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ten Tusscher, K.

Publications and source records attributed to ten Tusscher, K..

2 recordsLinked to original sources

Quantitative modelling of fate specification in the C. elegans postembryonicM lineage reveals a missing spatiotemporal signal

The invariant lineages of C. elegans provide tractable cell fate models to study how developing organisms robustly integrate spatial signals at the single-cell level via gene regulatory networks. For instance, during postembryonic development, a mesoderm lineage arises through a sequence of oriented cell divisions from a single progenitor. This mesoblast initially gives rise to 18 cells with three distinct fates - 14 body wall muscles (BWMs), 2 coelomocytes (CCs; dorsal), and 2 sex myoblasts (SMs; ventral). The latter cells migrate and then proliferate to contribute 16 smooth muscles to the nematodes reproductive organs. Prior work identified key symmetry breaking cues: i) ventrally restricted activation of the LIN-12 Notch pathway promoting SM over CC fate and ii) asymmetric re-distribution of SYS-1 {beta}-catenin and POP-1 TCF among daughter cells along the anteroposterior (A-P) axis, i.e. the Wnt/{beta}-catenin asymmetry pathway. However, it remains unclear whether these pathways are sufficient to specify all cell fates accordingly or whether additional symmetry breaking cues are necessary. In this study, we use quantitative modelling to better understand fate specification in the postembryonic M lineage. Specifically, we focus on the anteroposterior symmetry break by creating increasingly complex models towards robustly reproducing fate specification in wild type larvae and mutants. This iterative process resulted in two alternative models that explain the experimental observations by either introducing an additional spatial (spatial symmetry break) or temporal cue (temporal symmetry break). Finally, we evaluate their plausibility and propose a series of experiments to provide support for alternative models. Overall, our study highlights how a quantitative examination of mechanistic ideas can identify knowledge gaps and guide experimental follow-up.

systems biology↗

Transport properties of canonical PIN-FORMED proteins and the role of the loop domain in auxin transport

Indole-3-acetic acid (IAA), the most abundant endogenous auxin is transported in plants in a polar fashion by PIN-FORMED (PIN) transporters and controls virtually all plant growth and developmental processes. Canonical PINs possess a long and largely disordered cytosolic loop domain which is shorter in non-canonical PINs. Auxin transport by canonical PINs is activated loop phosphorylation by kinases. While the structure of the transmembrane domains of these transporters was recently solved, their transport properties remained poorly characterized and particularly the relative roles of the transmembrane and loop domain therein. In this study we used flux studies to obtain quantitative kinetic parameters of IAA transport mediated by canonical PINs as well as of chimeras between transmembrane and loop domains of different PINs upon their activation by D6 PROTEIN KINASE or PINOID. We found that the transporters possess distinct transport properties that are due to both the transmembrane and loop domain. To demonstrate the physiological relevance of these distinct transport properties, we modelled root tip IAA distribution patterns and investigated the potential of different PINs to complement the agravitropic root growth phenotype of the pin2 mutant when expressed in the PIN2 domain. We found a strong correlation between transport parameters and physiological output indicating that in addition to PIN polarity a low transport rate in the PIN2 expression domain is required for gravitropic growth. Overall, the data show that the loop domain is not only required for activation of PIN-mediated auxin transport but has an additional role in the transport cycle by a currently unknown mechanism.

plant biology↗