» Articles » PMID: 10215595

Resistance of Small Leucine-rich Repeat Proteoglycans to Proteolytic Degradation During Interleukin-1-stimulated Cartilage Catabolism

Overview
Journal Biochem J
Specialty Biochemistry
Date 1999 Apr 24
PMID 10215595
Citations 18
Authors
Affiliations
Soon will be listed here.
Abstract

A bovine nasal-cartilage culture system has been utilized to analyse the catabolic events occurring in response to interleukin-1beta over a 14-day period. An early event following the start of interleukin-1 treatment was the release of glycosaminoglycan into the culture medium. This release was accompanied by the appearance in the tissue, and shortly thereafter also in the culture media, of a globular domain (G1)-containing aggrecan degradation product generated by the action of aggrecanase. Link protein was also released from the cartilage with a similar timeframe to that of the G1 fragment, although there was no evidence of its proteolytic degradation. By comparison with aggrecan, the small leucine-rich repeat proteoglycans decorin, biglycan and lumican showed a resistance to both proteolytic cleavage and release throughout the culture period. In contrast, fibromodulin exhibited a marked decrease in size after day 4, presumably due to proteolytic modification, but the major degradation product was retained throughout the culture period. Also in contrast with the early changes in the components of the proteoglycan aggregate, type II collagen did not display signs of extensive degradation until much later in the culture period. Collagen degradation products compatible with collagenase action first appeared in the medium by day 10 and increased thereafter. These data demonstrate that the leucine-rich repeat proteoglycans are resistant to proteolytic action during interleukin-1-stimulated cartilage catabolism, compared with aggrecan. This resistance and continued interaction with the surface of the collagen fibrils may help to stabilize the collagen fibrillar network and protect it from extensive proteolytic attack during the early phases of cartilage degeneration.

Citing Articles

Glycosaminoglycans' Ability to Promote Wound Healing: From Native Living Macromolecules to Artificial Biomaterials.

Yang P, Lu Y, Gou W, Qin Y, Tan J, Luo G Adv Sci (Weinh). 2023; 11(9):e2305918.

PMID: 38072674 PMC: 10916610. DOI: 10.1002/advs.202305918.


The role of fibromodulin in inflammatory responses and diseases associated with inflammation.

Zhao F, Bai Y, Xiang X, Pang X Front Immunol. 2023; 14:1191787.

PMID: 37483637 PMC: 10360182. DOI: 10.3389/fimmu.2023.1191787.


Fibromodulin - A New Target of Osteoarthritis Management?.

Li C, Ha P, Jiang W, Haveles C, Zheng Z, Zou M Front Pharmacol. 2020; 10:1475.

PMID: 31920661 PMC: 6927287. DOI: 10.3389/fphar.2019.01475.


Expression and localization of the small proteoglycans decorin and biglycan in articular cartilage of Kashin-Beck disease and rats induced by T-2 toxin and selenium deficiency.

Wang M, Xue S, Fang Q, Zhang M, He Y, Zhang Y Glycoconj J. 2019; 36(6):451-459.

PMID: 31478096 DOI: 10.1007/s10719-019-09889-9.


Catabolism of Fibromodulin in Developmental Rudiment and Pathologic Articular Cartilage Demonstrates Novel Roles for MMP-13 and ADAMTS-4 in C-terminal Processing of SLRPs.

Shu C, Flannery C, Little C, Melrose J Int J Mol Sci. 2019; 20(3).

PMID: 30700002 PMC: 6386837. DOI: 10.3390/ijms20030579.


References
1.
Roughley P, White R, Poole A . Identification of a hyaluronic acid-binding protein that interferes with the preparation of high-buoyant-density proteoglycan aggregates from adult human articular cartilage. Biochem J. 1985; 231(1):129-38. PMC: 1152712. DOI: 10.1042/bj2310129. View

2.
Lohmander L, Hoerrner L, Lark M . Metalloproteinases, tissue inhibitor, and proteoglycan fragments in knee synovial fluid in human osteoarthritis. Arthritis Rheum. 1993; 36(2):181-9. DOI: 10.1002/art.1780360207. View

3.
Witter J, Roughley P, Webber C, Roberts N, Keystone E, Poole A . The immunologic detection and characterization of cartilage proteoglycan degradation products in synovial fluids of patients with arthritis. Arthritis Rheum. 1987; 30(5):519-29. DOI: 10.1002/art.1780300506. View

4.
Scott J . Proteoglycan-fibrillar collagen interactions. Biochem J. 1988; 252(2):313-23. PMC: 1149146. DOI: 10.1042/bj2520313. View

5.
Hedbom E, Heinegard D . Interaction of a 59-kDa connective tissue matrix protein with collagen I and collagen II. J Biol Chem. 1989; 264(12):6898-905. View