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Updated: May 27, 2026

Assessment of Resistance to Tyrosine Kinase Inhibitors by an Interrogation of Signal Transduction Pathways by Antibody Arrays
Published on: September 19, 2018
Tyrosine isomers mediate the classical phenomenon of concomitant tumor resistance
Raúl A Ruggiero1, Juan Bruzzo, Paula Chiarella
1División Medicina Experimental, Academia Nacional de Medicina, Buenos Aires, Argentina. ruloruggiero@yahoo.com.ar
Abstract:
Concomitant tumor resistance (CR) is a phenomenon originally described in 1906 in which a tumor-bearing host is resistant to the growth of secondary tumor implants and metastasis. Although recent studies have indicated that T-cell-dependent processes mediate CR in hosts bearing immunogenic small tumors, manifestations of CR induced by immunogenic and nonimmunogenic large tumors have been associated with an elusive serum factor. In this study, we identify this serum factor as tyrosine in its meta and ortho isoforms. In three different murine models of cancer that generate CR, both meta-tyrosine and ortho-tyrosine inhibited tumor growth. In addition, we showed that both isoforms of tyrosine blocked metastasis in a fourth model that does not generate CR but is sensitive to CR induced by other tumors. Mechanistic studies showed that the antitumor effects of the tyrosine isoforms were mediated, in part, by early inhibition of mitogen-activated protein/extracellular signal-regulated kinase pathway and inactivation of STAT3, potentially driving tumor cells into a state of dormancy. By revealing a molecular basis for the classical phenomenon of CR, our findings may stimulate new generalized approaches to limit the development of metastases that arise after resection of primary tumors, an issue of pivotal importance to oncologists and their patients.
Insights
Researchers identified tyrosine (meta and ortho isoforms) as a serum factor mediating concomitant tumor resistance (CR). This finding offers new strategies to prevent metastasis after primary tumor removal.
Area of Science:
- Oncology
- Immunology
- Biochemistry
Background:
- Concomitant tumor resistance (CR) describes host resistance to secondary tumors and metastasis.
- While T-cells mediate CR in small tumors, large tumors involve an unknown serum factor.
Purpose of the Study:
- To identify the serum factor responsible for CR induced by large tumors.
- To investigate the therapeutic potential of identified factors in blocking tumor growth and metastasis.
Main Methods:
- Utilized three murine cancer models exhibiting CR.
- Administered meta-tyrosine and ortho-tyrosine to assess tumor inhibition and metastasis blocking.
- Conducted mechanistic studies on signaling pathways affected by tyrosine isoforms.
Main Results:
- Both meta-tyrosine and ortho-tyrosine inhibited tumor growth in CR-generating models.
- Tyrosine isoforms blocked metastasis in a non-CR model sensitive to CR induction.
- Tyrosine isoforms inhibited the MAPK/ERK pathway and STAT3, potentially inducing tumor dormancy.
Conclusions:
- Tyrosine (meta and ortho) is identified as the serum factor mediating CR.
- Tyrosine isoforms demonstrate potential for limiting post-surgical metastasis.
- Findings provide a molecular basis for CR and suggest new anti-metastasis strategies.
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