)
Sajkiewicz P. Ł. - IPPT PAN
2.  Zaszczyńska A., Gradys A.D., Ziemiecka A., Szewczyk P., Tymkiewicz R., Lewandowska-Szumieł M., Stachewicz U., Sajkiewicz P.Ł., Enhanced Electroactive Phases of Poly(vinylidene Fluoride) Fibers for Tissue Engineering Applications, International Journal of Molecular Sciences, ISSN: 1422-0067, DOI: 10.3390/ijms25094980, Vol.25, No.9, pp.4980-1-25, 2024

Abstract:
Nanofibrous materials generated through electrospinning have gained significant attention in tissue regeneration, particularly in the domain of bone reconstruction. There is high interest in designing a material resembling bone tissue, and many scientists are trying to create materials applicable to bone tissue engineering with piezoelectricity similar to bone. One of the prospective candidates is highly piezoelectric poly(vinylidene fluoride) (PVDF), which was used for fibrous scaffold formation by electrospinning. In this study, we focused on the effect of PVDF molecular weight (180,000 g/mol and 530,000 g/mol) and process parameters, such as the rotational speed of the collector, applied voltage, and solution flow rate on the properties of the final scaffold. Fourier Transform Infrared Spectroscopy allows for determining the effect of molecular weight and processing parameters on the content of the electroactive phases. It can be concluded that the higher molecular weight of the PVDF and higher collector rotational speed increase nanofibers’ diameter, electroactive phase content, and piezoelectric coefficient. Various electrospinning parameters showed changes in electroactive phase content with the maximum at the applied voltage of 22 kV and flow rate of 0.8 mL/h. Moreover, the cytocompatibility of the scaffolds was confirmed in the culture of human adipose-derived stromal cells with known potential for osteogenic differentiation. Based on the results obtained, it can be concluded that PVDF scaffolds may be taken into account as a tool in bone tissue engineering and are worth further investigation.

Keywords:
scaffolds,polymers,piezoelectricity,bone tissue engineering,nanofibers,regenerative medicine

Affiliations:
Zaszczyńska A. - IPPT PAN
Gradys A.D. - IPPT PAN
Ziemiecka A. - other affiliation
Szewczyk P. - other affiliation
Tymkiewicz R. - IPPT PAN
Lewandowska-Szumieł M. - other affiliation
Stachewicz U. - AGH University of Science and Technology (PL)
Sajkiewicz P.Ł. - IPPT PAN
3.  Moazzami Goudarzi Z., Zaszczyńska A., Kowalczyk T., Sajkiewicz P.Ł., Electrospun Antimicrobial Drug Delivery Systems and Hydrogels Used for Wound Dressings, Pharmaceutics, ISSN: 1999-4923, DOI: 10.3390/pharmaceutics16010093, Vol.16, No.1, pp.93-1-27, 2024

Abstract:
Wounds and chronic wounds can be caused by bacterial infections and lead to discomfort in patients. To solve this problem, scientists are working to create modern wound dressings with antibacterial additives, mainly because traditional materials cannot meet the general requirements for complex wounds and cannot promote wound healing. This demand is met by material engineering, through which we can create electrospun wound dressings. Electrospun wound dressings, as well as those based on hydrogels with incorporated antibacterial compounds, can meet these requirements. This manuscript reviews recent materials used as wound dressings, discussing their formation, application, and functionalization. The focus is on presenting dressings based on electrospun materials and hydrogels. In contrast, recent advancements in wound care have highlighted the potential of thermoresponsive hydrogels as dynamic and antibacterial wound dressings. These hydrogels contain adaptable polymers that offer targeted drug delivery and show promise in managing various wound types while addressing bacterial infections. In this way, the article is intended to serve as a compendium of knowledge for researchers, medical practitioners, and biomaterials engineers, providing up-to-date information on the state of the art, possibilities of innovative solutions, and potential challenges in the area of materials used in dressings.

Keywords:
wound dressings, drug delivery systems, thermoresponsive hydrogels

Affiliations:
Moazzami Goudarzi Z. - IPPT PAN
Zaszczyńska A. - IPPT PAN
Kowalczyk T. - IPPT PAN
Sajkiewicz P.Ł. - IPPT PAN
4.  Zaszczyńska A., Zabielski K., Gradys A. D., Kowalczyk T., Sajkiewicz P. Ł., Piezoelectric Scaffolds as Smart Materials for Bone Tissue Engineering, Polymers, ISSN: 2073-4360, DOI: 10.3390/polym16192797, Vol.16, No.19, pp.2797-1-30, 2024

Abstract:
Bone repair and regeneration require physiological cues, including mechanical, electrical, and biochemical activity. Many biomaterials have been investigated as bioactive scaffolds with excellent electrical properties. Amongst biomaterials, piezoelectric materials (PMs) are gaining attention in biomedicine, power harvesting, biomedical devices, and structural health monitoring. PMs have unique properties, such as the ability to affect physiological movements and deliver electrical stimuli to damaged bone or cells without an external power source. The crucial bone property is its piezoelectricity. Bones can generate electrical charges and potential in response to mechanical stimuli, as they influence bone growth and regeneration. Piezoelectric materials respond to human microenvironment stimuli and are an important factor in bone regeneration and repair. This manuscript is an overview of the fundamentals of the materials generating the piezoelectric effect and their influence on bone repair and regeneration. This paper focuses on the state of the art of piezoelectric materials, such as polymers, ceramics, and composites, and their application in bone tissue engineering. We present important information from the point of view of bone tissue engineering. We highlight promising upcoming approaches and new generations of piezoelectric materials.

