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Stable STIM1 Knockdown in Self-Renewing Human Neural Precursors Promotes Premature Neural Differentiation
Renjitha Gopurappilly1, Bipan Kumar Deb1, Pragnya Chakraborty1
1National Centre for Biological Sciences, Tata Institute of Fundamental Research, Bengaluru, India.
Abstract:
Ca2+ signaling plays a significant role in the development of the vertebrate nervous system where it regulates neurite growth as well as synapse and neurotransmitter specification. Elucidating the role of Ca2+ signaling in mammalian neuronal development has been largely restricted to either small animal models or primary cultures. Here we derived human neural precursor cells (NPCs) from human embryonic stem cells to understand the functional significance of a less understood arm of calcium signaling, Store-operated Ca2+ entry or SOCE, in neuronal development. Human NPCs exhibited robust SOCE, which was significantly attenuated by expression of a stable shRNA-miR targeted toward the SOCE molecule, STIM1. Along with the plasma membrane channel Orai, STIM is an essential component of SOCE in many cell types, where it regulates gene expression. Therefore, we measured global gene expression in human NPCs with and without STIM1 knockdown. Interestingly, pathways down-regulated through STIM1 knockdown were related to cell proliferation and DNA replication processes, whereas post-synaptic signaling was identified as an up-regulated process. To understand the functional significance of these gene expression changes we measured the self-renewal capacity of NPCs with STIM1 knockdown. The STIM1 knockdown NPCs demonstrated significantly reduced neurosphere size and number as well as precocious spontaneous differentiation toward the neuronal lineage, as compared to control cells. These findings demonstrate that STIM1 mediated SOCE in human NPCs regulates gene expression changes, that in vivo are likely to physiologically modulate the self-renewal and differentiation of NPCs.
Insights
Store-operated calcium entry (SOCE), regulated by STIM1, is crucial for human neural precursor cell (NPC) development. STIM1 knockdown impairs NPC self-renewal and promotes neuronal differentiation by altering gene expression.
Area of Science:
- Neuroscience
- Cell Biology
- Developmental Biology
Background:
- Calcium (Ca2+) signaling is vital for vertebrate nervous system development, influencing neurite growth and synapse formation.
- Research on mammalian neuronal development has primarily used animal models or primary cultures.
- Store-operated calcium entry (SOCE) is a critical calcium signaling pathway with incompletely understood roles in neuronal development.
Purpose of the Study:
- To investigate the functional significance of SOCE in human neuronal development.
- To elucidate the role of STIM1, a key SOCE component, in human neural precursor cells (NPCs).
Main Methods:
- Derived human NPCs from human embryonic stem cells.
- Utilized shRNA-mediated knockdown of STIM1 to attenuate SOCE.
- Performed global gene expression analysis using RNA sequencing.
- Assessed NPC self-renewal and differentiation capacity.
Main Results:
- Human NPCs exhibit robust SOCE, significantly reduced by STIM1 knockdown.
- STIM1 knockdown downregulated pathways related to cell proliferation and DNA replication.
- Post-synaptic signaling pathways were upregulated following STIM1 knockdown.
- STIM1 knockdown led to reduced neurosphere formation and precocious neuronal differentiation.
Conclusions:
- STIM1-mediated SOCE regulates gene expression in human NPCs.
- SOCE influences NPC self-renewal and differentiation, impacting neuronal development.
- Findings suggest STIM1 plays a physiological role in modulating NPC behavior in vivo.
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