Search bioRxiv⌕ Search

Biology subjects

Aiba, T.

Publications and source records attributed to Aiba, T..

2 recordsLinked to original sources

Chemical Probe Discovery for DEAD-box RNA Binding Protein DDX21 using Small Molecule Microarrays

The DEAD-box family of ATPases plays a critical role in nearly all stages of RNA metabolism, from transcription to degradation, and serves as a major regulator of biomolecular condensates. Dysregulation of DEAD-box proteins is well established in a variety of diseases, including cancer and neurodegenerative disorders, making them attractive therapeutic targets. However, their classification as "undruggable" has historically hindered small molecule-based modulation. In this study, we focus on DDX21, a member of the DEAD-box family involved in ribosome biogenesis and transcriptional regulation. As a proof of concept for targeting such RNA-binding proteins, we developed a lysate-based small molecule microarray platform to identify compounds that directly bind DDX21. This screen led to the discovery of KI-DX-014, a small molecule compound capable of inhibiting DDX21 interaction with RNA. KI-DX-014 modulated RNA-dependent functions of DDX21, including its ATPase activity and biomolecular condensate formation. Furthermore, KI-DX-014 attenuated the DDX21-dependent release of P-TEFb from the 7SK snRNP complex in vitro, suppressed P-TEFb-dependent phosphorylation of the RNA polymerase II CTD, and induced developmental defects in zebrafish embryos. These findings reveal a previously unexploited therapeutic avenue and establish KI-DX-014 as a valuable chemical probe for dissecting the biological functions of DDX21 in both normal physiology and disease states.

cancer biology↗

Establishing a method for the cryopreservation of viable peripheral blood mononuclear cells in the International Space Station

The analysis of cells frozen within the International Space Station (ISS) will provide crucial insights into the impact of the space environment on cellular functions and properties. The objective of this study was to develop a method for cryopreserving blood cells under the specific constraints of the ISS. In a ground experiment, mouse blood was directly mixed with a cryoprotectant and gradually frozen at -80 {degrees}C. Thawing the frozen blood sample resulted in the successful recovery of viable mononuclear cells when using a mixed solution of dimethylsulfoxide and hydroxyethyl starch as a cryoprotectant. Additionally, we developed new freezing cases to minimize storage space utilization within the ISS freezer. Finally, we confirmed the recovery of major mononuclear immune cell subsets from the cryopreserved blood cells through a high dimensional analysis of flow cytometric data using 13 cell surface markers. Consequently, this ground study lays the foundation for the cryopreservation of viable blood cells on the ISS, enabling their analysis upon return to Earth. The application of this method in ISS studies will contribute to understanding the impact of space environments on human cells. Moreover, this method may find application in the cryopreservation of blood cells in situations where research facilities are inadequate.

cell biology↗