Keywords:
piezoelectricity, scaffolds, smart scaffolds, PVDF, PLLA, PVDF-TRFE, collagen, keratin, tissue engineering, bone tissue engineering, smart medicine, regenerative medicine

Affiliations:
Zaszczyńska A. - IPPT PAN
Zabielski K. - IPPT PAN
Gradys A. D. - IPPT PAN
Kowalczyk T. - IPPT PAN
Sajkiewicz P. Ł. - IPPT PAN
5.  Zaszczyńska A., Kołbuk-Konieczny D., Gradys A. D., Sajkiewicz P. Ł., Development of Poly(methyl methacrylate)/nano-hydroxyapatite (PMMA/nHA) Nanofibers for Tissue Engineering Regeneration Using an Electrospinning Technique, Polymers, ISSN: 2073-4360, DOI: 10.3390/polym16040531, Vol.16, No.4, pp.531-1-19, 2024

Abstract:
The study explores the in vitro biocompatibility and osteoconductivity of poly(methyl methacrylate)/nano-hydroxyapatite (PMMA/nHA) composite nanofibrous scaffolds for bone tissue engineering (BTE). Electrospun scaffolds, exhibiting both low and high fiber orientation, were investigated. The inclusion of hydroxyapatite nanoparticles enhances the osteoconductivity of the scaffolds while maintaining the ease of fabrication through electrospinning. SEM analysis confirms the high-quality morphology of the scaffolds, with successful incorporation of nHA evidenced by SEM-EDS and FTIR methods. DSC analysis indicates that nHA addition increases the PMMA glass transition temperature (Tg) and reduces stress relaxation during electrospinning. Furthermore, higher fiber orientation affects PMMA Tg and stress relaxation differently. Biological studies demonstrate the composite material’s non-toxicity, excellent osteoblast viability, attachment, spreading, and proliferation. Overall, PMMA/nHA composite scaffolds show promise for BTE applications.

Keywords:
biomaterials, nanofibrous scaffolds, bone tissue engineering

Affiliations:
Zaszczyńska A. - IPPT PAN
Kołbuk-Konieczny D. - IPPT PAN
Gradys A. D. - IPPT PAN
Sajkiewicz P. Ł. - IPPT PAN
6.  Silva M.J., Dias Y.J., Zaszczyńska A., Kołbuk-Konieczny D., Kowalczyk T., Sajkiewicz P. Ł., Yarin A., Three-phase bio-nanocomposite natural-rubber-based microfibers reinforced with cellulose nanowhiskers and 45S5 bioglass obtained by solution blow spinning, JOURNAL OF APPLIED POLYMER SCIENCE, ISSN: 0021-8995, DOI: 10.1002/app.54661, Vol.140, No.45, pp.e54661-1-18, 2023

Abstract:
Aiming at biomedical applications, the present work developed a new bio-nanocomposite fibrous mat based on natural rubber (NR) reinforced with 45S5 bioglass particles (BG) and cellulose nanowhiskers (CNW), which reveals excellent mechanical properties, good biocompatibility and bioactivity properties. Analyses of the specimens were conducted by means of morphological observa-tions (SEM) and thermal analysis (TG/DTG), as well as mechanical tests used to verify the effect of the incorporation of BG particles and CNW on the ultimate properties of these flexible NR-CWN/BG fibrous membranes. An SEM analysis revealed that all filaments possessed a ribbon-like morphology, with increasing diameters as the BG concentration increased. This likely results from an increased viscosity of the solution used for fiber blowing. In comparison with neat NR fibrous mats, the ultimate mechanical properties of bio-nanocomposites were sig-nificantly improved due to the presence of CNW and BG particles dispersed in the NR matrix. According to the TG/DTG analysis, the specimens' thermal stability was unaffected by the high BG content, and the thermal profiles were similar, with isoprene chains decomposition of the NR occurring between 350 and 450°C. In-vitro analysis on fibroblasts confirmed that the bio-nanocomposite fibrous mats are noncytotoxic. It was found that fibrous mats enhanced cellular growth and hold great promise for tissue engineering applications.

Keywords:
bioactive particles,cellulose nanowhiskers,fibrous mat bio-nanocomposite,natural rubber

Affiliations:
Silva M.J. - other affiliation
Dias Y.J. - other affiliation
Zaszczyńska A. - IPPT PAN
Kołbuk-Konieczny D. - IPPT PAN
Kowalczyk T. - IPPT PAN
Sajkiewicz P. Ł. - IPPT PAN
Yarin A. - Technion-Israel Institute of Technology (IL)
7.  Manippady S., Michalska M., Krajewski M., Bochenek K., Basista M.A., Zaszczyńska A., Czeppe T., Rogal , Jain A., One-step synthesis of a sustainable carbon material for high performance supercapacitor and dye adsorption applications, Materials Science and Engineering: B, ISSN: 0921-5107, DOI: 10.1016/j.mseb.2023.116766, Vol.297, No.116766, pp.1-14, 2023

Abstract:
The sustainable transformation of bio-waste into usable, material has gained great scientific interest. In this paper, we have presented preparation of an activated carbon material from a natural mushroom (Suillus boletus) and explor its properties for supercapacitor and dye adsorption applications. The produced cell exhibited a single electrode capacitance of ∼247 F g−1 with the energy and power density of ∼35 Wh kg−1 and 1.3 kW kg−1, respectively. The cell worked well for ∼20,000 cycles with ∼30% initial declination in capacitance. Three cells connected in series glowed a 2.0 V LED for ∼1.5 min. Moreover, ultrafast adsorption of methylene blue dye onto the prepared carbon as an adsorbent was recorded with ∼100% removal efficiency in an equilibrium time of three minutes. The performed tests indicate that the mushroom-derived activated carbon has the potential to become a high-performance electrode material for supercapacitors and an adsorbent for real-time wastewater treatment applications.

