Structural rewiring of IL-7R dimerization by an oncogenic transmembrane mutation can be reversed by rational design

Q Qian Wang M Min Chen A Asma Lasram (Department of Biology/Chemistry and Center for Cellular Nanoanalytics, Osnabrück University) S Saana Vihuri (Department of Physics, University of Helsinki) A Angela Z. Chou (Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences) W Weixin Bian (Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences) Z Zhiming Dai (Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences) O Outi Haapanen (Department of Physics, University of Helsinki) G Giray Enkavi (Department of Physics, University of Helsinki) C Christoph Pollmann I Ilpo Vattulainen (Department of Physics, University of Helsinki) T Tiantian Cai (Institute of Quantum Sensing, Institute of Fundamental and Transdisciplinary Research, Zhejiang University) J Jacob Piehler J James J. Chou

Abstract

Mutations within the transmembrane domains (TMDs) of single-pass transmembrane receptors often cause aberrant, ligand-independent receptor signaling associated with diverse malignancies, but their mechanism of action remains largely unknown. These TMD mutations are generally not targetable as they are buried in the membrane. Here, we determined the mechanism of a gain-of-function (GOF) TMD mutation of interleukin-7 receptor (IL-7R) associated with T cell acute lymphoblastic leukemia and addressed the possibility of directly targeting the TMD mutation by using rationally designed transmembrane helices to restore order to uncontrolled signaling. We find that the GOF mutation of IL-7R severely shifts the TMD homodimerization interface, causing the receptor to homodimerize in a geometry that activates downstream signaling independent of ligand. Designed transmembrane helices that interfere with the new interface, delivered with mRNA technology, selectively block ligand-independent but not ligand-dependent signaling. Our study provides a conceptual framework for understanding and repairing disease-causing TMD mutations of single-pass cytokine receptors.

Article Details

Volume / Issue Vol. 123, Issue 18
Published May 05, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

Q

Qian Wang

M

Min Chen

A

Asma Lasram

Department of Biology/Chemistry and Center for Cellular Nanoanalytics, Osnabrück University

S

Saana Vihuri

Department of Physics, University of Helsinki

A

Angela Z. Chou

Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences

W

Weixin Bian

Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences

Z

Zhiming Dai

Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences

O

Outi Haapanen

Department of Physics, University of Helsinki

G

Giray Enkavi

Department of Physics, University of Helsinki

C

Christoph Pollmann

I

Ilpo Vattulainen

Department of Physics, University of Helsinki

T

Tiantian Cai

Institute of Quantum Sensing, Institute of Fundamental and Transdisciplinary Research, Zhejiang University

J

Jacob Piehler

J

James J. Chou