Probing the lithium-response pathway in hiPSCs implicates the phosphoregulatory set-point for a cytoskeletal

Brian T D Tobe1,2,3, Andrew M Crain1,2, Alicia M Winquist1,2

  • 1Sanford Burnham Prebys Medical Discovery Institute, La Jolla, CA 92037.

Insights

Lithium treatment for bipolar disorder (BPD) targets collapsin response mediator protein-2 (CRMP2) phosphorylation. This pathway regulates neuronal structure and function, offering new insights into lithium-responsive BPD molecular pathogenesis.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Genetics

Background:

  • The molecular basis of bipolar disorder (BPD) remains largely unknown, posing challenges for developing targeted therapies.
  • Human-induced pluripotent stem cells (hiPSCs) offer a promising model for studying complex polygenic disorders like BPD.

Purpose of the Study:

  • To investigate the molecular mechanisms underlying lithium responsiveness in bipolar disorder using patient-derived hiPSCs.
  • To identify the specific cellular targets of lithium in the context of BPD pathogenesis.

Main Methods:

  • Proteomic profiling of hiPSC-derived neurons from BPD patients.
  • Analysis of collapsin response mediator protein-2 (CRMP2) phosphorylation states.
  • Assessment of neuronal morphology, spine density, and calcium flux.
  • Validation in human BPD brain tissue and a transgenic mouse model.

Main Results:

  • Lithium alters CRMP2 phosphorylation, impacting its interaction with the cytoskeleton and dendritic spine structure.
  • Elevated pCRMP2:CRMP2 ratios are uniquely observed in lithium-responsive BPD hiPSC-derived neurons and brains.
  • Lithium treatment normalizes CRMP2 phosphorylation, spine density, and calcium flux in BPD models.
  • Transgenic mice mimicking lithium's CRMP2 dephosphorylation effect exhibit lithium-responsive behaviors.

Conclusions:

  • The CRMP2 phosphorylation pathway is a critical regulator of cytoskeletal organization and neural network function in lithium-responsive BPD.
  • Aberrations in CRMP2 posttranslational regulation may underlie the pathogenesis of lithium-responsive BPD.
  • Proteomic analysis of hiPSCs can reveal pathogenic pathways even when the therapeutic agent's mechanism is initially unknown.

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