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Structurally-discovered KLF4 variants accelerate and stabilize reprogramming to pluripotency

Non-genetically modified somatic cells can only be inefficiently and stochastically reprogrammed to pluripotency by exogenous expression of reprogramming factors. Low competence of natural reprogramming factors may prevent the majority of cells to successfully and synchronously reprogram. Here we sc...

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Published in:iScience 2022-01, Vol.25 (1), p.103525-103525, Article 103525
Main Authors: Borisova, Evgeniia, Nishimura, Ken, An, Yuri, Takami, Miho, Li, Jingyue, Song, Dan, Matsuo-Takasaki, Mami, Luijkx, Dorian, Aizawa, Shiho, Kuno, Akihiro, Sugihara, Eiji, Sato, Taka-aki, Yumoto, Fumiaki, Terada, Tohru, Hisatake, Koji, Hayashi, Yohei
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cited_by cdi_FETCH-LOGICAL-c587t-a03574571d1131397e699a7471d66569b7c6b9bc8002cd706b2de703b0f3b7043
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creator Borisova, Evgeniia
Nishimura, Ken
An, Yuri
Takami, Miho
Li, Jingyue
Song, Dan
Matsuo-Takasaki, Mami
Luijkx, Dorian
Aizawa, Shiho
Kuno, Akihiro
Sugihara, Eiji
Sato, Taka-aki
Yumoto, Fumiaki
Terada, Tohru
Hisatake, Koji
Hayashi, Yohei
description Non-genetically modified somatic cells can only be inefficiently and stochastically reprogrammed to pluripotency by exogenous expression of reprogramming factors. Low competence of natural reprogramming factors may prevent the majority of cells to successfully and synchronously reprogram. Here we screened DNA-interacting amino acid residues in the zinc-finger domain of KLF4 for enhanced reprogramming efficiency using alanine-substitution scanning methods. Identified KLF4 L507A mutant accelerated and stabilized reprogramming to pluripotency in both mouse and human somatic cells. By testing all the variants of L507 position, variants with smaller amino acid residues in the KLF4 L507 position showed higher reprogramming efficiency. L507A bound more to promoters or enhancers of pluripotency genes, such as KLF5, and drove gene expression of these genes during reprogramming. Molecular dynamics simulations predicted that L507A formed additional interactions with DNA. Our study demonstrates how modifications in amino acid residues of DNA-binding domains enable next-generation reprogramming technology with engineered reprogramming factors. [Display omitted] •KLF4 L507A variant accelerates and stabilizes reprogramming to pluripotency•KLF4 L507A has distinctive features of transcriptional binding and activation•KLF4 L507A may acquire a unique conformation with additional DNA interaction•Smaller amino acid residues in L507 position cause higher reprogramming efficiency Stem cell plasticity; Molecular biology
doi_str_mv 10.1016/j.isci.2021.103525
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subjects Molecular biology
Stem cell plasticity
title Structurally-discovered KLF4 variants accelerate and stabilize reprogramming to pluripotency
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