转录因子
叉头转录因子
生物
FOXP3型
细胞生物学
突变
遗传学
免疫系统
基因
作者
Fangwei Leng,Wenxiang Zhang,Ricardo N. Ramírez,Juliette Léon,Yi Zhong,Lifei Hou,Koichi Yuki,Joris van der Veeken,Alexander Y. Rudensky,Christophe Benoist,Sun Hur
出处
期刊:Immunity
[Elsevier]
日期:2022-08-01
卷期号:55 (8): 1354-1369.e8
被引量:15
标识
DOI:10.1016/j.immuni.2022.07.002
摘要
FoxP3 is an essential transcription factor (TF) for immunologic homeostasis, but how it utilizes the common forkhead DNA-binding domain (DBD) to perform its unique function remains poorly understood. We here demonstrated that unlike other known forkhead TFs, FoxP3 formed a head-to-head dimer using a unique linker (Runx1-binding region [RBR]) preceding the forkhead domain. Head-to-head dimerization conferred distinct DNA-binding specificity and created a docking site for the cofactor Runx1. RBR was also important for proper folding of the forkhead domain, as truncation of RBR induced domain-swap dimerization of forkhead, which was previously considered the physiological form of FoxP3. Rather, swap-dimerization impaired FoxP3 function, as demonstrated with the disease-causing mutation R337Q, whereas a swap-suppressive mutation largely rescued R337Q-mediated functional impairment. Altogether, our findings suggest that FoxP3 can fold into two distinct dimerization states: head-to-head dimerization representing functional specialization of an ancient DBD and swap dimerization associated with impaired functions.
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