Literature DB >> 29884927

In-vitro perforation of the round window membrane via direct 3-D printed microneedles.

Aykut Aksit1, Daniel N Arteaga2, Miguel Arriaga1, Xun Wang1, Hirobumi Watanabe1, Karen E Kasza1, Anil K Lalwani1,2, Jeffrey W Kysar3,4.   

Abstract

The cochlea, or inner ear, is a space fully enclosed within the temporal bone of the skull, except for two membrane-covered portals connecting it to the middle ear space. One of these portals is the round window, which is covered by the Round Window Membrane (RWM). A longstanding clinical goal is to reliably and precisely deliver therapeutics into the cochlea to treat a plethora of auditory and vestibular disorders. Standard of care for several difficult-to-treat diseases calls for injection of a therapeutic substance through the tympanic membrane into the middle ear space, after which a portion of the substance diffuses across the RWM into the cochlea. The efficacy of this technique is limited by an inconsistent rate of molecular transport across the RWM. A solution to this problem involves the introduction of one or more microscopic perforations through the RWM to enhance the rate and reliability of diffusive transport. This paper reports the use of direct 3D printing via Two-Photon Polymerization (2PP) lithography to fabricate ultra-sharp polymer microneedles specifically designed to perforate the RWM. The microneedle has tip radius of 500 nm and shank radius of 50 μ m, and perforates the guinea pig RWM with a mean force of 1.19 mN. The resulting perforations performed in vitro are lens-shaped with major axis equal to the microneedle shank diameter and minor axis about 25% of the major axis, with mean area 1670 μ m2. The major axis is aligned with the direction of the connective fibers within the RWM. The fibers were separated along their axes without ripping or tearing of the RWM suggesting the main failure mechanism to be fiber-to-fiber decohesion. The small perforation area along with fiber-to-fiber decohesion are promising indicators that the perforations would heal readily following in vivo experiments. These results establish a foundation for the use of Two-Photon Polymerization lithography as a means to fabricate microneedles to perforate the RWM and other similar membranes.

Entities:  

Keywords:  3-D laser printing; Inner ear delivery; Microneedles; Nanoscribe; Round window membrane

Mesh:

Year:  2018        PMID: 29884927      PMCID: PMC6091873          DOI: 10.1007/s10544-018-0287-3

Source DB:  PubMed          Journal:  Biomed Microdevices        ISSN: 1387-2176            Impact factor:   2.838


  26 in total

1.  Quantitative anatomy of the round window and cochlear aqueduct in guinea pigs.

Authors:  A F Ghiz; A N Salt; J E DeMott; M M Henson; O W Henson; S L Gewalt
Journal:  Hear Res       Date:  2001-12       Impact factor: 3.208

2.  Femtosecond laser-induced two-photon polymerization of inorganic-organic hybrid materials for applications in photonics.

Authors:  J Serbin; A Egbert; A Ostendorf; B N Chichkov; R Houbertz; G Domann; J Schulz; C Cronauer; L Fröhlich; M Popall
Journal:  Opt Lett       Date:  2003-03-01       Impact factor: 3.776

3.  Determination of collagen fiber orientation in human tissue by use of polarization measurement of molecular second-harmonic-generation light.

Authors:  Takeshi Yasui; Yoshiyuki Tohno; Tsutomu Araki
Journal:  Appl Opt       Date:  2004-05-10       Impact factor: 1.980

4.  Intracochlear Drug Injections through the Round Window Membrane: Measures to Improve Drug Retention.

Authors:  Stefan K Plontke; Jared J Hartsock; Ruth M Gill; Alec N Salt
Journal:  Audiol Neurootol       Date:  2016-02-24       Impact factor: 1.854

Review 5.  Round window membrane. Structure function and permeability: a review.

Authors:  M V Goycoolea; L Lundman
Journal:  Microsc Res Tech       Date:  1997-02-01       Impact factor: 2.769

6.  Laser direct writing of micro- and nano-scale medical devices.

Authors:  Shaun D Gittard; Roger J Narayan
Journal:  Expert Rev Med Devices       Date:  2010-05       Impact factor: 3.166

7.  Lithium dosing equations: are they accurate?

Authors:  Taylor A Nichols; Shannon J Drayton; Jeffrey Borckardt; David J Taber
Journal:  Ann Pharmacother       Date:  2014-02-27       Impact factor: 3.154

