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Smedler, E.

Publications and source records attributed to Smedler, E..

2 recordsLinked to original sources

Decoding calcium oscillation frequency in transcriptional regulation

Cells continuously experience fluctuating intracellular calcium (Ca{superscript 2}) signals that orchestrate diverse processes such as transcription, proliferation, and apoptosis. Temporal features of Ca{superscript 2} dynamics, including oscillation frequency, are hypothesized to encode information, allowing cells to discriminate between relevant and stochastic signals. However, the mechanisms of frequency decoding and their transcriptional consequences remain incompletely understood. To address this, we investigated how defined Ca{superscript 2} oscillation frequencies are translated into signaling cascades and gene expression programs in human non-excitable cells. Using optogenetic control of melanopsin-mediated Ca{superscript 2} influx, we induced slow (8 mHz) or fast (15 mHz) oscillations with identical single-pulse kinetics to isolate the effect of frequency. We found that TNF and IL8 transcription via NF-{kappa}B displayed sigmoidal frequency dependence, strictly requiring regular periodic stimulation, while random or low-frequency inputs with equal cumulative Ca{superscript 2} exposure were ineffective. Bulk RNA sequencing revealed a MYC-centered transcriptional response, with 116 of 215 differentially expressed genes predicted as MYC targets, despite unchanged MYC mRNA levels. Label-free phosphoproteomics identified PRKDC, CHEK2 and ATM as the top upstream kinases, forming a network linking Ca{superscript 2} oscillations to cell cycle and stress signaling. These findings demonstrate that cells can decode Ca{superscript 2} oscillation frequency through a multi-kinase network that tunes transcription via NF-{kappa}B and MYC, providing mechanistic insight into how temporal dynamics of second messengers shape cellular decision-making.

cell biology↗

Single-Cell Transcriptomics Reveals the Molecular Logic Underlying Ca2+ Signaling Diversity in Human and Mouse Brain

The calcium ion (Ca2+) is a ubiquitous intracellular signaling molecule that plays a critical role in the adult and developing brain. However, the principles governing the specificity of Ca2+ signaling remain unresolved. In this work, we comprehensively analyzed the Ca2+ signaling transcriptome in the adult mouse brain and developing human brain. We found that neurons form non-stochastic Ca2+-states that are reflective of their cell types and functionality, with evidence suggesting that the diversity is driven by lineage-specific developmental changes. Focusing on the neocortical development, we reveal that an unprecedented number of Ca2+ genes are tightly regulated and evolutionarily conserved, capturing functionally driven differences within radial glia and neuronal progenitors. In summary, our study provides an in-depth understanding of the cellular and temporal diversity of Ca2+ signaling and suggests that Ca2+ signaling is dynamically tailored to specific cell states. One Sentence SummaryThe expression of Ca2+ signaling genes is finely tuned to cellular states, reflecting a spectrum of differences that range from lineage specificity to subtle functional distinctions within cortical radial glia.

neuroscience↗