| Literature DB >> 28270200 |
Robert W Koch1, Hanif M Ladak2,3,4,5, Mai Elfarnawany3, Sumit K Agrawal2,3,5,6.
Abstract
BACKGROUND: Cochlear Duct Length (CDL) has been an important measure for the development and advancement of cochlear implants. Emerging literature has shown CDL can be used in preoperative settings to select the proper sized electrode and develop customized frequency maps. In order to improve post-operative outcomes, and develop new electrode technologies, methods of measuring CDL must be validated to allow usage in the clinic.Entities:
Keywords: Cochlear duct length; Cochlear implants; Computed tomography; Histology; Inner Ear; organ of Corti
Mesh:
Year: 2017 PMID: 28270200 PMCID: PMC5341452 DOI: 10.1186/s40463-017-0194-2
Source DB: PubMed Journal: J Otolaryngol Head Neck Surg ISSN: 1916-0208
Fig. 1Timeline of studies involving measuring the entire CDL of the cochlea organized by method of measurement
Fig. 2Direct method of measuring CDL. Length of the OC is measured along the dashed white and black line from a histologic section using a micrometer. Adapted with permission from Stakhovskaya et al., 2007
Comparing CDL measurements made by multiple studies
| Authors | Year | Location of CDL | Modality | Method | # of Samples | Mean (SD) | Range of Values |
|---|---|---|---|---|---|---|---|
| Retzius | 1884 | OC | Histology | Direct | 5 | 33.5 (0.8) | 32 – 34 |
| Hardy | 1938 | OC | Histology | Indirect | 68 | 31.52 (2.3) | 25.26 – 35.45 |
| Bredberg | 1968 | OC | Histology | Direct | 35 | 34.0 (1.3) | 30.3 – 37.6 |
| Walby | 1985 | OC | Histology | Indirect | 20 | 32.6 (2.1) | 30.1 – 36.4 |
| Ulehlova et al. | 1987 | OC | Histology | Direct | 50 | 34.2 (2.9) | 28.0 – 40.1 |
| Pollak et al. | 1987 | OC | Histology | Indirect | 9 | 28.4 (3.4) | 24.0 – 33.5 |
| Wright et al. | 1987 | OC | Histology | Direct | 14 | 32.9 (2.6) | 28.8 – 36.6 |
| Takagi & Sando | 1989 | OC | Histology | 3D reconstruction | 1 | 36.4 (n/a) | - |
| Sato et al. | 1991 | OC | Histology | 3D reconstruction | 18 | 34.73 (2.9) | 29.7 – 38.9 |
| Kawano et al. | 1996 | OC | Histology | 3D reconstruction | 8 | 35.58 (1.4) | 34.2 – 37.9 |
| LW | Histology | 3D reconstruction | 8 | 40.81 (2.0) | 37.93 – 43.81 | ||
| Ketten et al. | 1998 | OCa | In vivo CT | Spiral coefficients | 20 | 33.01 (2.3) | 29.07 – 37.45 |
| Skinner et al. | 2002 | OCa | In vivo CT | Spiral coefficients | 26 | 34.62 (1.2) | 32.94 – 36.57 |
| Sridhar et al. | 2006 | OC | Histology | Direct | 7 | 33.31 (2.4) | 30.5 – 36.87 |
| Stakhovskaya et al. | 2007 | OC | Histology | Direct | 9 | 33.13 (2.1) | 30.5 – 36.87 |
| Erixon et al. | 2009 | LW | Plastic casts | Indirect | 58 | 42.0 (2.0) | 38.6 – 45.6 |
| Lee et al. | 2010 | OC | Histology | Indirect | 27 | 30.8 (2.6) | 25.5 – 35.1 |
| Erixon & Rask-Anderson | 2013 | LW | Plastic casts | Indirect | 51 | 41.2 (1.9) | 37.6 – 44.9 |
| Wurfel et al. | 2014 | LW | In vivo CBCT | 3D reconstruction | 436 | 37.9 (2.0) | 30.8 – 43.2 |
| Meng et al. | 2016 | LW | In vivo CT | 3D reconstruction | 310 | 35.8 (2.0) | 30.7 – 42.2 |
aMeasured LW and interpolated into the OC location
Fig. 3Indirect method of 2D graphical reconstruction. By taking histologic slices parallel to the cochlear axis and projecting points from the histologic sections down onto a template (as seen above), the CDL was calculated. Adapted with permission from Hardy., 1938
Fig. 4Method of 3D reconstruction first explored by Takagi for the human cochlea. Points in figures correspond to points placed on a histologic section, and recreated into a 3D shape using a computer, as shown by the varying views in panels a, b, c, and d. Adapted with permission from Kawano et al., 1996
Fig. 5By measuring spiral coefficients such as the ones above, the CDL can be calculated using typical spiral equations. A value is defined as the largest distance from the round window to the contralateral wall, B value as the distance perpendicular to ‘A’ and as the insertion angle
Comparing Methods used to Calculate CDL in Various Studies
| Method | Years | Where CDL is Being Measured | Range of Values | Mean Length | # of Samples | ||||
|---|---|---|---|---|---|---|---|---|---|
| OC | LW | OC | LW | OC | LW | OC | LW | ||
| Direct | 1884 – 2007 | 6 | 0 | 28.0 – 40.1 | - | 33.79 | - | 100 | |
| Indirect | 1921 – 2013 | 4 | 2 | 24.0 – 36.4 | 37.6 – 45.6 | 31.31 | 41.6 | 124 | 109 |
| 3D reconstruction | 1989 – 2014 | 3 | 3 | 29.7 – 38.9 | 30.7 – 43.2 | 35.04 | 37.07 | 27 | 754 |
| Spiral Coefficients | 1998 – 2016 | 2a | 1 | 29.07 – 37.45 | 30.76 – 37.41 | 33.92 | 37.41 | 46 | 148 |
aCalculated at centroid of fluid filled space in CT image to represent OC measurements
Means calculated by multiplying mean length by the number of samples, summating this value from each study using the selected method, and dividing by total number of samples analyzed with this method
Fig. 6Visualization for how the 2D reconstruction may misinterpret the diameter on the cochlea. If the cochlea is cut obliquely, the diameters of the turns appear smaller than the actual cochlea and may lead to underestimation of the CDL. In red is the diameter of an oblique cut while black represents an ideal cut