Direct jet coaxial electrospinning of axon‐mimicking fibers for diffusion tensor imaging

Author:

Hu Chunyan1,Grech‐Sollars Matthew23,Statton Ben4,Li Zhanxiong5,Gao Fei6,Williams Gareth R.7,Parker Geoff J. M.89,Zhou Feng‐Lei178ORCID

Affiliation:

1. College of Textiles and Clothing Qingdao University Qingdao China

2. Department of Computer Science University College London London UK

3. Lysholm Department of Neuroradiology, National Hospital for Neurology and Neurosurgery University College London Hospitals NHS Foundation Trust London UK

4. Medical Research Council, London Institute of Medical Sciences Imperial College London London UK

5. College of Textile and Clothing Engineering Soochow University Suzhou China

6. Department of Radiology, Shandong Provincial Hospital, Cheeloo College of Medicine Shandong University Jinan China

7. School of Pharmacy University College London London UK

8. Centre for Medical Image Computing, Department of Medical Physics and Biomedical Engineering University College London London UK

9. Bioxydyn Limited Manchester UK

Abstract

AbstractHollow polymer microfibers with variable microstructural and hydrophilic properties were proposed as building elements to create axon‐mimicking phantoms for validation of diffusion tensor imaging (DTI). The axon‐mimicking microfibers were fabricated in a mm‐thick 3D anisotropic fiber strip, by direct jet coaxial electrospinning of PCL/polysiloxane‐based surfactant (PSi) mixture as shell and polyethylene oxide (PEO) as core. Hydrophilic PCL‐PSi fiber strips were first obtained by carefully selecting appropriate solvents for the core and appropriate fiber collector rotating and transverse speeds. The porous cross‐section and anisotropic orientation of axon‐mimicking fibers were then quantitatively evaluated using two ImageJ plugins—nearest distance (ND) and directionality based on their scanning electron microscopy (SEM) images. Third, axon‐mimicking phantom was constructed from PCL‐PSi fiber strips with variable porous‐section and fiber orientation and tested on a 3T clinical MR scanner. The relationship between DTI measurements (mean diffusivity [MD] and fractional anisotropy [FA]) of phantom samples and their pore size and fiber orientation was investigated. Two key microstructural parameters of axon‐mimicking phantoms including normalized pore distance and dispersion of fiber orientation could well interpret the variations in DTI measurements. Two PCL‐PSi phantom samples made from different regions of the same fiber strips were found to have similar MD and FA values, indicating that the direct jet coaxial electrospun fiber strips had consistent microstructure. More importantly, the MD and FA values of the developed axon‐mimicking phantoms were mostly in the biologically relevant range.

Publisher

Wiley

Subject

Polymers and Plastics

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