Keywords:
Activated carbon, Amorphous material, Biomass, Polymer gel electrolyte, Supercapacitor, Dye adsorption

Affiliations:
Manippady S. - IPPT PAN
Michalska M. - Łukasiewicz Research Network‒Institute of Electronic Materials Technology (PL)
Krajewski M. - IPPT PAN
Bochenek K. - IPPT PAN
Basista M.A. - IPPT PAN
Zaszczyńska A. - IPPT PAN
Czeppe T. - Institute of Metallurgy and Materials Science, Polish Academy of Sciences (PL)
Rogal  - Institute of Metallurgy and Materials Science, Polish Academy of Sciences (PL)
Jain A. - IPPT PAN
8.  Silva M.J., Dias Y.J., Zaszczyńska A., Rojas Robles J., Abiade J., Kowalczyk T., Kołbuk-Konieczny D., Sajkiewicz P., Yarin A.L., Biocomposite-based fibrous scaffolds of natural rubber/polyhydroxybutyrate blend reinforced with 45S5 bioglass aiming at biomedical applications, Polymer Composites, ISSN: 0272-8397, DOI: 10.1002/pc.27839, pp.1-21, 2023

Abstract:
The solution blow spinning technique was used to fabricate a new biocomposite fibrous mat consisting of natural rubber (NR) and polyhydroxybutyrate (PHB) bioblend, with various loads of 45S5 bioglass (BG) particles. According to SEM analysis, NR fibers exhibited ribbon-like morphologies, whereas the addition of PHB resulted in improved fiber formation and a reduction in their diameter. In NR-PHB/BG biocomposites with varying BG loadings, typical thermal degradation events of PHB (stage i) and NR (stage ii) were observed. In comparison with pure PHB, the TG/DTG curves of NR-PHB/BG specimens revealed a lower stage i degradation peak. Such an outcome is possibly due to the fact that PHB in the NR-PHB fibers is located predominantly at the surface, that is, PHB is more susceptible to thermal degradation. The NR-PHB/BG biocomposite possessed an increased stiffness due to the addition of PHB and BG, resulting in an increased stress and a decreased strain at rupture compared to the pure NR and NR-PHB mats. DMA analysis revealed two well-defined regions, above and below the glass transition temperature (Tg), for the storage modulus (E') of the NR-PHB/BG specimens. The values of E' were in both regions for NR-PHB/BG specimens increased at higher BG content. The measured tanδ = E″/E' was used to determine the Tg value for all specimens, with Tg found to be in the −49 to −46°C range. Finally, NR-PHB/BG biocomposite fibrous were proven noncytotoxic by in-vitro testing on fibroblasts. These biocomposites enhanced cell growth, holding great promise for tissue engineering applications.

Keywords:
45S5 bioglass, biocomposite fibrous mat, biomedical applications, natural rubber, polyhydroxybutyrate, solution blow spinning

Affiliations:
Silva M.J. - other affiliation
Dias Y.J. - other affiliation
Zaszczyńska A. - IPPT PAN
Rojas Robles J. - other affiliation
Abiade J. - other affiliation
Kowalczyk T. - IPPT PAN
Kołbuk-Konieczny D. - IPPT PAN
Sajkiewicz P. - IPPT PAN
Yarin A.L. - Technion-Israel Institute of Technology (IL)
9.  Czwartos J., Zaszczyńska A., Nowak-Stępniowska A., Fok T., Budner B., Bartnik A., Wachulak P., Kołbuk D., Sajkiewicz P., Fiedorowicz H., The novel approach to physico-chemical modification and cytocompatibility enhancement of fibrous polycaprolactone (PCL) scaffolds using soft X-ray/extreme ultraviolet (SXR/EUV) radiation and low-temperature, SXR/EUV induced, nitrogen and oxygen plasmas, APPLIED SURFACE SCIENCE, ISSN: 0169-4332, DOI: 10.1016/j.apsusc.2022.154779, Vol.606, pp.154779-1-12, 2022

Abstract:
The fundamental aspect of the fabrication of microporous, fibrous biomaterials in form of scaffolds is the optimization of their surface properties to enhance cellular response. In this work, a novel approach to physico-chemical modification and bioactivity enhancement of electrospun fibrous polycaprolactone (PCL) nonwovens using soft X-ray/extreme ultraviolet (SXR/EUV) irradiation and exposure to a low-temperature, SXR/EUV induced, nitrogen and oxygen plasmas is presented for the first time. Chemical alterations and morphology of the fibrous structure of irradiated PCL mats were examined using X-ray photoelectron spectroscopy (XPS) and scanning electron microscopy (SEM), respectively. The impact of introduced changes on viability, morphology, and adhesion of L929 mouse fibroblasts was examined. It was found that simultaneous interaction of SXR/EUV radiation and N2 or O2 photoionized plasmas led to strong chemical decomposition of the surface of fibrous PCL mats. Also, mats’ spatial porous structure was not damaged and the fibers were not broken or fused. All modified samples demonstrated cyto-compatible and non-cytotoxic properties. Enhancement of L929 cell adhesion and increased proliferation were also observed.

