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Updated: Jul 18, 2026

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
The Wnt signaling antagonist Kremen1 is required for development of thymic architecture
Masako Osada1, Emi Ito, Hector A Fermin
1Department of Biology, The City College of the City University of New York, RCMI Center for the Study of the Cellular and Molecular Basis of Development, 138th Street and Convent Avenue, New York, NY 10031, USA.
Abstract:
Wnt signaling has been reported to regulate thymocyte proliferation and selection at several stages during T cell ontogeny, as well as the expression of FoxN1 in thymic epithelial cells (TECs). Kremen1 (Krm1) is a negative regulator of the canonical Wnt signaling pathway, and functions together with the secreted Wnt inhibitor Dickkopf (Dkk) by competing for the lipoprotein receptor-related protein (LRP)-6 co-receptor for Wnts. Here krm1 knockout mice were used to examine krm1 expression in the thymus and its function in thymocyte and TEC development. Krm1 expression was detected in both cortical and medullary TEC subsets, as well as in immature thymocyte subsets, beginning at the CD25+CD44+ (DN2) stage and continuing until the CD4+CD8+(DP) stage. Neonatal mice show elevated expression of krm1 in all TEC subsets. krm1(-/-) mice exhibit a severe defect in thymic cortical architecture, including large epithelial free regions. Much of the epithelial component remains at an immature Keratin 5+ (K5) Keratin 8(+)(K8) stage, with a loss of defined cortical and medullary regions. A TOPFlash assay revealed a 2-fold increase in canonical Wnt signaling in TEC lines derived from krm1(-/-) mice, when compared with krm1(+/+) derived TEC lines. Fluorescence activated cell sorting (FACS) analysis of dissociated thymus revealed a reduced frequency of both cortical (BP1(+)EpCAM(+)) and medullary (UEA-1(+) EpCAM(hi)) epithelial subsets, within the krm1(-/-) thymus. Surprisingly, no change in thymus size, total thymocyte number or the frequency of thymocyte subsets was detected in krm1(-/-) mice. However, our data suggest that a loss of Krm1 leads to a severe defect in thymic architecture. Taken together, this study revealed a new role for Krm1 in proper development of thymic epithelium.
Insights
Kremen1 (Krm1) deficiency severely disrupts thymic epithelial architecture, impacting thymic development. Loss of Krm1 increases Wnt signaling, leading to abnormal thymic structures essential for T cell maturation.
Area of Science:
- Immunology
- Developmental Biology
- Cell Biology
Background:
- Wnt signaling regulates T cell development and thymic epithelial cell (TEC) function.
- Kremen1 (Krm1) is a negative regulator of canonical Wnt signaling, interacting with LRP-6.
- The role of Krm1 in thymic development is not well understood.
Purpose of the Study:
- To investigate Krm1 expression in the thymus.
- To determine the function of Krm1 in thymocyte and TEC development.
- To elucidate Krm1's role in thymic architecture and Wnt signaling.
Main Methods:
- Krm1 knockout mouse model used.
- Krm1 expression analyzed in TECs and thymocytes via flow cytometry.
- Thymic architecture and epithelial subsets assessed using histology and FACS.
- Wnt signaling activity measured by TOPFlash assay in TEC lines.
Main Results:
- Krm1 is expressed in cortical and medullary TECs and immature thymocytes.
- Krm1 knockout mice show severe defects in thymic cortical architecture and loss of defined regions.
- TEC lines from Krm1 knockout mice exhibit increased canonical Wnt signaling.
- Reduced frequencies of cortical and medullary epithelial subsets observed in Krm1 knockout thymus.
Conclusions:
- Krm1 plays a crucial role in maintaining proper thymic epithelial architecture.
- Loss of Krm1 leads to increased Wnt signaling and abnormal thymic development.
- This study reveals a novel function for Krm1 in the development of thymic epithelium.
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