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.

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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