Characterization of a metalloproteinase: A late stage specific gelatinase activity in the sea urchin embryo

Author(s):  
John J. Robinson
2000 ◽  
Vol 78 (4) ◽  
pp. 455-462 ◽  
Author(s):  
Justin Flood ◽  
Janice Mayne ◽  
John J Robinson

We have identified and partially characterized several gelatinase activities associated with the sea urchin extraembryonic matrix, the hyaline layer. A previously identified 41-kDa collagenase/gelatinase activity was generally not found to be associated with isolated hyaline layers but was dissociated from the surface of 1-h-old embryos in the absence of Ca2+ and Mg2+. While hyaline layers, freshly prepared from 1-h-old embryos, were devoid of any associated gelatinase activities, upon storage at 4°C for 4 days, a number of gelatin-cleavage activities appeared. Comparative analysis of these activities with the 41-kDa collagenase/gelatinase revealed that all species were inhibited by ethylenediamine tetraacetic acid but were refractory to inhibition with the serine protease inhibitors, phenylmethyl sulfonyl fluoride and benzamidine. In contrast, the largely Zn2+ specific chelator 1,10-phenanthroline had markedly different effects on the gelatinase activities. While several of the storage-induced, hyaline-layer-associated gelatinase activities were inhibited, the 41-kDa collagenase/gelatinase was refractory to inhibition as was a second gelatinase species with an apparent molecular mass of 45 kDa. We also examined the effects of a series of divalent metal ions on the gelatin-cleavage activities. In both qualitative and quantitative assays, Ca2+ was the most effective activator while Mn2+, Cu2+, Cd2+, and Zn2+ were all inhibitory. In contrast, Mg2+ had a minimal inhibitory effect on storage-induced gelatinase activities but significantly inhibited the 41-kDa collagenase/gelatinase. These results identify several distinct gelatin-cleavage activities associated with the sea urchin extraembryonic hyaline layer and point to diversity in the biochemical nature of these species.Key words: gelatinase, sea urchin, extracellular matrix.


1989 ◽  
Vol 136 (1) ◽  
pp. 75-86 ◽  
Author(s):  
Colin R. Tamboline ◽  
Robert D. Burke
Keyword(s):  

1996 ◽  
Vol 176 (1) ◽  
pp. 95-107 ◽  
Author(s):  
David J. Kozlowski ◽  
Michael L. Gagnon ◽  
Jeffrey K. Marchant ◽  
Susan D. Reynolds ◽  
Lynne M. Angerer ◽  
...  

1995 ◽  
Vol 171 (1) ◽  
pp. 195-211 ◽  
Author(s):  
Zheng Wei ◽  
Lynne M. Angerer ◽  
Michael L. Gagnon ◽  
Robert C. Angerer
Keyword(s):  

1996 ◽  
Vol 74 (2) ◽  
pp. 211-218 ◽  
Author(s):  
Janice Mayne ◽  
John J. Robinson

Using substrate gel zymography, the sea urchin embryo was found to express a dynamic pattern of gelatinase activities with a 41 kDa species persisting throughout the course of embryonic development. We have purified to near homogeneity the 41 kDa gelatinase in the sea urchin egg. In both qualitative and quantitative assays, the 41 kDa gelatinase activity was inhibited by ethylenediaminetetracetic acid but not the serine protease inhibitor, phenylmethylsulfonylfluoride, or the chelating agent, 1,10-phenanthroline. Activity could be restored to the inactivated gelatinase by each of several divalent cations: Ca2+ > Mn2+ > Mg2+ > Cu2+. Cadmium and Zn2+ were largely ineffective at reconstituting the inactivated enzyme. In metal ion binding assays, the relative apparent affinities of the metal ions for binding to the gelatinase were determined to be Zn2+ ≥ Cd2+ ≥ Ca2+ > Mn2+ > Mg2+ > Cu2+. While the gelatinase is clearly a metalloproteinase, metal ion binding per se is not sufficient for activity. The 41 kDa gelatinase exhibited selective substrate utilization, being most active with gelatin, substantially less active with casein, and inactive towards bovine haemoglobin and bovine serum albumin as substrates. The substrate specificity and metal ion requirements suggest that this species is a member of the matrix metalloproteinase class of extracellular matrix remodelling enzymes.Key words: gelatinase, metalloproteinase, sea urchin.


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