PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
January 23, 2026Journal of Functional Biomaterials2 citationsOpen Access

Fibrous Biomaterial Scaffold for Tympanic Membrane Repair: Microarchitectural Engineering and Structure Function Performance

View Full Paper
LJLea JiangCCChokri CherifMWMichael Wöltje

Key Points

  • The aim is to explore fibrous biomaterial scaffolds designed for tympanic membrane repair and their structural properties.
  • Overview of various fabrication methods such as electrospinning and additive manufacturing.
  • Evaluation of scaffold performance through mechanical testing and in vitro assays.
  • Examination of fibrous scaffolds' microarchitecture and interaction with cells.
  • Fibrous scaffolds can closely mimic the structural and mechanical properties of native tympanic membrane.
  • Compatible polymers allow for customization of stiffness and degradation rates to suit clinical needs.
  • Testing shows promising biocompatibility and performance of these scaffolds in TM repair.

Abstract

Tympanic membrane (TM) perforations, arising from infections, injuries, or chronic otitis media, remain a frequent clinical finding and can lead to hearing problems when the tissue does not regenerate adequately. Although autologous grafts are still the standard option for repairing persistent defects, they come with well-known limitations. Beyond the need for additional harvesting procedures, these grafts rarely reproduce the intricate, fibrous layering of the native TM, which can compromise sound transmission after healing. In search of alternatives, fibre-based scaffolds have attracted considerable interest. The primary advantage of this material is the level of structural control it affords. The fibre orientation, porosity, and overall microarchitecture can be adjusted to replicate the organisation and mechanical behaviour of the natural membrane. A range of biocompatible polymers—among them silk fibroin, poly(ε-caprolactone), poly(lactic acid), and poly(vinyl alcohol) and their composites—provide options for tuning stiffness, degradation rates, and interactions with cells, making them suitable building blocks for TM repair constructs. This review provides a comprehensive overview of contemporary fabrication methodologies, namely electrospinning, additive manufacturing, melt electrowriting, and hybrid strategies. In addition, it offers a detailed discussion of the evaluation procedures employed for these scaffolds and discusses how scaffold structure affects later performance. Mechanical testing, microstructural imaging, and in vitro biocompatibility assays help to determine how closely a construct can approach the performance of the native tissue. Bringing these elements together may support the gradual translation of fibre-based TM scaffolds into clinical practice.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Jiang et al. (2026) studied this question.

synapsesocial.com/papers/69731047c8125b09b0d1ff5fhttps://doi.org/10.3390/jfb17010053
Ask AI
Helpful
Bookmark
Share
View Full Paper