Related Experiment Video
Updated: Mar 2, 2026

Developing a Rat Model for Bipolar Disorder
Published on: May 2, 2025
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.
Abstract:
The molecular pathogenesis of bipolar disorder (BPD) is poorly understood. Using human-induced pluripotent stem cells (hiPSCs) to unravel such mechanisms in polygenic diseases is generally challenging. However, hiPSCs from BPD patients responsive to lithium offered unique opportunities to discern lithium's target and hence gain molecular insight into BPD. By profiling the proteomics of BDP-hiPSC-derived neurons, we found that lithium alters the phosphorylation state of collapsin response mediator protein-2 (CRMP2). Active nonphosphorylated CRMP2, which binds cytoskeleton, is present throughout the neuron; inactive phosphorylated CRMP2, which dissociates from cytoskeleton, exits dendritic spines. CRMP2 elimination yields aberrant dendritogenesis with diminished spine density and lost lithium responsiveness (LiR). The "set-point" for the ratio of pCRMP2:CRMP2 is elevated uniquely in hiPSC-derived neurons from LiR BPD patients, but not with other psychiatric (including lithium-nonresponsive BPD) and neurological disorders. Lithium (and other pathway modulators) lowers pCRMP2, increasing spine area and density. Human BPD brains show similarly elevated ratios and diminished spine densities; lithium therapy normalizes the ratios and spines. Consistent with such "spine-opathies," human LiR BPD neurons with abnormal ratios evince abnormally steep slopes for calcium flux; lithium normalizes both. Behaviorally, transgenic mice that reproduce lithium's postulated site-of-action in dephosphorylating CRMP2 emulate LiR in BPD. These data suggest that the "lithium response pathway" in BPD governs CRMP2's phosphorylation, which regulates cytoskeletal organization, particularly in spines, modulating neural networks. Aberrations in the posttranslational regulation of this developmentally critical molecule may underlie LiR BPD pathogenesis. Instructively, examining the proteomic profile in hiPSCs of a functional agent-even one whose mechanism-of-action is unknown-might reveal otherwise inscrutable intracellular pathogenic pathways.
More Related Videos
09:07Electroconvulsive Seizures in Rats and Fractionation of Their Hippocampi to Examine Seizure-induced Changes in Postsynaptic Density Proteins
Published on: August 15, 2017
10:20Method for Identifying Small Molecule Inhibitors of the Protein-protein Interaction Between HCN1 and TRIP8b
Published on: November 11, 2016
Related Concept Videos
Mania and Antimanic Drugs: Overview
Bipolar Disorder
Psychosis: Pathophysiology of Schizophrenia and Other Psychotic Disorders
Researchers have identified genetic factors that increase susceptibility to schizophrenia, underscoring the intricate interplay between genetics and environment in disease development. At the core of schizophrenia's pathophysiology is excessive dopaminergic neurotransmission within...
Phosphoinositides and PIPs
Different phosphoinositides are synthesized and recruited on the cytosolic face of the plasma membrane. The localization of specific phosphoinositides concentrated in separate membrane...
Hypothalamic-Pituitary Axis
Hedgehog Signaling Pathway