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Ultra-miniature ultra-compliant neural probes with dissolvable delivery needles: design, fabrication and characterization

Overview of attention for article published in Biomedical Microdevices, October 2016
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Title
Ultra-miniature ultra-compliant neural probes with dissolvable delivery needles: design, fabrication and characterization
Published in
Biomedical Microdevices, October 2016
DOI 10.1007/s10544-016-0125-4
Pubmed ID
Authors

Rakesh Khilwani, Peter J. Gilgunn, Takashi D. Y. Kozai, Xiao Chuan Ong, Emrullah Korkmaz, Pallavi K. Gunalan, X. Tracy Cui, Gary K. Fedder, O. Burak Ozdoganlar

Abstract

Stable chronic functionality of intracortical probes is of utmost importance toward realizing clinical application of brain-machine interfaces. Sustained immune response from the brain tissue to the neural probes is one of the major challenges that hinder stable chronic functionality. There is a growing body of evidence in the literature that highly compliant neural probes with sub-cellular dimensions may significantly reduce the foreign-body response, thereby enhancing long term stability of intracortical recordings. Since the prevailing commercial probes are considerably larger than neurons and of high stiffness, new approaches are needed for developing miniature probes with high compliance. In this paper, we present design, fabrication, and in vitro evaluation of ultra-miniature (2.7 μm x 10 μm cross section), ultra-compliant (1.4 × 10(-2) μN/μm in the axial direction, and 2.6 × 10(-5) μN/μm and 1.8 × 10(-6) μN/μm in the lateral directions) neural probes and associated probe-encasing biodissolvable delivery needles toward addressing the aforementioned challenges. The high compliance of the probes is obtained by micron-scale cross-section and meandered shape of the parylene-C insulated platinum wiring. Finite-element analysis is performed to compare the strains within the tissue during micromotion when using the ultra-compliant meandered probes with that when using stiff silicon probes. The standard batch microfabrication techniques are used for creating the probes. A dissolvable delivery needle that encases the probe facilitates failure-free insertion and precise placement of the ultra-compliant probes. Upon completion of implantation, the needle gradually dissolves, leaving behind the ultra-compliant neural probe. A spin-casting based micromolding approach is used for the fabrication of the needle. To demonstrate the versatility of the process, needles from different biodissolvable materials, as well as two-dimensional needle arrays with different geometries and dimensions, are fabricated. Further, needles incorporating anti-inflammatory drugs are created to show the co-delivery potential of the needles. An automated insertion device is developed for repeatable and precise implantation of needle-encased probes into brain tissue. Insertion of the needles without mechanical failure, and their subsequent dissolution are demonstrated. It is concluded that ultra-miniature, ultra-compliant probes and associated biodissolvable delivery needles can be successfully fabricated, and the use of the ultra-compliant meandered probes results in drastic reduction in strains imposed in the tissue as compared to stiff probes, thereby showing promise toward chronic applications.

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Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 106 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
United States 3 3%
Spain 1 <1%
Unknown 102 96%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 27 25%
Student > Master 16 15%
Student > Doctoral Student 12 11%
Researcher 12 11%
Student > Bachelor 5 5%
Other 12 11%
Unknown 22 21%
Readers by discipline Count As %
Engineering 43 41%
Neuroscience 14 13%
Agricultural and Biological Sciences 5 5%
Materials Science 4 4%
Medicine and Dentistry 3 3%
Other 10 9%
Unknown 27 25%
Attention Score in Context

Attention Score in Context

This research output has an Altmetric Attention Score of 2. This is our high-level measure of the quality and quantity of online attention that it has received. This Attention Score, as well as the ranking and number of research outputs shown below, was calculated when the research output was last mentioned on 31 October 2016.
All research outputs
#14,278,154
of 22,896,955 outputs
Outputs from Biomedical Microdevices
#528
of 747 outputs
Outputs of similar age
#177,839
of 313,854 outputs
Outputs of similar age from Biomedical Microdevices
#5
of 8 outputs
Altmetric has tracked 22,896,955 research outputs across all sources so far. This one is in the 35th percentile – i.e., 35% of other outputs scored the same or lower than it.
So far Altmetric has tracked 747 research outputs from this source. They receive a mean Attention Score of 4.1. This one is in the 27th percentile – i.e., 27% of its peers scored the same or lower than it.
Older research outputs will score higher simply because they've had more time to accumulate mentions. To account for age we can compare this Altmetric Attention Score to the 313,854 tracked outputs that were published within six weeks on either side of this one in any source. This one is in the 40th percentile – i.e., 40% of its contemporaries scored the same or lower than it.
We're also able to compare this research output to 8 others from the same source and published within six weeks on either side of this one. This one has scored higher than 3 of them.