Keywords:
Soft X-ray/extreme ultraviolet (SXR/EUV) radiation, Low-temperature plasma treatment, Electrospun polycaprolactone (PCL) nonwovens, XPS analysis, L929 mouse fibroblasts, Cytocompatibility enhancement

Affiliations:
Czwartos J. - other affiliation
Zaszczyńska A. - IPPT PAN
Nowak-Stępniowska A. - other affiliation
Fok T. - other affiliation
Budner B. - other affiliation
Bartnik A. - other affiliation
Wachulak P. - other affiliation
Kołbuk D. - IPPT PAN
Sajkiewicz P. - IPPT PAN
Fiedorowicz H. - other affiliation
10.  Zaszczyńska A., Niemczyk-Soczyńska B., Sajkiewicz P., A Comprehensive Review of Electrospun Fibers, 3D-Printed Scaffolds, and Hydrogels for Cancer Therapies, Polymers, ISSN: 2073-4360, DOI: 10.3390/polym14235278, Vol.14, No.23, pp.5278-1-25, 2022

Abstract:
Anticancer therapies and regenerative medicine are being developed to destroy tumor cells, as well as remodel, replace, and support injured organs and tissues. Nowadays, a suitable three-dimensional structure of the scaffold and the type of cells used are crucial for creating bio-inspired organs and tissues. The materials used in medicine are made of non-degradable and degradable biomaterials and can serve as drug carriers. Developing flexible and properly targeted drug carrier systems is crucial for tissue engineering, regenerative medicine, and novel cancer treatment strategies. This review is focused on presenting innovative biomaterials, i.e., electrospun nanofibers, 3D-printed scaffolds, and hydrogels as a novel approach for anticancer treatments which are still under development and awaiting thorough optimization.

Keywords:
scaffolds, hydrogels, tissue engineering, polymers, anticancer treatments, cancer therapy, regenerative medicine

Affiliations:
Zaszczyńska A. - IPPT PAN
Niemczyk-Soczyńska B. - IPPT PAN
Sajkiewicz P. - IPPT PAN
11.  Jain A., Michalska M., Zaszczyńska A., Denis P., Surface modification of activated carbon with silver nanoparticles for electrochemical double layer capacitors, Journal of Energy Storage, ISSN: 2352-152X, DOI: 10.1016/j.est.2022.105367, Vol.54, pp.105367-1-9, 2022

Abstract:
In the present work, we report the synthesis of surface modified activated carbon (AC). The surface of the activated carbon have been modified by using silver nanoparticles. The synthesis process is simple, cost effective and environment friendly. The modified-AC powders have been characterized by using X-ray diffraction, scanning electron microscopy and surface area and pore size measurements. The electrochemical performance of the prepared materials have been tested by fabricating symmetric configuration of EDLC by using magnesium-ion based polymer electrolytes. The cells have been tested by using cyclic voltammetry, electrochemical impedance spectroscopy and galvanostatic charge-discharge technique. AC with 3 wt% of silver presents best results with specific capacitance of the order of 398 F g−1 energy density and power density of 55 Wh kg−1 and 2.4 kW kg−1 making it an interesting material for supercapacitor application.

Keywords:
supercapacitor, activated carbon-silver composite, gel polymer electrolyte, electrochemical studies

Affiliations:
Jain A. - IPPT PAN
Michalska M. - Łukasiewicz Research Network‒Institute of Electronic Materials Technology (PL)
Zaszczyńska A. - IPPT PAN
Denis P. - IPPT PAN
12.  Niemczyk-Soczyńska B., Zaszczyńska A., Zabielski K., Sajkiewicz P., Hydrogel, electrospun and composite materials for bone/cartilage and neural tissue engineering, Materials, ISSN: 1996-1944, DOI: 10.3390/ma14226899, Vol.14, No.22, pp.6899-1-23, 2021

Abstract:
Injuries of the bone/cartilage and central nervous system are still a serious socio-economic problem. They are an effect of diversified, difficult-to-access tissue structures as well as complex regeneration mechanisms. Currently, commercially available materials partially solve this problem, but they do not fulfill all of the bone/cartilage and neural tissue engineering requirements such as mechanical properties, biochemical cues or adequate biodegradation. There are still many things to do to provide complete restoration of injured tissues. Recent reports in bone/cartilage and neural tissue engineering give high hopes in designing scaffolds for complete tissue regeneration. This review thoroughly discusses the advantages and disadvantages of currently available commercial scaffolds and sheds new light on the designing of novel polymeric scaffolds composed of hydrogels, electrospun nanofibers, or hydrogels loaded with nano-additives.

Keywords:
scaffolds, tissue engineering, polymers, electrospun nanofibers, hydrogels, nanoparticles, composites, injectable materials

Affiliations:
Niemczyk-Soczyńska B. - IPPT PAN
Zaszczyńska A. - IPPT PAN
Zabielski K. - other affiliation
Sajkiewicz P. - IPPT PAN
13.  Zaszczyńska A., Moczulska-Heljak M., Gradys A., Sajkiewicz P., Advances in 3D printing for tissue engineering, Materials, ISSN: 1996-1944, DOI: 10.3390/ma14123149, Vol.14, No.12, pp.3149-1-28, 2021

Abstract:
Tissue engineering (TE) scaffolds have enormous significance for the possibility of regeneration of complex tissue structures or even whole organs. Three-dimensional (3D) printing techniques allow fabricating TE scaffolds, having an extremely complex structure, in a repeatable and precise manner. Moreover, they enable the easy application of computer-assisted methods to TE scaffold design. The latest additive manufacturing techniques open up opportunities not otherwise available. This study aimed to summarize the state-of-art field of 3D printing techniques in applications for tissue engineering with a focus on the latest advancements. The following topics are discussed: systematics of the available 3D printing techniques applied for TE scaffold fabrication; overview of 3D printable biomaterials and advancements in 3D-printing-assisted tissue engineering.

