Browse by UCL people
Group by: Type | Date
Number of items: 30.
Article
Browning, RJ;
Reardon, PJT;
Parhizkar, M;
Pedley, RB;
Edirisinghe, M;
Knowles, JC;
Stride, E;
(2017)
Drug Delivery Strategies for Platinum Based Chemotherapy.
ACS Nano
, 11
(9)
pp. 8560-8578.
10.1021/acsnano.7b04092.
|
Cam, ME;
Crabbe-Mann, M;
Alenezi, H;
Hazar-Yavuz, AN;
Ertas, B;
Ekentok, C;
Ozcan, GS;
... Edirisinghe, M; + view all
(2020)
The comparision of glybenclamide and metformin-loaded bacterial cellulose/gelatin nanofibres produced by a portable electrohydrodynamic gun for diabetic wound healing.
European Polymer Journal
, 134
, Article 109844. 10.1016/j.eurpolymj.2020.109844.
|
Crabbe-Mann, M;
Tsaoulidis, D;
Parhizkar, M;
Edirisinghe, M;
(2018)
Ethyl cellulose, cellulose acetate and carboxymethyl cellulose microstructures prepared using electrohydrodynamics and green solvents.
Cellulose
, 25
(3)
pp. 1687-1703.
10.1007/s10570-018-1673-y.
|
Husain, O;
Lau, W;
Edirisinghe, M;
Parhizkar, M;
(2016)
Investigating the particle to fibre transition threshold during electrohydrodynamic atomization of a polymer solution.
Materials Science & Engineering C
, 65
pp. 240-250.
10.1016/j.msec.2016.03.076.
|
Illangakoon, UE;
Gill, H;
Shearman, GC;
Parhizkar, M;
Mahalingam, S;
Chatterton, NP;
Williams, GR;
(2014)
Fast dissolving paracetamol/caffeine nanofibers prepared by electrospinning.
Int J Pharm
, 477
(1-2)
369 - 379.
10.1016/j.ijpharm.2014.10.036.
|
Jiang, X;
Zhang, Y;
Edirisinghe, M;
Parhizkar, M;
(2016)
Combining microfluidic devices with coarse capillaries to reduce the size of monodisperse microbubbles.
RSC Advances
, 6
(68)
pp. 63568-63577.
10.1039/c6ra09802a.
|
Jorgensen, Anna Kirstine;
Dowek, Antoine;
Denis, Lucas;
Ong, Jun Jie;
Annereau, Maxime;
Rieutord, Andre;
Parhizkar, Maryam;
... Basit, Abdul W; + view all
(2025)
3D printing personalized medications in a hospital: Rapid and non-destructive dose verification of printed medicines enabled by miniaturised spectroscopy.
Journal
, 114
(9)
, Article 103895. 10.1016/j.xphs.2025.103895.
|
Karimpoor, M;
Yebra-Fernandez, E;
Parhizkar, M;
Orlu, M;
Craig, D;
Khorashad, JS;
Edirisinghe, M;
(2018)
Alginate foam-based three-dimensional culture to investigate drug sensitivity in primary leukaemia cells.
Interface
, 15
(141)
10.1098/rsif.2017.0928.
|
Liu, Yinan;
Craig, Duncan QM;
Parhizkar, Maryam;
(2024)
Controlled release of doxorubicin from Poly-(D,L-lactide-co-glycolide) (PLGA) nanoparticles prepared by coaxial electrospraying.
International Journal of Pharmaceutics
, 666
, Article 124724. 10.1016/j.ijpharm.2024.124724.
|
Parhizkar, M;
Mahalingam, S;
Homer-Vanniasinkam, S;
Edirisinghe, M;
(2017)
Latest developments in innovative manufacturing to combine nanotechnology with healthcare.
NANOMEDICINE
, 13
(1)
pp. 5-8.
10.2217/nnm-2017-0283.
|
Parhizkar, M;
Reardon, PJ;
Knowles, JC;
Browning, RJ;
Stride, E;
Pedley, BR;
Harker, AH;
(2016)
Electrohydrodynamic encapsulation of cisplatin in poly (lactic-co-glycolic acid) nanoparticles for controlled drug delivery.
Nanomedicine
, 12
(7)
pp. 1919-1929.
10.1016/j.nano.2016.05.005.
|
Parhizkar, M;
Reardon, PJT;
Harker, AH;
Browning, RJ;
Stride, E;
Pedley, RB;
Knowles, JC;
(2020)
Enhanced efficacy in drug-resistant cancer cells through synergistic nanoparticle mediated delivery of cisplatin and decitabine.
Nanoscale Advances
10.1039/c9na00684b.
(In press).
|
Parhizkar, M;
Reardon, PJT;
Knowles, JC;
Browning, RJ;
Stride, E;
Pedley, RB;
Grego, T;
(2017)
Performance of novel high throughput multi electrospray systems for forming of polymeric micro/nanoparticles.
Materials and Design
, 126
pp. 73-84.
10.1016/j.matdes.2017.04.029.
|
Parhizkar, M;
Sofokleous, P;
Stride, E;
Edirisinghe, M;
(2014)
Novel preparation of controlled porosity particle/fibre loaded scaffolds using a hybrid micro-fluidic and electrohydrodynamic technique.
Biofabrication
, 6
(4)
, Article 045010. 10.1088/1758-5082/6/4/045010.
|
Parhizkar, M;
Stride, E;
Edirisinghe, M;
(2014)
Preparation of monodisperse microbubbles using an integrated embedded capillary T-junction with electrohydrodynamic focusing.
