scholarly journals Proteolytic processing of membrane-type-1 matrix metalloproteinase is associated with gelatinase A activation at the cell surface

1998 ◽  
Vol 334 (2) ◽  
pp. 345-353 ◽  
Author(s):  
Kaisa LEHTI ◽  
Jouko LOHI ◽  
Heli VALTANEN ◽  
Jorma KESKI-OJA

Human fibroblasts and HT-1080 fibrosarcoma cells express membrane-type-1 matrix metalloproteinase (MT1-MMP), the cell surface activator of gelatinase A, in separate forms of 63 kDa, 60 kDa and in some cases 43 kDa. In the present work the interrelationships between MT1-MMP processing and gelatinase A activation were analysed using HT-1080 fibrosarcoma cells as a model. It was found that MT1-MMP was synthesized as a 63 kDa protein, which was constitutively processed to a 60 kDa active enzyme with N-terminal Tyr112, as shown by immunoprecipitation, immunoblotting and sequence analyses. Co-immunoprecipitation results indicated that only the active 60 kDa form of MT1-MMP bound gelatinase A at the cell surface. Both the activation of pro-MT1-MMP and the membrane binding of the tissue inhibitor of metalloproteinases type 2 (TIMP-2) and gelatinase A, and subsequent activation of gelatinase A, were inhibited by calcium ionophores. Although the active MT1-MMP was required for cell surface binding and activation of gelatinase A, it was inefficient in activating gelatinase A in fibroblasts or in control HT-1080 cells alone. Low expression levels of TIMP-2 and rapid synthesis of MT1-MMP were found to be critical for gelatinase A activation. In HT-1080 cells, MT1-MMP was further processed to an inactive, 43 kDa cell surface form when overexpressed, or when the cells were treated with PMA. Under these conditions, the activated gelatinase A was detected in the culture medium, in cell membrane extracts and in MT1-MMP-containing complexes. These results indicate that proteolytic processing (activation and degradation/inactivation) of MT1-MMP and MT1-MMP/TIMP-2 relationships at the cell surface are important regulatory levels in the control of gelatinolytic activity.

FEBS Letters ◽  
1996 ◽  
Vol 385 (3) ◽  
pp. 238-240 ◽  
Author(s):  
Hiroshi Sato ◽  
Takahisa Takino ◽  
Takeshi Kinoshita ◽  
Kazushi Imai ◽  
Yasunori Okada ◽  
...  

2002 ◽  
Vol 82 (12) ◽  
pp. 1673-1684 ◽  
Author(s):  
Stanley Zucker ◽  
Michelle Hymowitz ◽  
Cathleen E Conner ◽  
Elizabeth A DiYanni ◽  
Jian Cao

PLoS ONE ◽  
2015 ◽  
Vol 10 (7) ◽  
pp. e0132026 ◽  
Author(s):  
Fausto Rojas ◽  
Maria E. Hernandez ◽  
Milagros Silva ◽  
Lihua Li ◽  
Subbaya Subramanian ◽  
...  

2007 ◽  
Vol 124 (1) ◽  
pp. 11-22 ◽  
Author(s):  
Takashi Hasebe ◽  
Rebecca Hartman ◽  
Liezhen Fu ◽  
Tosikazu Amano ◽  
Yun-Bo Shi

1999 ◽  
Vol 23 (3) ◽  
pp. 237-242 ◽  
Author(s):  
Magnus Kjellman ◽  
Ulla Enberg ◽  
Anders Höög ◽  
Catharina Larsson ◽  
Mikael Holst ◽  
...  

2009 ◽  
Vol 30 (3) ◽  
pp. 259-274 ◽  
Author(s):  
X. Wang ◽  
M. J. Wilson ◽  
J. W. Slaton ◽  
A. A. Sinha ◽  
S. L. Ewing ◽  
...  

2018 ◽  
Author(s):  
◽  
Tara Marcink

Membrane type 1 matrix metalloproteinase (MT1-MMP) is essential to a myriad of extracellular activities including tumor cell migration and angiogenesis. At the cell surface, MT1-MMP is a major factor in the proteolysis of receptors, growth factors, and collagen. MT1-MMP extracellular domains bind the cell surface which can be influential in bringing these complexes together. This study uses new techniques to uncover the interactions between MT1-MMP and the cell surface. Described here is the development of techniques in protein and lipid preparations, NMR data acquisition, and structure determination by molecular dynamics simulations. Through these methods, the HPX domain was shown to bind nanodiscs by opposing tips of blade II and blade IV. The protruding part of these tips contain an EPGYPK sequence that are seen dipping into the membrane surface making contact with the lipid head groups. Blade IV membrane binding allows collagen to bind unhindered. Both blade II and blade IV membrane binding structures are shown to be favorable for homodimerization without disruption of the collagen binding site. The catalytic domain is shown to at least transiently bind membranes. This study then hypothesizes and discusses how these interactions impact both future peripheral protein membrane interaction studies and uncover similarities between the MMP family.


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