Keywords:
tissue engineering, 3D printing, biomaterials

Affiliations:
Zaszczyńska A. - IPPT PAN
Moczulska-Heljak M. - IPPT PAN
Gradys A. - IPPT PAN
Sajkiewicz P. - IPPT PAN
14.  Kaniuk Ł., Ferraris S., Spriano S., Luxbacher T., Krysiak Z., Berniak K., Zaszczyńska A., Marzec M.M., Bernasik A., Sajkiewicz P., Stachewicz U., Time-dependent effects on physicochemical and surface properties of PHBV fibers and films in relation to their interactions with fibroblasts, APPLIED SURFACE SCIENCE, ISSN: 0169-4332, DOI: 10.1016/j.apsusc.2021.148983, Vol.545, pp.148983-1-13, 2021

Abstract:
Biodegradability or materials physicochemical stability are the key biomaterials selection parameters for various medical and tissue engineering applications. Poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV) is a natural copolymer known from its biocompatibility with great support for cells growth and attachment on films and fibers. In our studies, the physicochemical properties of electrospun PHBV fibers and spin-coated films aged for 1, 4 and 8 weeks were analyzed using bulk (FTIR) and surface chemistry (XPS) methods and water contact angle. Further, we characterized the zeta potential changes after aging, by means of electrokinetic measurements, and cell responses to it, using NIH 3T3 murine fibroblasts. Colorimetric MTS cell viability test allowed the assessment of cell proliferation. Additionally, the morphology of fibroblasts and biointerfaces were studied by confocal laser and electron scanning microscopy (CLSM and SEM). These studies indicated that the activity, attachment and proliferation of fibroblasts is independent of aging of PHBV fibers and films. PHBV films show very stable zeta potential over 8 weeks of aging, opposite to PHBV fibers. Importantly, the flat film of PHBV increases cell proliferation, while the fibrous meshes are an excellent support for their stretching. The results of the study revealed clear advantages of PHBV films and fibrous meshes in cell-material interaction.

Keywords:
cell morphology, fibroblast, electrospun fibers, PHBV, Zeta potential

Affiliations:
Kaniuk Ł. - other affiliation
Ferraris S. - other affiliation
Spriano S. - other affiliation
Luxbacher T. - other affiliation
Krysiak Z. - other affiliation
Berniak K. - other affiliation
Zaszczyńska A. - IPPT PAN
Marzec M.M. - other affiliation
Bernasik A. - other affiliation
Sajkiewicz P. - IPPT PAN
Stachewicz U. - AGH University of Science and Technology (PL)
15.  Ghosal K., Augustine R., Zaszczyńska A., Barman M., Jain A., Hasan A., Kalarikkal N., Sajkiewicz P., Thomas S., Novel drug delivery systems based on triaxial electrospinning based nanofibers, REACTIVE AND FUNCTIONAL POLYMERS, ISSN: 1381-5148, DOI: 10.1016/j.reactfunctpolym.2021.104895, Vol.163, pp.104895-1-9, 2021

Abstract:
Electrospinning is a widely investigated process for forming nanofibers. Nanofibers in drug delivery systems are extensively tested due to its remarkable properties e.g. small pore size or large surface area. Recent articles have informed about formation of fibers using triaxial electrospinning in drug delivery systems. This paper summarizes the process of triaxial electrospinning and its application in drug delivery. Triaxial electrospinning has advantages in forming complex nanostructures for specific drug delivery applications. This paper summarizes the possibility to use triaxial electrospinning to resolve the problem of limited drug solubility, to protect biomolecules from hostile environment, and to control drug release kinetics, with the possibility of loading of various drugs. There are literature data evidencing the possibility to achieve sustained release with a border case of zero rate order kinetics. There is no doubt that triaxial electrospinning opens a new way to develop sophisticated nanomaterials for achieving the desired functional performances and to expand the applications in the drug delivery area. Triaxial electrospinning method is interdisciplinary area with great potential in nanotechnology.

Keywords:
triaxial electrospinning, complex nanostructures, drug delivery, desired functional performance, sustained/controlled release

Affiliations:
Ghosal K. - Jadavpur University (IN)
Augustine R. - Qatar University (QA)
Zaszczyńska A. - IPPT PAN
Barman M. - Dr. B. C. Roy College of Pharmacy and Allied Health Sciences (IN)
Jain A. - IPPT PAN
Hasan A. - Qatar University (QA)
Kalarikkal N. - Mahatma Gandhi Central University (IN)
Sajkiewicz P. - IPPT PAN
Thomas S. - Mahatma Gandhi Central University (IN)
16.  Ura D.P., Rosell-Llompart J., Zaszczyńska A., Vasilyev G., Gradys A., Szewczyk P.K., Knapczyk-Korczak J., Avrahami R., Šišková A.O., Arinstein A., Sajkiewicz P., Zussman E., Stachewicz U., The role of electrical polarity in electrospinning and on the mechanical and structural properties of as-spun fibers, Materials, ISSN: 1996-1944, DOI: 10.3390/ma13184169, Vol.13, No.18, pp.4169-1-18, 2020

Abstract:
Electric field strength and polarity in electrospinning processes and their effect on process dynamics and the physical properties of as-spun fibers is studied. Using a solution of the neutral polymer such as poly(methyl methacrylate) (PMMA) we explored the electrospun jet motion issued from a Taylor cone. We focused on the straight jet section up to the incipient stage of the bending instability and on the radius of the disk of the fibers deposited on the collecting electrode. A new correlation formula using dimensionless parameters was found, characterizing the effect of the electric field on the length of the straight jet, L˜E~E˜0.55. This correlation was found to be valid when the spinneret was either negatively or positively charged and the electrode grounded. The fiber deposition radius was found to be independent of the electric field strength and polarity. When the spinneret was negatively charged, L˜E was longer, the as-spun fibers were wider. The positively charged setup resulted in fibers with enhanced mechanical properties and higher crystallinity. This work demonstrates that often-overlooked electrical polarity and field strength parameters influence the dynamics of fiber electrospinning, which is crucial for designing polymer fiber properties and optimizing their collection.