8.  Microperforations significantly enhance diffusion across round window membrane.

Authors:  Catherine M Kelso; Hirobumi Watanabe; Joseph M Wazen; Tizian Bucher; Zhen J Qian; Elizabeth S Olson; Jeffrey W Kysar; Anil K Lalwani
Journal:  Otol Neurotol       Date:  2015-04       Impact factor: 2.311

9.  Failure modes and fracture toughness in partially torn ligaments and tendons.

Authors:  Gregory A Von Forell; Peter S Hyoung; Anton E Bowden
Journal:  J Mech Behav Biomed Mater       Date:  2014-04-08

10.  Marker retention in the cochlea following injections through the round window membrane.

Authors:  Alec N Salt; Davud B Sirjani; Jared J Hartsock; Ruth M Gill; Stefan K Plontke
Journal:  Hear Res       Date:  2007-06-27       Impact factor: 3.208

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  17 in total

1.  3D-Printed Microneedles Create Precise Perforations in Human Round Window Membrane in Situ.

Authors:  Harry Chiang; Michelle Yu; Aykut Aksit; Wenbin Wang; Sagit Stern-Shavit; Jeffrey W Kysar; Anil K Lalwani
Journal:  Otol Neurotol       Date:  2020-02       Impact factor: 2.311

Review 2.  Prevention of cisplatin-induced ototoxicity in children and adolescents with cancer: a clinical practice guideline.

Authors:  David R Freyer; Penelope R Brock; Kay W Chang; L Lee Dupuis; Sidnei Epelman; Kristin Knight; Denise Mills; Robert Phillips; Emma Potter; Demie Risby; Philippa Simpkin; Michael Sullivan; Sandra Cabral; Paula D Robinson; Lillian Sung
Journal:  Lancet Child Adolesc Health       Date:  2019-12-19

3.  Inner Ear Gene Delivery: Vectors and Routes.

Authors:  Chris Valentini; Betsy Szeto; Jeffrey W Kysar; Anil K Lalwani
Journal:  Hearing Balance Commun       Date:  2020-08-25

4.  Novel 3D-printed hollow microneedles facilitate safe, reliable, and informative sampling of perilymph from guinea pigs.

Authors:  Betsy Szeto; Aykut Aksit; Chris Valentini; Michelle Yu; Emily G Werth; Shahar Goeta; Chuanning Tang; Lewis M Brown; Elizabeth S Olson; Jeffrey W Kysar; Anil K Lalwani
Journal:  Hear Res       Date:  2020-12-02       Impact factor: 3.208

5.  Characterization of the Sheep Round Window Membrane.

Authors:  S Han; H Suzuki-Kerr; M Suwantika; R S Telang; D A Gerneke; P V Anekal; P Bird; S M Vlajkovic; P R Thorne
Journal:  J Assoc Res Otolaryngol       Date:  2020-11-30

6.  Drug delivery device for the inner ear: ultra-sharp fully metallic microneedles.

Authors:  Aykut Aksit; Shruti Rastogi; Maria L Nadal; Amber M Parker; Anil K Lalwani; Alan C West; Jeffrey W Kysar
Journal:  Drug Deliv Transl Res       Date:  2021-02       Impact factor: 4.617

7.  Membrane curvature and connective fiber alignment in guinea pig round window membrane.

Authors:  Miguel Arriaga; Daniel N Arteaga; Dimitrios Fafalis; Michelle Yu; Xun Wang; Karen E Kasza; Anil K Lalwani; Jeffrey W Kysar
Journal:  Acta Biomater       Date:  2021-09-24       Impact factor: 8.947

8.  Simulation assisted design for microneedle manufacturing: Computational modeling of two-photon templated electrodeposition.

Authors:  Aykut Aksit; Anil K Lalwani; Jeffrey W Kysar; Alan C West
Journal:  J Manuf Process       Date:  2021-04-16       Impact factor: 5.684

9.  Impact of Systemic versus Intratympanic Dexamethasone Administration on the Perilymph Proteome.

Authors:  Betsy Szeto; Chris Valentini; Aykut Aksit; Emily G Werth; Shahar Goeta; Lewis M Brown; Elizabeth S Olson; Jeffrey W Kysar; Anil K Lalwani
Journal:  J Proteome Res       Date:  2021-07-22       Impact factor: 4.466

10.  A Novel 3D-Printed Head Holder for Guinea Pig Ear Surgery.

Authors:  Chris Valentini; Young Jae Ryu; Betsy Szeto; Michelle Yu; Anil K Lalwani; Jeffrey Kysar
Journal:  Otol Neurotol       Date:  2021-10-01       Impact factor: 2.619

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