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18 kDa protein tyrosine phosphatase in the ocular lens
I O Umeda1, Y Kashiwa, H Nishigori
1Faculty of Pharmaceutical Sciences, Teikyo University, Suwarashi 1091-1, Sagamiko, Tsukui, Kanagawa 199-0195, Japan
Abstract:
Protein tyrosyl phosphorylation and dephosphorylation play essential roles in regulating cellular events such as proliferation and differentiation, and their involvement in the lens development and transparency is also suggested. The level of tyrosine phosphorylation in a given protein is regulated by the opposing actions of protein-tyrosine kinases (Tyr kinases) and protein-tyrosine phosphatases (TyrPases). Recent studies have revealed that some Tyr kinases, such as platelet-derived growth factor receptor and fibroblast growth factor receptor, are present in the lens, however, little is known about TyrPases in the lens. In this study, we found a 18 kDa protein tyrosine phosphatase (18 kDa TyrPase) predominantly present in the ocular lens of various animals. We purified the phosphatase from the lens of chick embryo and characterized its activity.Phosphatase activity was determined in chick embryo, mouse, rabbit and bovine lenses using p -nitrophenyl phosphate (p NPP) as substrate. All lenses examined dephosphorylated p NPP under acidic conditions, and a large portion of the activity resided in a low molecular weight protein, ca. 18 kDa, following high-resolution gel permeation column chromatography. The brain and liver showed high dephosphorylation activities, but most of their activity was present in high molecular weight fractions, unlike that in the lens. The 18 kDa phosphatase was purified from the lens of 17 day old chick embryos to near-homogeneity with two-step rapid chromatography. This phosphatase showed strict substrate specificity for phosphotyrosine and phosphotyrosyl peptides, suggesting that it was a kind of protein tyrosine phosphatases (TyrPases). Several known inhibitors of TyrPases, such as SH blockers, vanadate and phenylarsine oxide, strongly inhibited the enzyme activity. The molecular weight, substrate specificity, and responses to various inhibitors and activators coincide well with those reported for the low molecular weight protein tyrosine phosphatase (LMW-TyrPase), belonging to the TyrPase superfamily. These results suggest that the 18 kDa phosphatase found in the lens is a LMW-TyrPase. The 18 kDa TyrPase is the predominant phosphatase in the ocular lens. It may be involved in regulation of lens cell proliferation, differentiation and/or lens transparency.
Insights
Researchers identified an 18 kDa protein tyrosine phosphatase (18 kDa TyrPase) as the primary phosphatase in ocular lenses. This enzyme is crucial for regulating lens cell proliferation, differentiation, and transparency.
Area of Science:
- Biochemistry
- Cell Biology
- Ophthalmology
Background:
- Protein tyrosyl phosphorylation/dephosphorylation regulates key cellular events like proliferation and differentiation.
- Protein-tyrosine kinases (Tyr kinases) and phosphatases (TyrPases) control tyrosine phosphorylation levels.
- While Tyr kinases are known in the lens, TyrPases remain largely uncharacterized.
Purpose of the Study:
- To identify and characterize protein tyrosine phosphatases in the ocular lens.
- To investigate the role of a specific low molecular weight phosphatase in lens function.
Main Methods:
- Assayed phosphatase activity using p-nitrophenyl phosphate (p NPP) across various animal lenses.
- Purified an 18 kDa phosphatase from chick embryo lenses using chromatography.
- Characterized enzyme activity, substrate specificity, and inhibitor responses.
Main Results:
- An 18 kDa protein tyrosine phosphatase (18 kDa TyrPase) was predominantly found in ocular lenses.
- This enzyme exhibited high substrate specificity for phosphotyrosine and phosphotyrosyl peptides.
- Its properties align with the low molecular weight protein tyrosine phosphatase (LMW-TyrPase) superfamily.
Conclusions:
- The 18 kDa TyrPase is the predominant phosphatase in the ocular lens.
- This enzyme is likely involved in regulating lens cell proliferation, differentiation, and transparency.