Keywords:
fibers, electrical polarity, charges, electrospinning, PMMA, mechanical properties

Affiliations:
Ura D.P. - AGH University of Science and Technology (PL)
Rosell-Llompart J. - other affiliation
Zaszczyńska A. - IPPT PAN
Vasilyev G. - Technion-Israel Institute of Technology (IL)
Gradys A. - IPPT PAN
Szewczyk P.K. - other affiliation
Knapczyk-Korczak J. - other affiliation
Avrahami R. - other affiliation
Šišková A.O. - other affiliation
Arinstein A. - Technion-Israel Institute of Technology (IL)
Sajkiewicz P. - IPPT PAN
Zussman E. - Technion-Israel Institute of Technology (IL)
Stachewicz U. - AGH University of Science and Technology (PL)
17.  Zaszczyńska A., Gradys A., Sajkiewicz P., Progress in the applications of smart piezoelectric materials for medical devices, Polymers, ISSN: 2073-4360, DOI: 10.3390/polym12112754, Vol.12, No.11, pp.2754-1-19, 2020

Abstract:
Smart piezoelectric materials are of great interest due to their unique properties. Piezoelectric materials can transform mechanical energy into electricity and vice versa. There are mono and polycrystals (piezoceramics), polymers, and composites in the group of piezoelectric materials. Recent years show progress in the applications of piezoelectric materials in biomedical devices due to their biocompatibility and biodegradability. Medical devices such as actuators and sensors, energy harvesting devices, and active scaffolds for neural tissue engineering are continually explored. Sensors and actuators from piezoelectric materials can convert flow rate, pressure, etc., to generate energy or consume it. This paper consists of using smart materials to design medical devices and provide a greater understanding of the piezoelectric effect in the medical industry presently. A greater understanding of piezoelectricity is necessary regarding the future development and industry challenges.

Keywords:
polymers, smart materials, piezoelectric materials, inorganic materials, organic materials, biomedical devices

Affiliations:
Zaszczyńska A. - IPPT PAN
Gradys A. - IPPT PAN
Sajkiewicz P. - IPPT PAN
18.  Zaszczyńska A., Sajkiewicz P.Ł., Gradys A., Tymkiewicz R., Urbanek O., Kołbuk D., Influence of process-material conditions on the structure and biological properties of electrospun polyvinylidene fluoride fibers, BULLETIN OF THE POLISH ACADEMY OF SCIENCES: TECHNICAL SCIENCES, ISSN: 0239-7528, DOI: 10.24425/bpasts.2020.133368, Vol.68, No.3, pp.627-633, 2020

Abstract:
Polyvinylidene fluoride (PVDF) is one of the most important piezoelectric polymers. Piezoelectricity in PVDF appears in polar β and ɣ phases. Piezoelectric fibers obtained by means of electrospinning may be used in tissue engineering (TE) as a smart analogue of the natural extracellular matrix (ECM). We present results showing the effect of rotational speed of the collecting drum on morphology, phase content and in vitro biological properties of PVDF nonwovens. Morphology and phase composition were analyzed using scanning electron microscopy (SEM) and Fourier-transform infrared spectroscopy (FTIR), respectively. It was shown that increasing rotational speed of the collector leads to an increase in fiber orientation, reduction in fiber diameter and considerable increase of polar phase content, both b and g. In vitro cell culture experiments, carried out with the use of ultrasounds in order to generate electrical potential via piezoelectricity, indicate a positive effect of polar phases on fibroblasts. Our preliminary results demonstrate that piezoelectric PVDF scaffolds are promising materials for tissue engineering applications, particularly for neural tissue regeneration, where the electric potential is crucial.

Keywords:
scaffolds, electrospinning, polyvinylidene fluoride, tissue engineering

Affiliations:
Zaszczyńska A. - IPPT PAN
Sajkiewicz P.Ł. - IPPT PAN
Gradys A. - IPPT PAN
Tymkiewicz R. - IPPT PAN
Urbanek O. - IPPT PAN
Kołbuk D. - IPPT PAN
19.  Zaszczyńska A., Sajkiewicz P., Gradys A., Piezoelectric scaffolds as smart materials for neural tissue engineering, Polymers, ISSN: 2073-4360, DOI: 10.3390/polym12010161, Vol.12, No.1, pp.161-1-25, 2020

Abstract:
Injury to the central or peripheral nervous systems leads to the loss of cognitive and/or sensorimotor capabilities, which still lacks an effective treatment. Tissue engineering in the post-injury brain represents a promising option for cellular replacement and rescue, providing a cell scaffold for either transplanted or resident cells. Tissue engineering relies on scaffolds for supporting cell differentiation and growth with recent emphasis on stimuli responsive scaffolds, sometimes called smart scaffolds. One of the representatives of this material group is piezoelectric scaffolds, being able to generate electrical charges under mechanical stimulation, which creates a real prospect for using such scaffolds in non-invasive therapy of neural tissue. This paper summarizes the recent knowledge on piezoelectric materials used for tissue engineering, especially neural tissue engineering. The most used materials for tissue engineering strategies are reported together with the main achievements, challenges, and future needs for research and actual therapies. This review provides thus a compilation of the most relevant results and strategies and serves as a starting point for novel research pathways in the most relevant and challenging open questions.

