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Pre-clinical Evaluation of Tyrosine Kinase Inhibitors for Treatment of Acute Leukemia
Published on: September 19, 2013
Identification and characterization of cellular targets for tyrosine protein kinases
Abstract:
Protein kinases associated with the transforming proteins of a number of retroviruses are specific for tyrosine. Several proteins in cells transformed by these viruses are phosphorylated at tyrosine. We have now identified three unrelated abundant nonphosphorylated cellular proteins of 46,000, 39,000 and 28,000 daltons in chick embryo cells, which are the unphosphorylated forms of phosphotyrosine-containing proteins and thus are substrates for tyrosine protein kinases. By two-dimensional gel analysis, we have found that the 46,000-dalton protein exists in two unphosphorylated forms of which the more acidic is a minor species. This latter form is phosphorylated, chiefly at serine, in both normal and transformed cells, generating a yet more acidic species. In transformed but not normal cells, the major form is phosphorylated at tyrosine and serine, yielding a fourth isoelectric variant. The 46,000-dalton unphosphorylated protein has been partially purified, and antiserum to it recognizes all four isoelectric variants of the protein. The 39,000-dalton protein has two unphosphorylated forms of which the more acidic is a minor species. The major form is phosphorylated at tyrosine and serine in transformed cells only. The 39,000-dalton unphosphorylated protein has been partially purified, and antiserum raised to it recognizes all three isoelectric variants. The 28,000-dalton protein has a single phosphorylated form which contains serine in normal cells, but both serine and tyrosine in transformed cells.
Insights
Researchers identified three abundant cellular proteins (46, 40, and 28 kDa) that are unphosphorylated substrates for tyrosine protein kinases. These proteins become phosphorylated at tyrosine and serine residues in cells transformed by retroviruses, indicating their role in viral transformation.
Area of Science:
- Molecular Biology
- Cellular Biology
- Biochemistry
Background:
- Retroviruses utilize transforming proteins with associated tyrosine-specific protein kinases.
- Viral transformation leads to increased tyrosine phosphorylation in cellular proteins.
Purpose of the Study:
- To identify and characterize unphosphorylated cellular proteins that serve as substrates for tyrosine protein kinases.
- To investigate the phosphorylation patterns of these substrates in normal versus virus-transformed cells.
Main Methods:
- Two-dimensional gel electrophoresis to analyze protein isoforms.
- Partial purification of identified proteins.
- Antiserum generation for protein variant recognition.
Main Results:
- Identified three abundant unphosphorylated cellular proteins (46, 39, and 28 kDa) as substrates for tyrosine protein kinases.
- Observed distinct phosphorylation patterns (serine and tyrosine) of these proteins in transformed cells compared to normal cells.
- Characterized multiple isoelectric variants for the 46 and 39 kDa proteins based on phosphorylation status.
Conclusions:
- These identified proteins are key substrates involved in the cellular response to viral transformation.
- Differential phosphorylation at tyrosine and serine residues in these proteins is a hallmark of retroviral transformation.
- Further investigation into these substrates could reveal novel therapeutic targets for viral-associated cancers.
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