bioRxiv Science⌕ Search

Biology subjects

Tully, M. D.

Publications and source records attributed to Tully, M. D..

2 recordsLinked to original sources

EARLY FLOWERING 3 (ELF3): a novel role in integrating environmental stimuli with root stem cell niche maintenance

Maintaining stem cell niche (SCN) homeostasis in the root apical meristem (RAM) is essential for proper root growth and thus for overall plant development. In Arabidopsis thaliana, a group of slowly dividing cells at the SCN center known as the quiescent center (QC) maintain the surrounding stem cells, including the distally located columella stem cells (CSCs) which give rise to the differentiated columella cells. Many actors, including the PLETHORA (PLT) family transcription factors, regulate the QC quiescence and CSC fate. However, little is known about the integration of external and/or internal cues into regulating SCN homeostasis. In this study, we report for the first time the interaction between PLT3 and the thermosensor and circadian clock related transcriptional regulator, EARLY FLOWERING 3 (ELF3), which are both expressed in the root SCN. We show that ELF3 localizes, similar to PLT3, to subcellular condensates and sustains the QC and CSC fate. We demonstrate that ELF3 forms condensates in vitro and in vivo, in the cytoplasm, as well as in the nucleus, where it then co-localizes with PLT3. We reveal that the interaction of ELF3 and PLT3 is mediated by their intrinsically disordered prion-like domains (PrDs). Furthermore, transient expression in human epithelial cells (HEp-2) cells and in Nicotiana benthamiana shows that PHYTOCHROME INTERACTING FACTORS 3 and 4 (PIF3/4) function as nuclear shuttles for ELF3, recruiting it to nuclear condensates, where it co-localizes with PLT3, PIF3, and PIF4. Accordingly, we propose a model where the co-localization and interactions of ELF3, PLT3, PIF3, and PIF4 represent a dynamic mechanism to integrate environmental signals into SCN maintenance and cell fate decisions.

plant biology↗

Phase separation and molecular ordering of the prion-like domain of the thermosensory protein EARLY FLOWERING 3

Liquid-liquid phase separation (LLPS) is an important mechanism enabling the dynamic compartmentalisation of macromolecules, including complex polymers such as proteins and nucleic acids, and occurs as a function of the physicochemical environment. In the model plant, Arabidopsis thaliana, LLPS by the protein EARLY FLOWERING3 (ELF3) occurs in a temperature sensitive manner and controls thermoresponsive growth. ELF3 contains a largely unstructured prion-like domain (PrLD) that acts as a driver of LLPS in vivo and in vitro. The PrLD contains a poly-glutamine (polyQ) tract, whose length varies across natural Arabidopsis accessions. Here, we use a combination of biochemical, biophysical and structural techniques to investigate the dilute and condensed phases of the ELF3 PrLD with varying polyQ lengths. We demonstrate that the dilute phase of the ELF3 PrLD forms a monodisperse higher order oligomer that does not depend on the presence of the polyQ sequence. This species undergoes LLPS in a pH and temperature-sensitive manner and the polyQ region of the protein tunes the initial stages of phase separation. The liquid phase rapidly undergoes aging and forms a hydrogel as shown by fluorescence and atomic force microscopies. Furthermore, we demonstrate that the hydrogel assumes a semi-ordered structure as determined by small angle X-ray scattering, electron microscopy and X-ray diffraction. These experiments demonstrate a rich structural landscape for a PrLD protein and provide a framework to describe the structural and biophysical properties of biomolecular condensates.

biophysics↗