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Skourides, P.

Publications and source records attributed to Skourides, P..

2 recordsLinked to original sources

Ciliary and non-ciliary functions of CEP104 in Xenopus

Cep104 is a conserved protein essential for centriole and cilia function, with mutations linked to Joubert Syndrome. We investigated its role in Xenopus embryonic development, revealing that Cep104 is crucial for neural tube closure (NTC) through regulating apical constriction. We show that the role of Cep104 in cilia and hedgehog signaling cannot alone explain the elicited defects. We go on to show that Cep104 localizes to the ends of cytoplasmic microtubules, influencing their stability. Downregulation of CEP104 led to microtubule instability and defects in multiciliated cell intercalation, a process dependent on stable microtubules. Our findings demonstrate that Cep104 functions beyond cilia, playing a significant role in cytoplasmic microtubule dynamics, suggesting that both ciliary and non-ciliary roles are important for neurodevelopment and the pathogenesis of ciliopathies.

cell biology↗

A new mechanochemical vertex model with Ca2+ signalling, for apical constriction in neural tube closure

Apical constriction during neural tube closure is driven by cell contractions which are preceded by asynchronous and cell-autonomous Ca2+ flashes, as demonstrated in recent experiments. Disruption of these Ca2+ signals and contractions leads to neural tube defects, such as anencephaly and spina bifida. A good understanding of the two-way mechanochemical coupling of Ca2+ signalling and mechanics remains elusive, while live-cell imaging is difficult. Thus, mathematical modelling is essential but existing models do not exhibit good agreement with experiments. We present two new mechanochemical vertex models of apical constriction during neural tube closure and simulate them using CelluLink, a new user-friendly open-source Python package for vertex modelling. The first, one-way mechanochemical model only studies the effect of Ca2+ signalling on cell mechanics. It improves previous models, reproducing some key experimental observations, such as the reduction of the neural plate size to 2%-8% of its initial area. Other novel features of the one-way model is the incorporation of the surface ectoderm and of the experimental amplitude and frequency profiles of the Ca2+ flashes. Furthermore, guided by experiments, the damping coefficient of the vertices and cell-cell adhesion are modelled as functions of the actomyosin concentration and cell size. Furthermore, we develop a two-way model which improves the one-way model by capturing the two-way coupling between Ca2+ signalling and cell mechanics, through the incorporation of stretch-sensitive Ca2+ channels. These channels enable cells to sense mechanical stimuli and encode them into Ca2+ signals. In the two-way model, the Ca2+ flash frequency and amplitude profiles are model outputs and are not inputs as in the one-way model. Finally, we use both models to propose a series of hypotheses for future experiments. Author summaryAs a baby is growing in the womb, its neural tube closes to form the brain and the spinal cord. During neural tube closure, cells are contracting in a ratchet-like way while experiencing a choreography of Ca2+ flashes. If the Ca2+ flashes or the contractions go wrong, serious birth defects like spina bifida and anencephaly may arise. Understanding how Ca2+ flashes and contractions work together is complex, especially since studying living cells is challenging. To address this challenge, we developed two new mathematical models. The first model captures how Ca2+ flashes affect contractions, improving previous models and accurately capturing some experimental results. For example, it incorporates recent experimental measurements of the amplitude of Ca2+ flashes (brightness) and their frequency (how frequently the flashes appear). The second model builds on the first model by additionally capturing the effect contractions have on the Ca2+ flashes. We capture this two-way coupling by enabling cells to sense mechanical stimuli through stretch-sensitive Ca2+ channels. In this case, the amplitude and frequency of the Ca2+ flashes arise as outputs. Both models inform future experiments that will further elucidate embryo malformations.

systems biology↗