Effects of surface profile on porcine dural mechanical properties

Cerebrospinal fluid leakage through the spinal meninges is difficult to diagnose and treat. Moreover, its underlying mechanism remains unknown. Considering that the dura mater is structurally the strongest and outermost membrane among the three-layered meninges, we hypothesized that a dural mechanic...

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Veröffentlicht in:Clinical biomechanics (Bristol) 2024-02, Vol.112, p.106189-106189, Article 106189
Hauptverfasser: Tamura, Atsutaka, Sakaue, Chikano
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Sprache:eng
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Zusammenfassung:Cerebrospinal fluid leakage through the spinal meninges is difficult to diagnose and treat. Moreover, its underlying mechanism remains unknown. Considering that the dura mater is structurally the strongest and outermost membrane among the three-layered meninges, we hypothesized that a dural mechanical tear would trigger spontaneous cerebrospinal fluid leakage, especially when a traumatic loading event is involved. Thus, accurate biomechanical properties of the dura mater are indispensable for improving computational models, which aid in predicting blunt impact injuries and creating artificial substitutes for transplantation and surgical training. We characterized the surface profile of the spinal dura and its mechanical properties (Young's moduli) with a distinction of its inherent anatomical sites (i.e., the cervical and lumbar regions as well as the dorsal and ventral sides of the spinal cord). Although the obtained Young's moduli exhibited no considerable difference between the aforementioned anatomical sites, our results suggested that the wrinkles structurally formed along the longitudinal direction would relieve stress concentration on the dural surface under in vivo and supraphysiological conditions, enabling mechanical protection of the dural tissue from a blunt impact force that was externally applied to the spine. This study provides fundamental data that can be used for accurately predicting cerebrospinal fluid leakage due to blunt impact trauma. •Structural wrinkles were longitudinally formed on the spinal dura under in vitro conditions.•Young's moduli of the cervical and dorsal regions were relatively compliant in the spinal dura.•Densely packed wrinkles in the lumbar and ventral regions can relieve damage from overstretching.
ISSN:0268-0033
1879-1271
DOI:10.1016/j.clinbiomech.2024.106189