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

Journal of Anatomy
|April 13, 2007
PubMed

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.

Related Concept Videos

Fibril-associated Collagen01:11

Fibril-associated Collagen

Fibril-associated collagens are a type of collagens present in the extracellular matrix with interrupted triple helices or FACIT (Fibril-associated collagens interrupted triple-helices). FACIT help connect and attach the collagen fibrils with each other as well as with other proteins of the extracellular matrix.
For example, the type II collagen fibrils in cartilage have covalently bound type IX fibril-associated collagens at regular intervals. Other types of fibril-associated collagens are...
Type IV Collagen of Basal Lamina01:05

Type IV Collagen of Basal Lamina

Type IV collagen is a 400 nm long, network-forming collagen that acts as a barrier between the epithelial and endothelial cells. Type IV collagen  forms the backbone of the basement membrane by scaffolding with laminin, entactin, proteoglycans, and fibronectin. Apart from rendering structural support to the basement membrane, it also helps entail signaling potentials necessary for both pathological and physiological functions.
A type IV collagen molecule has six alpha chains which can exist in...
Degenerative Disc Disease I: Introduction01:27

Degenerative Disc Disease I: Introduction

Degenerative disc disease is a chronic condition in which intervertebral discs gradually lose structure and function. It is not infectious or autoimmune; rather, it results from age-related biochemical and mechanical changes, influenced by genetic, metabolic, and environmental factors.Structure and Function of DiscsThe spine contains 23 intervertebral discs that absorb load, distribute forces, maintain spacing, and allow flexibility. Each disc consists of a nucleus pulposus, a gel-like core...
Collagens are the Major Structural Proteins of ECM01:13

Collagens are the Major Structural Proteins of ECM

Three main types of fibers are secreted by fibroblasts: collagen fibers, elastic fibers, and reticular fibers. Collagen fiber is made from fibrous protein subunits linked together to form a long, straight fiber. Collagen fibers, while flexible, have great tensile strength, resist stretching, and give ligaments and tendons their characteristic resilience and strength. These fibers hold connective tissues together, even during the body's movement.
Connective tissue proper includes loose...
Elastin is Responsible for Tissue Elasticity01:12

Elastin is Responsible for Tissue Elasticity

Elastic fiber contains the protein elastin along with lesser amounts of other proteins and glycoproteins. The main property of elastin is that it will return to its original shape after being stretched or compressed. Elastic fibers are prominent in elastic tissues found in skin and the elastic ligaments of the vertebral column.
Ligaments and tendons are made of dense regular connective tissue, but in ligaments not all fibers are parallel. Dense regular elastic tissue contains elastin fibers and...
Connective Tissue Fibers and Ground Substance01:17

Connective Tissue Fibers and Ground Substance

One of the significant functions of connective tissue is connecting tissues and organs. Unlike epithelial tissue that is composed of cells closely packed with little or no extracellular space in between, connective tissue cells are dispersed in a matrix. The matrix usually includes a large amount of extracellular material produced by the connective tissue cells that are embedded within it. It plays a significant role in the functioning of this tissue. The major component of the matrix is a...