Prof. Ph.D.

Kikuë Tachibana

B1
A4
Associated Investigator

Prof. Ph.D.

Kikuë Tachibana

Director Department of Totipotency

Max-Planck-Institut für Biochemie

Research background

Totipotency describes the remarkable developmental potential of a single cell to generate all cell types of an organism as well as extraembryonic tissues. In mammals, this state is naturally established at fertilization, when differentiated egg and sperm fuse to form the zygote. Within hours, the chromatin of the parental genomes must be extensively reprogrammed, and a new embryonic transcription program is initiated. How this epigenetic reorganization of chromatin enables the transition to totipotency and triggers zygotic genome activation (ZGA) remains a central unresolved question in developmental biology.

The research of Kikuë Tachibana focuses on the mechanisms underlying totipotency reprogramming, spatial chromatin reorganization, and ZGA in mouse embryos. Her group investigates how DNA and chromatin are remodeled at the onset of development using an interdisciplinary approach that combines mechanistic cell biology with genetics, genomics, bioinformatics, and biochemistry. By elucidating how chromatin states are reset to an earlier embryonic configuration preceding pluripotency, this work provides fundamental insight into genome regulation and may inform strategies to improve induced cellular reprogramming and regenerative medicine.

Research fields
Publications

Feed-forward loops by NR5A2 ensure robust gene activation during pre-implantation development.

Kobayashi, W.; Ruangroengkulrith, S.; Arslantas, EN.; Mohanan, A.; Tachibana, K.

Development. · 2026

Show abstract

Pioneer transcription factors are crucial for regulating zygotic genome activation and cell differentiation during mouse pre-implantation development. However, how pioneer factors function collectively to regulate early development remains poorly understood. Here, we determined the chromatin-binding profiles of the mouse pioneer factor NR5A2 during the totipotency-to-pluripotency transition and identified KLF and GATA family transcription factors as key co-regulators. NR5A2 regulates the expression of Klf5 and Gata6, the protein products of which in turn act as co-regulators of NR5A2 to promote development. Mechanistically, KLF5 contributes to H3K27ac deposition at genomic regions co-occupied by NR5A2. NR5A2 also regulates Xist expression, either directly or indirectly, through its role in co-binding with GATA factors and upregulating their expression. In vitro assays revealed that NR5A2 binds to nucleosomes with KLF5 and GATA6, suggesting that these pioneer factors can simultaneously bind to chromatin. Our findings provide evidence for a feed-forward regulatory mechanism by which NR5A2 activates expression of lineage-determining factors and these, together with NR5A2, subsequently co-bind nucleosomes to ensure robust gene activation during pre-implantation development.

Rise and SINE: roles of transcription factors and retrotransposons in zygotic genome activation.

Kravchenko, P.; Tachibana, K.

Nat Rev Mol Cell Biol. · 2025

Show abstract

In sexually reproducing organisms, life begins with the fusion of transcriptionally silent gametes, the oocyte and sperm. Although initiation of transcription in the embryo, known as zygotic genome activation (ZGA), is universally required for development, the transcription factors regulating this process are poorly conserved. In this Perspective, we discuss recent insights into the mechanisms of ZGA in totipotent mammalian embryos, namely ZGA regulation by several transcription factors, including by orphan nuclear receptors (OrphNRs) such as the pioneer transcription factor NR5A2, and by factors of the DUX, TPRX and OBOX families. We performed a meta-analysis and compiled a list of pan-ZGA genes, and found that most of these genes are indeed targets of the above transcription factors. Remarkably, more than a third of these ZGA genes appear to be regulated both by OrphNRs such as NR5A2 and by OBOX proteins, whose motifs co-occur in SINE B1 retrotransposable elements, which are enriched near ZGA genes. We propose that ZGA in mice is activated by recruitment of multiple transcription factors to SINE B1 elements that function as enhancers, and discuss a potential relevance of this mechanism to Alu retrotransposable elements in human ZGA.

Nucleosome-bound NR5A2 structure reveals pioneer factor mechanism by DNA minor groove anchor competition.

Kobayashi, W.; Sappler, AH.; Bollschweiler, D.; Kümmecke, M.; Basquin, J.; Arslantas, EN.; Ruangroengkulrith, S.; Hornberger, R.; Duderstadt, K.; Tachibana, K.