Lab Chip
(14)
pp. 2437-2446.
10.1039/c4lc00328d.
|
Pina, MF;
Lau, W;
Scherer, K;
Parhizkar, M;
Edirisinghe, M;
Craig, D;
(2017)
The generation of compartmentalized nanoparticles containing siRNA and cisplatin using a multi-needle electrohydrodynamic strategy.
Nanoscale
, 9
(18)
pp. 5975-5985.
10.1039/c7nr01002h.
|
Reardon, PJT;
Parhizkar, M;
Harker, AH;
Browning, RJ;
Vassileva, V;
Stride, E;
Pedley, RB;
... Knowles, JC; + view all
(2017)
Electrohydrodynamic fabrication of core-shell PLGA nanoparticles with controlled release of cisplatin for enhanced cancer treatment.
International Journal of Nanomedicine
, 12
pp. 3913-3926.
10.2147/IJN.S134833.
|
Shams, T;
Illangakoon, UE;
Parhizkar, M;
Harker, AH;
Edirisinghe, S;
Orlu, M;
Edirisinghe, M;
(2018)
Electrosprayed microparticles for intestinal delivery of prednisolone.
Journal of the Royal Society Interface
, 15
(145)
, Article 20180491. 10.1098/rsif.2018.0491.
|
Shams, T;
Parhizkar, M;
Illangakoon, UE;
Orlu, M;
Edirisinghe, M;
(2017)
Core/shell microencapsulation of indomethacin/paracetamol by co-axial electrohydrodynamic atomization.
Materials & Design
, 136
pp. 204-213.
10.1016/j.matdes.2017.09.052.
|
Sørensen, Mathias Dam Mønster;
Wang, Fanjin;
Parhizkar, Maryam;
Holm, René;
(2025)
Evaluating polymer influence on resuspendability of indomethacin suspensions produced by microfluidization.
European Journal of Pharmaceutical Sciences
, 209
, Article 107072. 10.1016/j.ejps.2025.107072.
|
Talebi, A;
Labbaf, S;
Atari, M;
Parhizkar, M;
(2021)
Polymeric Nanocomposite Structures Based on Functionalized Graphene with Tunable Properties for Nervous Tissue Replacement.
ACS Biomaterials Science & Engineering
, 7
(9)
pp. 4591-4601.
10.1021/acsbiomaterials.1c00744.
|
Tsilova, SL;
Schreiber, BE;
Lever, R;
Parhizkar, M;
(2024)
Polymeric nanoparticles produced by electrohydrodynamic atomisation for the passive delivery of imatinib.
European Journal of Pharmaceutics and Biopharmaceutics
, 202
, Article 114412. 10.1016/j.ejpb.2024.114412.
|
Tsitouridou, Anna;
Parhizkar, Maryam;
Wu, Chuan-Yu;
Chen, Tao;
Tsaoulidis, Dimitrios;
(2025)
CFD approaches in microfluidics for the development of polymeric, lipid-based and inorganic nanoparticles for drug delivery.
Chemical Engineering Journal Advances
, 24
, Article 100853. 10.1016/j.ceja.2025.100853.
|
Ubani-Ukoma, Uloma N;
Li, Xiunan;
Faiyaz, Mahmood;
Parhizkar, Maryam;
Craig, Duncan QM;
Abdelhakim, Hend E;
(2025)
Fabrication and characterization of taste-masked core-shell nanofibre mats for dual drug delivery of antihypertensives in pediatrics.
International Journal of Pharmaceutics
, Article 126541. 10.1016/j.ijpharm.2025.126541.
|
Wang, F;
Elbadawi, M;
Tsilova, SL;
Gaisford, S;
Basit, AW;
Parhizkar, M;
(2022)
Machine learning to empower electrohydrodynamic processing.
Materials Science and Engineering C: Materials for Biological Applications
, 132
, Article 112553. 10.1016/j.msec.2021.112553.
|
Wang, Fanjin;
Harker, Anthony;
Edirisinghe, Mohan;
Parhizkar, Maryam;
(2024)
Tackling Data Scarcity Challenge through Active Learning
in Materials Processing with Electrospray.
Advanced Intelligent Systems
, Article 2300798. 10.1002/aisy.202300798.
(In press).
|
Zhang, Y;
Shams, T;
Harker, AH;
Parhizkar, M;
Edirisinghe, M;
(2018)
Effect of copolymer composition on particle morphology and release behavior in vitro using progesterone.
Materials & Design
, 159
pp. 57-67.
10.1016/j.matdes.2018.08.024.
|
Zhang, Y;
Zhang, R;
Illangakoon, UE;
Harker, AH;
Thrasivoulou, C;
Parhizkar, M;
Edirisinghe, M;
(2020)
Copolymer Composition and Nanoparticle Configuration Enhance in vitro Drug Release Behavior of Poorly Water-soluble Progesterone for Oral Formulations.
International Journal of Nanomedicine
, 15
pp. 5389-5403.
10.2147/IJN.S257353.
|
Zulbeari, Nadina;
Wang, Fanjin;
Mustafova, Sibel Selyatinova;
Parhizkar, Maryam;
Holm, René;
(2025)
Machine learning strengthened formulation design of pharmaceutical suspensions.
International Journal of Pharmaceutics
, 668
, Article 124967. 10.1016/j.ijpharm.2024.124967.
|
Thesis
Parhizkar, M;
(2014)
Preparation of monodisperse microbubbles in a capillary embedded T-Junction device and the influence of process control parameters on bubble size and stability.
Doctoral thesis , UCL (University College London).
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