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Updated: Jul 15, 2026

Optical Sectioning and Visualization of the Intervertebral Disc from Embryonic Development to Degeneration
Published on: July 8, 2021
Microfibrils, elastin fibres and collagen fibres in the human intervertebral disc and bovine tail disc
Jing Yu1, Uday Tirlapur, Jeremy Fairbank
1Department of Physiology, Anatomy and Genetics, University of Oxford, UK. jing.yu@physiol.ox.ac.uk
Abstract:
The distribution of microfibrils was studied immunohistochemically in intervertebral discs taken from young normal human surgical cases and from the bovine tail. Co-localization of microfibrils and elastin fibres was examined by dual immunostaining of fibrillin-1 and elastin. Collagen fibre network orientation was studied by using polarized filters. A similar microfibrillar network was seen in both bovine and human discs with network organization being completely different from region to region. In the outer annulus fibrosus (OAF), abundant microfibrils organized in bundles were mainly distributed in the interterritorial matrix. In addition, the microfibril bundles were orientated parallel to each other and co-localized highly with elastin fibres. Within each lamella, co-localized microfibrils and elastin fibres were aligned in the same direction as the collagen fibres. In the interlamellar space, a dense co-localized network, staining for both microfibrils and elastin fibres, was apparent; immunostaining for both molecules was noticeably stronger than within lamellae. In the inner annulus fibrosus, the microfibrils were predominantly visible as a filamentous mesh network, both in the interterritorial matrix and also around the cells. The microfibrils in this region co-localized with elastin fibres far less than in the OAF. In nucleus pulposus, filamentous microfibrils were organized mainly around the cells where elastin fibres were hardly detected. By contrast, sparse elastin fibres, with a few of microfibrils, were visible in the interterritorial matrix. The results of this study suggest the microfibrillar network of the annulus may play a mechanical role while that around the cells of the nucleus may be more involved in regulating cell function.
Insights
Microfibrils in human and bovine intervertebral discs form distinct networks. These microfibril networks, especially in the outer annulus fibrosus, appear to have mechanical roles, while those in the nucleus pulposus may regulate cell function.
Area of Science:
- Biochemistry
- Cell Biology
- Connective Tissue Research
Background:
- Microfibrils are essential components of the extracellular matrix.
- Their specific distribution and function within the intervertebral disc (IVD) remain incompletely understood.
- Understanding IVD structure is crucial for addressing back pain and disc degeneration.
Purpose of the Study:
- To investigate the distribution and co-localization of microfibrils with elastin in human and bovine intervertebral discs.
- To elucidate the regional differences in microfibril organization within the annulus fibrosus and nucleus pulposus.
- To explore the potential mechanical and cellular roles of microfibrils in different IVD regions.
Main Methods:
- Immunohistochemistry was used to detect microfibrils (fibrillin-1) and elastin.
- Dual immunostaining examined the co-localization of microfibrils and elastin.
- Polarized light microscopy analyzed collagen fiber orientation.
Main Results:
- Similar microfibrillar networks were observed in both human and bovine discs, with regional variations in organization.
- In the outer annulus fibrosus, abundant microfibrils co-localized highly with elastin and aligned with collagen fibers.
- In the nucleus pulposus, microfibrils were primarily associated with cells, with less co-localization with elastin.
Conclusions:
- The microfibrillar network in the annulus fibrosus likely plays a significant mechanical role.
- Microfibrils surrounding nucleus pulposus cells may be involved in regulating cellular functions.
- Distinct regional distributions suggest specialized roles for microfibrils within the intervertebral disc.
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