Intellectual disability-causing mutations in KIF11 impair microtubule dynamics and dendritic arborization

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • Jenna L. Wingfield - , Scripps Research Institute (Author)
  • Lukas Niese - , Chair of BioNano-Tools (Author)
  • Yosef Avchalumov - , Scripps Research Institute (Author)
  • Xiaodan Liu - , Max Planck Florida Institute for Neuroscience (Author)
  • Rahul Grover - , Chair of BioNano-Tools (Author)
  • Yoshihisa Nakahata - , Max Planck Florida Institute for Neuroscience (Author)
  • Bindu L. Raveendra - , Scripps Research Institute (Author)
  • Adrian E. Gonzalez-Santiago - , Scripps Research Institute (Author)
  • Jackson P. Carter - , Scripps Research Institute (Author)
  • Ryohei Yasuda - , Max Planck Florida Institute for Neuroscience (Author)
  • Jason X.J. Yuan - , Scripps Research Institute (Author)
  • Stefan Diez - , Clusters of Excellence PoL: Physics of Life, Chair of BioNano-Tools, Max Planck Institute of Molecular Cell Biology and Genetics (Author)
  • Sathyanarayanan V. Puthanveettil - , Scripps Research Institute (Author)

Abstract

Microcephaly with or without chorioretinopathy, lymphedema, or intellectual disabilities (MCLID) is a rare disease caused by mutations in the mitotic motor KIF11. However, the specific neuronal functions of KIF11, its mechanisms of microtubule (MT) regulation, and the impact of MCLID mutations on KIF11 function remain underexplored. Here, using live-imaging, we find that KIF11 depletion in postmitotic neurons increases minus-end-out MT dynamics in both axons and dendrites. Introducing MCLID-associated KIF11 mutations, KIF11Y82F and KIF11ΔCterm, significantly reduces MT dynamics, impairs dendritic arborization, and decreases mEPSC frequency. Biochemical analyses reveal that the KIF11ΔCterm mutant disrupts tetramer formation and MT crosslinking, while the KIF11Y82F mutant reduces MT sliding velocity and ATP affinity. Temporal inhibition of KIF11 using a photo-controllable KIF11 increases MT dynamics and dendritic growth. Together, these data reveal that KIF11 is a MT dynamics rheostat and regulator of dendritic arborization in mature neurons, providing essential insights into the molecular mechanisms driving MCLID.

Details

Original languageEnglish
Article number4125
JournalNature communications
Volume17
Issue number1
Publication statusPublished - 18 Mar 2026
Peer-reviewedYes

External IDs

PubMed 41844639
ORCID /0000-0002-0750-8515/work/215161701
ORCID /0000-0002-5373-6578/work/215162259