Keywords:
neural tissue engineering, piezoelectric scaffolds, smart materials, polymers

Affiliations:
Zaszczyńska A. - IPPT PAN
Sajkiewicz P. - IPPT PAN
Gradys A. - IPPT PAN
20.  Zaszczyńska A., Sajkiewicz P., Gradys A., Kołbuk D., Urbanek O., Cellular studies on piezoelectric polyvinylidene fluoride nanofibers subjected to ultrasounds stimulations, ENGINEERING OF BIOMATERIALS / INŻYNIERIA BIOMATERIAŁÓW, ISSN: 1429-7248, Vol.22, No.153, pp.25-25, 2019
21.  Kecik K., Zaszczyńska A., Mitura A., Experimental Investigations of Energy Recovery from an Electromagnetic Pendulum Vibration Absorber, Journal of Vibration Testing and System Dynamics, ISSN: 2475-4811, DOI: 10.5890/JVTSD.2018.09.002, Vol.2, No.3, pp.209-219, 2018

Abstract:
The paper presents an experimental study of a special non−linear low frequency system dedicated to vibration mitigation and energy recovery. The dual−function design was based on an autoparametric vibration system, which consists of an oscillator with an added pendulum vibration absorber. Its structure includes an energy harvesting device: a levitating magnet in a coil. The pendulum motion shows simultaneously the effects of vibration reduction and energy recovery. The influences of the magnet−coil configurations, and load resistances on vibration reduction and energy harvesting were studied in detail.

Keywords:
Experiment, Energy recovery, Pendulum, Vibration mitigation

Affiliations:
Kecik K. - Lublin University of Technology (PL)
Zaszczyńska A. - IPPT PAN
Mitura A. - Lublin University of Technology (PL)
22.  Pałka K., Zaszczyńska A., Kleczewska J., Polymerization shrinkage of dental composites, ENGINEERING OF BIOMATERIALS / INŻYNIERIA BIOMATERIAŁÓW, ISSN: 1429-7248, Vol.20, No.143, pp.62, 2017

Abstract:
Dental composites are based on polymer resin matrix which diminishes its volume during polymerization process due to joining of monomer chains [1]. It is the reason of polymerization shrinkage of each polymer material. Serious consequence of the shrinkage in dentistry is marginal leakage and secondary caries resulting from this [2]. Therefore, the develop a low shrinkage material is a big challenge in the manufacturing of dental composites. There are many methods of diminishing polymerization shrinkage. One group is focused on resin matrix composition, the second on filler selection [3] and the others on applying technique [4]. Literature presents a lot of methods of shrinkage measurements [1]. In previous study the Authors used the method based on microCT measurements [5]. In this paper a new approach has been presented. In this study, the new method of polymerization shrinkage was applied to evaluate the polymerization shrinkage of selected dental composites showing differences in composition.

Affiliations:
Pałka K. - Lublin University of Technology (PL)
Zaszczyńska A. - other affiliation
Kleczewska J. - ARKONA laboratory of dental pharmacology (PL)
23.  Pałka K., Zaszczyńska A., Kleczewska J., Polymerization shrinkage of new flow-type dental composite using micro-ct, ENGINEERING OF BIOMATERIALS / INŻYNIERIA BIOMATERIAŁÓW, ISSN: 1429-7248, Vol.19, No.138, pp.75, 2016

Abstract:
Polymerization shrinkage of the resin-based dental composites constitutes a risk of the failure of the interfacial bonds as a result of shrinkage stresses. It may result in marginal leakage, premature failure of the restoration, and even micro-cracking of the tooth [1,2]. Therefore, the research for develop a low shrinkage material has been a goal in the manufacture of dental composites. The color restorative materials are very interesting and market demand for these products was increased recently. They are used especially in milk tooth as fissure sealing, for marking root canal openings or as decoration (tooth tattoo) [3]. In this study, the research of polymerization shrinkage of flow-type dental composites was conducted.

Affiliations:
Pałka K. - Lublin University of Technology (PL)
Zaszczyńska A. - other affiliation
Kleczewska J. - ARKONA laboratory of dental pharmacology (PL)

Conference abstracts
1.  Zaszczyńska A., Gradys A., Tymkiewicz R., Lewandowska-Szumieł M., Sajkiewicz P.Ł., ENHANCED ELECTROACTIVE PHASES OF POLYVINYLIDENE FLUORIDE NANOFIBERS FOR BONE TISSUE ENGINEERING APPLICATIONS, ICSAAM 2023, The 10th International Conference on Structural Analysis of Advanced Materials, 2023-09-10/09-14, Zakyntos (GR), pp.1-3, 2023
2.  Kuklewska A., Wrochna K., Marek-Urban P.H., Zaszczyńska A., Sajkiewicz P., Durka K., Materiały polimerowe uzyskane na drodze elektroprzędzenia o właściwościach fotouczulających, 65 Zjazd Naukowy Polskiego Towarzystwa Chemicznego, 2023-09-18/09-22, Toruń (PL), pp.450, 2023
3.  Wrochna K., Kuklewska A., Marek-Urban P.H., Zaszczyńska A., Sajkiewicz P., Durka K., Fotoaktywne włókniny generujące reaktywne formy tlenu do oczyszczania wody i fotoinaktywacji mikroorganizmów, 65 Zjazd Naukowy Polskiego Towarzystwa Chemicznego, 2023-09-18/09-22, Toruń (PL), pp.58, 2023
4.  Marek-Urban P.H., Kuklewska A., Zaszczyńska A., Sajkiewicz P., Durka K., Materiały polimerowe zawierające kompleksy boroorganiczne do zastosowań w fotokatalizie heterofazowej, VII Ogólnopolskie Seminarium Postępy w Chemii Boru, 2022-05-03/05-05, Radziejowice (PL), pp.12, 2022
5.  Zaszczyńska A., Sajkiewicz P., Gradys A., Smart piezoelectric scaffold for nerve regeneration, AMC, European Advanced Materials Congress, 2021-08-23/08-25, Stockholm (SE), pp.162-163, 2021

