A Precision Medicine Approach to Understanding KIF1A Associated Neurological Disorder

The functional compartmentalization underlying neuronal polarity makes tightly regulated intracellular transport between the cell body, axons, and dendrites essential for proper development and homeostatic maintenance. Disruptions to neuronal trafficking are a major cause of neurodegenerative diseas...

Full description

Bibliographic Details
Main Author: Boyle, Lia
Language:English
Published: 2021
Subjects:
Online Access:https://doi.org/10.7916/d8-0nef-s787
id ndltd-columbia.edu-oai-academiccommons.columbia.edu-10.7916-d8-0nef-s787
record_format oai_dc
spelling ndltd-columbia.edu-oai-academiccommons.columbia.edu-10.7916-d8-0nef-s7872021-08-05T05:02:38ZA Precision Medicine Approach to Understanding KIF1A Associated Neurological DisorderBoyle, Lia2021ThesesGeneticsNeurosciencesMedicineNervous system--Diseases--EtiologyNervous system--Diseases--Genetic aspectsNervous system--Diseases--TreatmentNervous system--DegenerationAxonsDendritesThe functional compartmentalization underlying neuronal polarity makes tightly regulated intracellular transport between the cell body, axons, and dendrites essential for proper development and homeostatic maintenance. Disruptions to neuronal trafficking are a major cause of neurodegenerative disease. Pathogenic variants in the microtubule motor protein KIF1A cause KIF1A Associated Neurological Disorder (KAND), a spectrum of rare neurodegenerative conditions. KAND is clinically and genetically heterogeneous, with a broad phenotypic spectrum and over a hundred pathogenic variants identified. KAND is poorly understood at both the clinical and molecular level, and there is currently no treatment. This work characterizes the natural history of KAND and describes a novel heuristic severity score. This severity score is then used to show how the location of pathogenic missense variants within the KIF1A motor domain correlates with disease severity, providing evidence the clinical phenotypic heterogeneity in KAND reflects and parallels the molecular phenotypes. Insights from the neuropathology of deceased KAND patients is used to focus a histopathologic assessment of the C3-Kif1aLgdg mouse model. C3-Kif1aLgdg/Lgdg mice have a cerebellar axonal torpedo phenotype, paralleling some of the pathological changes seen in the patients. Phenotypically, the C3-Kif1aLgdg mice were found to recapitulate some of the symptoms seen in patients including progressive spasticity and gait abnormalities associated with hind limb paralysis. To model the disease at a cellular level, iPSCs were derived from affected individuals and successfully used to generate neural stem cells and neurons. These patient-derived neurons were found to have increased markers of protein aggregates, a cellular phenotype that can be used to test potential treatments. Taken together, these studies provide foundational knowledge for future therapeutic development.Englishhttps://doi.org/10.7916/d8-0nef-s787
collection NDLTD
language English
sources NDLTD
topic Genetics
Neurosciences
Medicine
Nervous system--Diseases--Etiology
Nervous system--Diseases--Genetic aspects
Nervous system--Diseases--Treatment
Nervous system--Degeneration
Axons
Dendrites
spellingShingle Genetics
Neurosciences
Medicine
Nervous system--Diseases--Etiology
Nervous system--Diseases--Genetic aspects
Nervous system--Diseases--Treatment
Nervous system--Degeneration
Axons
Dendrites
Boyle, Lia
A Precision Medicine Approach to Understanding KIF1A Associated Neurological Disorder
description The functional compartmentalization underlying neuronal polarity makes tightly regulated intracellular transport between the cell body, axons, and dendrites essential for proper development and homeostatic maintenance. Disruptions to neuronal trafficking are a major cause of neurodegenerative disease. Pathogenic variants in the microtubule motor protein KIF1A cause KIF1A Associated Neurological Disorder (KAND), a spectrum of rare neurodegenerative conditions. KAND is clinically and genetically heterogeneous, with a broad phenotypic spectrum and over a hundred pathogenic variants identified. KAND is poorly understood at both the clinical and molecular level, and there is currently no treatment. This work characterizes the natural history of KAND and describes a novel heuristic severity score. This severity score is then used to show how the location of pathogenic missense variants within the KIF1A motor domain correlates with disease severity, providing evidence the clinical phenotypic heterogeneity in KAND reflects and parallels the molecular phenotypes. Insights from the neuropathology of deceased KAND patients is used to focus a histopathologic assessment of the C3-Kif1aLgdg mouse model. C3-Kif1aLgdg/Lgdg mice have a cerebellar axonal torpedo phenotype, paralleling some of the pathological changes seen in the patients. Phenotypically, the C3-Kif1aLgdg mice were found to recapitulate some of the symptoms seen in patients including progressive spasticity and gait abnormalities associated with hind limb paralysis. To model the disease at a cellular level, iPSCs were derived from affected individuals and successfully used to generate neural stem cells and neurons. These patient-derived neurons were found to have increased markers of protein aggregates, a cellular phenotype that can be used to test potential treatments. Taken together, these studies provide foundational knowledge for future therapeutic development.
author Boyle, Lia
author_facet Boyle, Lia
author_sort Boyle, Lia
title A Precision Medicine Approach to Understanding KIF1A Associated Neurological Disorder
title_short A Precision Medicine Approach to Understanding KIF1A Associated Neurological Disorder
title_full A Precision Medicine Approach to Understanding KIF1A Associated Neurological Disorder
title_fullStr A Precision Medicine Approach to Understanding KIF1A Associated Neurological Disorder
title_full_unstemmed A Precision Medicine Approach to Understanding KIF1A Associated Neurological Disorder
title_sort precision medicine approach to understanding kif1a associated neurological disorder
publishDate 2021
url https://doi.org/10.7916/d8-0nef-s787
work_keys_str_mv AT boylelia aprecisionmedicineapproachtounderstandingkif1aassociatedneurologicaldisorder
AT boylelia precisionmedicineapproachtounderstandingkif1aassociatedneurologicaldisorder
_version_ 1719458932819230720