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Updated: Oct 18, 2025

A Mouse Fetal Skin Model of Scarless Wound Repair
Published on: January 16, 2015
Whence CRIPTO: The Reemergence of an Oncofetal Factor in 'Wounds' That Fail to Heal
David W Freeman1, Elisa Rodrigues Sousa2, Sofia Karkampouna2
1Department of Oncological Sciences, School of Medicine, University of Utah, Salt Lake City, UT 84113, USA.
Abstract:
There exists a set of factors termed oncofetal proteins that play key roles in ontogeny before they decline or disappear as the organism's tissues achieve homeostasis, only to then re-emerge in cancer. Although the unique therapeutic potential presented by such factors has been recognized for more than a century, their clinical utility has yet to be fully realized1. This review highlights the small signaling protein CRIPTO encoded by the tumor derived growth factor 1 (TDGF1/Tdgf1) gene, an oft cited oncofetal protein whose presence in the cancer literature as a tumor promoter, diagnostic marker and viable therapeutic target continues to grow. We touch lightly on features well established and well-reviewed since its discovery more than 30 years ago, including CRIPTO's early developmental roles and modulation of SMAD2/3 activation by a selected set of transforming growth factor β (TGF-β) family ligands. We predominantly focus instead on more recent and less well understood additions to the CRIPTO signaling repertoire, on its potential upstream regulators and on new conceptual ground for understanding its mode of action in the multicellular and often stressful contexts of neoplastic transformation and progression. We ask whence it re-emerges in cancer and where it 'hides' between the time of its fetal activity and its oncogenic reemergence. In this regard, we examine CRIPTO's restriction to rare cells in the adult, its potential for paracrine crosstalk, and its emerging role in inflammation and tissue regeneration-roles it may reprise in tumorigenesis, acting on subsets of tumor cells to foster cancer initiation and progression. We also consider critical gaps in knowledge and resources that stand between the recent, exciting momentum in the CRIPTO field and highly actionable CRIPTO manipulation for cancer therapy and beyond.
Insights
Oncofetal protein CRIPTO, encoded by the TDGF1 gene, plays roles in development and re-emerges in cancer. Understanding its signaling and regulation is key for cancer therapy development.
Area of Science:
- Molecular Biology
- Developmental Biology
- Cancer Biology
Background:
- Oncofetal proteins are key during development and re-emerge in cancer.
- CRIPTO (TDGF1) is an oncofetal protein with significant roles in tumorigenesis.
- Its therapeutic potential has been recognized but not fully realized.
Purpose of the Study:
- To review the established and emerging roles of CRIPTO in cancer.
- To explore CRIPTO's upstream regulators and signaling pathways.
- To identify knowledge gaps for actionable CRIPTO-targeted cancer therapies.
Main Methods:
- Literature review focusing on CRIPTO's developmental and oncogenic functions.
- Analysis of CRIPTO's modulation of SMAD2/3 activation.
- Examination of CRIPTO's role in inflammation and tissue regeneration.
Main Results:
- CRIPTO is involved in early development and its re-emergence in cancer is linked to its signaling repertoire.
- CRIPTO's upstream regulators and its action in neoplastic transformation are under investigation.
- Emerging roles in inflammation and tissue regeneration suggest potential mechanisms for tumorigenesis.
Conclusions:
- CRIPTO is a promising target for cancer therapy, but further research is needed.
- Understanding CRIPTO's regulation and 'hiding' mechanisms is crucial.
- Addressing knowledge gaps will enable effective CRIPTO manipulation for cancer treatment.
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