Keywords:
Piezo-nerve, scaffold, nanofibers, tissue engineering, stem cells

Affiliations:
Zaszczyńska A. - IPPT PAN
Sajkiewicz P. - IPPT PAN
Gradys A. - IPPT PAN
6.  Zaszczyńska A., Sajkiewicz P.Ł., Designing three-dimensional piezoelectric scaffolds for neural tissue engineering, XXII Polish Conference on Biocybernetics and Biomedical Engineering, 2021-05-19/05-21, Warszawa (PL), pp.152, 2021
7.  Zaszczyńska A., Cieciuch A., Gradys A., Lewandowska-Szumieł M., Sajkiewicz P., Cellular studies on stromal cells and piezoelectric nanofibers subjected to ultrasounds stimulations for medical devices, UK-Poland Bioinspired Materials Conference, 2020-11-23/11-24, Lancaster (GB), pp.127-127, 2020
8.  Zaszczyńska A., Sajkiewicz P., Gradys A., Kołbuk D., Urbanek O., Cellular studies of piezoelectric nanofibers with ultrasound stimulations, Aerogels Processing, Modelling and Environmental-Driven Applications, 2019-10-21/10-23, Coimbra (PT), No.P04, pp.36, 2019
9.  Ura D.P., Gradys A., Zaszczyńska A., Sajkiewicz P., Stachewicz U., Controlling of mechanical properties of electrospun PMMA fibers via voltage polarity, 7th Dresden Nanoanalysis Symposium: Nano-scale characterization for cutting-edge materials research and sustainable materials development, 2019-08-30/08-30, Dresden (DE), pp.1-2, 2019
10.  Ura D.P., Gradys A., Zaszczyńska A., Sajkiewicz P., Stachewicz U., Controlling of mechanical properties of electrospun PMMA fibers via voltage polarity, 8th International PhD Meeting, 2019-08-28/08-29, Dresden (DE), pp.1, 2019
11.  Sajkiewicz P., Zaszczyńska A., Piezoelectric scaffolds - on the way to effective cellular mechanotransduction, CNM 2019, 6th CONFERENCE ON NANO- AND MICROMECHANICS, 2019-07-03/07-05, Rzeszów (PL), pp.1, 2019

Keywords:
scaffolds, electro spinning, tissue engineering

Affiliations:
Sajkiewicz P. - IPPT PAN
Zaszczyńska A. - IPPT PAN
12.  Zaszczyńska A., Sajkiewicz P., Gradys A., Urbanek O., Kołbuk D., Influence of process-material conditions on the phase composition, architecture and biological properties of electrospun polyvinylidene fluoride fibers, CNM 2019, 6th CONFERENCE ON NANO- AND MICROMECHANICS, 2019-07-03/07-05, Rzeszów (PL), pp.145-147, 2019

Keywords:
scaffolds, electrospinning, polyvinylidene fluoride, tissue engineering

Affiliations:
Zaszczyńska A. - IPPT PAN
Sajkiewicz P. - IPPT PAN
Gradys A. - IPPT PAN
Urbanek O. - IPPT PAN
Kołbuk D. - IPPT PAN
13.  Ura P.D., Zaszczyńska A., Gradys A., Sajkiewicz P., Stachewicz U., Mechanical properties of electrospun non-woven PMMA mats produced with positive and negative voltage polarities, AMT 2019, XXII Physical Metallurgy and Materials Science Conference: Advanced Materials and Technologies, 2019-06-09/06-12, Bukowina Tatrzańska (PL), pp.1, 2019
14.  Ura D.P., Gradys A., Zaszczyńska A., Sajkiewicz P., Stachewicz U., Effect of voltage polarity on mechanical properties of electrospun PMMA fibers, Frontiers in Polymer Science, 2019-05-05/05-08, Budapest (HU), pp.1-2, 2019
15.  Zaszczyńska A., Sajkiewicz P., Gradys A., Piezoelectric polymeric nanofibers as smart scaffolds for tissue engineering, TERMIS EU 2019, TERMIS European Chapter Meeting 2019, Tissue Engineering Therapies: From Concept to Clinical Translation & Commercialisation, 2019-05-27/05-31, Rodos (GR), pp.1421, 2019
16.  Zaszczyńska A., Pałka K., Polymerization shrinkage of biomaterials, PICETE, Polish-Israeli Conference on Electrospinning and Tissue Engineering, 2018-10-04/10-05, Warszawa (PL), pp.26, 2018
17.  Pałka K., Zaszczyńska A., Kleczewska J., Polymerization shrinkage of dental composites, 26th Annual Conference Biomaterials in Medicine and Veterinary Medicine, 2017-10-12/10-15, Rytro (PL), pp.1, 2017
18.  Pałka K., Zaszczyńska A., Kleczewska J., Polymerization shrinkage of new flow-type dental composite using micro-CT, 25th Annual Conference Biomaterials in Medicine and Veterinary Medicine, 2016-10-13/10-16, Rytro (PL), pp.1, 2016

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