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Rapid iPSC inclusionopathy models shed light on formation, consequence, and molecular subtype of α-synuclein inclusions

  • Isabel Lam
  • , Alain Ndayisaba
  • , Amanda J Lewis
  • , YuHong Fu
  • , Giselle T Sagredo
  • , Anastasia Kuzkina
  • , Ludovica Zaccagnini
  • , Meral Celikag
  • , Jackson Sandoe
  • , Ricardo L Sanz
  • , Aazam Vahdatshoar
  • , Timothy D Martin
  • , Nader Morshed
  • , Toru Ichihashi
  • , Arati Tripathi
  • , Nagendran Ramalingam
  • , Charlotte Oettgen-Suazo
  • , Theresa Bartels
  • , Manel Boussouf
  • , Max Schäbinger
  • Erinc Hallacli, Xin Jiang, Amrita Verma, Challana Tea, Zichen Wang, Hiroyuki Hakozaki, Xiao Yu, Kelly Hyles, Chansaem Park, Xinyuan Wang, Thorold W Theunissen, Haoyi Wang, Rudolf Jaenisch, Susan Lindquist, Beth Stevens, Nadia Stefanova, Gregor Wenning, Wilma D J van de Berg, Kelvin C Luk, Rosario Sanchez-Pernaute, Juan Carlos Gómez-Esteban, Daniel Felsky, Yasujiro Kiyota, Nidhi Sahni, S Stephen Yi, Chee Yeun Chung, Henning Stahlberg, Isidro Ferrer, Johannes Schöneberg, Stephen J Elledge, Ulf Dettmer, Glenda M Halliday, Tim Bartels, Vikram Khurana
  • Harvard Medical School
  • Medical University of Innsbruck, Innsbruck, Austria
  • École Polytechnique Fédérale de Lausanne and University of Lausanne
  • The University of Sydney Brain and Mind Centre and Faculty of Medicine and Health School of Medical Science
  • University College London
  • Whitehead Institute for Biomedical Research
  • Ann Romney Center for Neurologic Diseases
  • Howard Hughes Medical Institute
  • Nikon Corporation
  • Yumanity Therapeutics
  • University of California
  • Department of Pediatrics, Perelman School of Medicine, University of Pennsylvania, Philadelphia, Pennsylvania.
  • BioBizkaia Health Research Institute
  • University of Toronto and Toronto Western Hospital, Toronto, Canada
  • The University of Texas MD Anderson Cancer Center, Houston, United States
  • From the Department of Surgery and Perioperative Care, Dell Medical School at the University of Texas at Austin, Austin, Texas.
  • Department of Psychiatry and Psychology, Hospital Clínic, IDIBAPS, CIBERSAM, University of Barcelona, Barcelona, Spain; Department of Psychiatry, Radboud University Medical Centre, Nijmegen, The Netherlands.
  • Harvard Stem Cell Institute

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

The heterogeneity of protein-rich inclusions and its significance in neurodegeneration is poorly understood. Standard patient-derived iPSC models develop inclusions neither reproducibly nor in a reasonable time frame. Here, we developed screenable iPSC "inclusionopathy" models utilizing piggyBac or targeted transgenes to rapidly induce CNS cells that express aggregation-prone proteins at brain-like levels. Inclusions and their effects on cell survival were trackable at single-inclusion resolution. Exemplar cortical neuron α-synuclein inclusionopathy models were engineered through transgenic expression of α-synuclein mutant forms or exogenous seeding with fibrils. We identified multiple inclusion classes, including neuroprotective p62-positive inclusions versus dynamic and neurotoxic lipid-rich inclusions, both identified in patient brains. Fusion events between these inclusion subtypes altered neuronal survival. Proteome-scale α-synuclein genetic- and physical-interaction screens pinpointed candidate RNA-processing and actin-cytoskeleton-modulator proteins like RhoA whose sequestration into inclusions could enhance toxicity. These tractable CNS models should prove useful in functional genomic analysis and drug development for proteinopathies.

Original languageEnglish
Pages (from-to)2886-2909.e16
JournalNeuron
Volume112
Issue number17
Early online date23 Jul 2024
DOIs
Publication statusPublished - 4 Sept 2024

Keywords

  • CRISPR screen
  • Lewy body
  • Parkinson's disease
  • Rab protein
  • RhoA
  • actin cytoskeleton
  • aggregation
  • dementia with Lewy bodies
  • glia
  • iPSC
  • inclusion
  • lipid
  • neurodegeneration
  • neuron
  • p62
  • piggyBac
  • proximity labeling
  • synucleinopathy
  • ubiquitin
  • α-synuclein

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