Lamprey <i>FOXN1</i> rescues the block of thymic epithelial cell development in the mouse <i>Foxn1</i> -deficient thymic rudiment

R Ryo Morimoto (Max Planck Institute of Immunobiology and Epigenetics) G Gaoqun Zhang O Oliver S. Thomas M Margaret F. Docker (Department of Biological Sciences, University of Manitoba) J Jonah L. Yick (Inland Fisheries Service) F Floriaan Devloo-Delva (Australian National Fish Collection, National Collections and Marine Infrastructure, Commonwealth Scientific and Industrial Research Organization) J Jeremy Swann (Max Planck Institute of Immunobiology and Epigenetics) D Dagmar Diekhoff (Max Planck Institute of Immunobiology and Epigenetics) T Thomas Boehm

Abstract

All vertebrate adaptive immune systems exhibit distinct lymphocyte lineages. In jawless vertebrates, such as lampreys, T-like cells are thought to develop in lympho-epithelial structures at the tips of gill filaments, termed thymoids. However, it is unclear whether thymoids are functionally equivalent to the thymus of jawed vertebrates. Indeed, because the structural modules that are somatically assembled to form the antigen receptors of jawless and jawed vertebrates differ, development and selection of T cells may be governed by clade-specific genetic networks. To address this question, we have replaced the mouse Foxn1 gene, a key regulator of the thymic microenvironment in jawed vertebrates, with the orthologous FOXN1 lamprey gene, which is expressed in the thymoids alongside genes orthologous to known targets of the mouse Foxn1 transcription factor. The reconstituted thymi support normal T cell development, and, to a lesser extent, also support B cell development, indicating that the lamprey FOXN1 gene can rescue the block of thymic epithelial cell differentiation in mice deficient for the endogenous Foxn1 gene. The absence of overt autoimmunity in transgenic mice suggests that the reconstituted thymic microenvironment directs the development of a self-tolerant T cell repertoire. These findings highlight the remarkable similarity of thymic epithelial functions in jawed and jawless vertebrates, despite more than 500 My of independent evolution. Our results thus suggest that the emergence of the Foxn1 transcription factor in the common ancestor of vertebrates was associated with the advent of a specialized tissue environment supporting the development and selection of T cells.

Article Details

Volume / Issue Vol. 122, Issue 48
Published December 02, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (9)

R

Ryo Morimoto

Max Planck Institute of Immunobiology and Epigenetics

G

Gaoqun Zhang

O

Oliver S. Thomas

M

Margaret F. Docker

Department of Biological Sciences, University of Manitoba

J

Jonah L. Yick

Inland Fisheries Service

F

Floriaan Devloo-Delva

Australian National Fish Collection, National Collections and Marine Infrastructure, Commonwealth Scientific and Industrial Research Organization

J

Jeremy Swann

Max Planck Institute of Immunobiology and Epigenetics

D

Dagmar Diekhoff

Max Planck Institute of Immunobiology and Epigenetics

T

Thomas Boehm