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Hammad, A. S.

Publications and source records attributed to Hammad, A. S..

2 recordsLinked to original sources

STIM1 signals through NFAT independently of Orai1 and SOCE to regulate breast cancer cell migration

Store-operated calcium entry (SOCE) contributes to several physiological and pathological conditions including transcription, secretion, immunodeficiencies, and cancer. SOCE has been shown to be important for breast cancer cell migration where knockdown of SOCE components (STIM1 or Orai1) decreases cancer metastasis. Here we show unexpectedly that STIM1 knockout (KO) metastatic MDA-MB-231 breast cancer cells migrate faster and have enhance invasion capacity compared to parental cells. In contrast, Orai1-KO cells, which have similar levels of SOCE inhibition as STIM1-KO, migrate slower than the parental cell line. This shows that the enhanced migration phenotype of STIM1-KO cells is not due to the loss of a Ca2+ entry through SOCE, rather it involves transcriptional remodeling. Interestingly, NFATC2 is significantly downregulated in STIM1-KO cells and overexpression of NFATC2 reversed the enhanced migration of STIM1-KO cells. This demonstrates that STIM1 modulates NFATC2 expression independently of its role in SOCE. SUMMARY STATEMENTBreast cancer cells migrate faster when the ER Ca2+ sensor STIM1 in knocked out due to downregulation of NFAT1 expression independent of Ca2+ influx.

cell biology↗

Phosphorylation of STIM1 at ERK/CDK sites is dispensable for cell migration and ER partitioning in mitosis

Store-operated Ca2+ entry (SOCE) is a ubiquitous Ca2+ influx required for multiple physiological functions including cell motility. SOCE is activated in response to depletion of intracellular Ca2+ stores following the activation of endoplasmic reticulum (ER) Ca2+ sensor STIM1 which recruits the plasma membrane (PM) Ca2+ channel Orai1 at ER-PM junctions to induce Ca2+ influx. STIM1 is phosphorylated dynamically and this phosphorylation has been implicated in several processes including SOCE inactivation during M-phase, maximal SOCE activation, ER segregation during mitosis, and cell migration. Human STIM1 has 10 Ser/Thr residues in its cytosolic domain that match the ERK/CDK consensus phosphorylation. We recently generated a mouse knock-in line where wild-type STIM1 was replaced by a non-phosphorylatable STIM1 with all 10 S/T mutated to Ala (STIM1-10A). Here, we generate mouse embryonic fibroblasts (MEF) the STIM1-10A mouse line and a control MEF line (WT) that express wild-type STIM1 from a congenic mouse strain. These lines offer a unique model to address the role of STIM1 phosphorylation at endogenous expression and modulation levels in contrast to previous studies that relied mostly on overexpression. We show that STIM1 phosphorylation at ERK/CDK sites is not required for SOCE activation, cell migration, or ER partitioning during mitosis. These results rule out STIM1 phosphorylation as a regulator of SOCE, migration and ER distribution in mitosis.

cell biology↗