Nat Struct Mol Biol. · 2024

Show abstract

Gene expression during natural and induced reprogramming is controlled by pioneer transcription factors that initiate transcription from closed chromatin. Nr5a2 is a key pioneer factor that regulates zygotic genome activation in totipotent embryos, pluripotency in embryonic stem cells and metabolism in adult tissues, but the mechanism of its pioneer activity remains poorly understood. Here, we present a cryo-electron microscopy structure of human NR5A2 bound to a nucleosome. The structure shows that the conserved carboxy-terminal extension (CTE) loop of the NR5A2 DNA-binding domain competes with a DNA minor groove anchor of the nucleosome and releases entry-exit site DNA. Mutational analysis showed that NR5A2 D159 of the CTE is dispensable for DNA binding but required for stable nucleosome association and persistent DNA 'unwrapping'. These findings suggest that NR5A2 belongs to an emerging class of pioneer factors that can use DNA minor groove anchor competition to destabilize nucleosomes and facilitate gene expression during reprogramming.

MCM complexes are barriers that restrict cohesin-mediated loop extrusion.

Dequeker, BJH.; Scherr, MJ.; Brandão, HB.; Gassler, J.; Powell, S.; Gaspar, I.; Flyamer, IM.; Lalic, A.; Tang, W.; Stocsits, R.; Davidson, IF.; Peters, JM.; Duderstadt, KE.; Mirny, LA.; Tachibana, K.

Nature. · 2022

Show abstract

Eukaryotic genomes are compacted into loops and topologically associating domains (TADs), which contribute to transcription, recombination and genomic stability. Cohesin extrudes DNA into loops that are thought to lengthen until CTCF boundaries are encountered. Little is known about whether loop extrusion is impeded by DNA-bound machines. Here we show that the minichromosome maintenance (MCM) complex is a barrier that restricts loop extrusion in G1 phase. Single-nucleus Hi-C (high-resolution chromosome conformation capture) of mouse zygotes reveals that MCM loading reduces CTCF-anchored loops and decreases TAD boundary insulation, which suggests that loop extrusion is impeded before reaching CTCF. This effect extends to HCT116 cells, in which MCMs affect the number of CTCF-anchored loops and gene expression. Simulations suggest that MCMs are abundant, randomly positioned and partially permeable barriers. Single-molecule imaging shows that MCMs are physical barriers that frequently constrain cohesin translocation in vitro. Notably, chimeric yeast MCMs that contain a cohesin-interaction motif from human MCM3 induce cohesin pausing, indicating that MCMs are 'active' barriers with binding sites. These findings raise the possibility that cohesin can arrive by loop extrusion at MCMs, which determine the genomic sites at which sister chromatid cohesion is established. On the basis of in vivo, in silico and in vitro data, we conclude that distinct loop extrusion barriers shape the three-dimensional genome.

Zygotic genome activation by the totipotency pioneer factor Nr5a2.

Gassler, J.; Kobayashi, W.; Gáspár, I.; Ruangroengkulrith, S.; Mohanan, A.; Gómez Hernández, L.; Kravchenko, P.; Kümmecke, M.; Lalic, A.; Rifel, N.; Ashburn, RJ.; Zaczek, M.; Vallot, A.; Cuenca Rico, L.; Ladstätter, S.; Tachibana, K.

Science. · 2022

Show abstract

Life begins with a switch in genetic control from the maternal to the embryonic genome during zygotic genome activation (ZGA). Despite its importance, the essential regulators of ZGA remain largely unknown in mammals. On the basis of de novo motif searches, we identified the orphan nuclear receptor Nr5a2 as a key activator of major ZGA in mouse two-cell embryos. Nr5a2 is required for progression beyond the two-cell stage. It binds to its motif within retrotransposable elements found in cis-regulatory regions of ZGA genes. Chemical inhibition suggests that 72% of ZGA genes are regulated by Nr5a2 and potentially other orphan nuclear receptors. Nr5a2 promotes chromatin accessibility during ZGA and binds nucleosomal DNA in vitro. We conclude that Nr5a2 is an essential pioneer factor that regulates ZGA.