» Articles » PMID: 29705908

Somatic Mutations in Neurons During Aging and Neurodegeneration

Overview
Specialty Neurology
Date 2018 Apr 30
PMID 29705908
Citations 25
Authors
Affiliations
Soon will be listed here.
Abstract

The nervous system is composed of a large variety of neurons with a diverse array of morphological and functional properties. This heterogeneity is essential for the construction and maintenance of a distinct set of neural networks with unique characteristics. Accumulating evidence now indicates that neurons do not only differ at a functional level, but also at the genomic level. These genomic discrepancies seem to be the result of somatic mutations that emerge in nervous tissue during development and aging. Ultimately, these mutations bring about a genetically heterogeneous population of neurons, a phenomenon that is commonly referred to as "somatic brain mosaicism". Improved understanding of the development and consequences of somatic brain mosaicism is crucial to understand the impact of somatic mutations on neuronal function in human aging and disease. Here, we highlight a number of topics related to somatic brain mosaicism, including some early experimental evidence for somatic mutations in post-mitotic neurons of the hypothalamo-neurohypophyseal system. We propose that age-related somatic mutations are particularly interesting, because aging is a major risk factor for a variety of neuronal diseases, including Alzheimer's disease. We highlight potential links between somatic mutations and the development of these diseases and argue that recent advances in single-cell genomics and in vivo physiology have now finally made it possible to dissect the origins and consequences of neuronal mutations in unprecedented detail.

Citing Articles

Bibliometric and visual analysis of single-cell multiomics in neurodegenerative disease arrest studies.

Wang J, Wang S, Li Q, Liu F, Wan Y, Liang H Front Neurol. 2024; 15:1450663.

PMID: 39440247 PMC: 11493674. DOI: 10.3389/fneur.2024.1450663.


Platinum Deposition in the Central Nervous System: A Novel Insight into Oxaliplatin-induced Peripheral Neuropathy in Young and Old Mice.

Reis A, Paltian J, Domingues W, Novo D, Bolea-Fernandez E, Van Acker T Mol Neurobiol. 2024; 62(3):3712-3729.

PMID: 39320565 DOI: 10.1007/s12035-024-04430-y.


Genome-Wide Characterization of Somatic Mutation Patterns in Cloned Dogs Reveals Implications for Neuronal Function, Tumorigenesis, and Aging.

Woo S, Kim M, Kang D, Choe Y, Oh S, You A Genes (Basel). 2024; 15(6).

PMID: 38927737 PMC: 11202621. DOI: 10.3390/genes15060801.


Somatic Mutations within Myocilin due to Aging May Be a Potential Risk Factor for Glaucoma.

Sazhnyev Y, Venkat A, Zheng J Genes (Basel). 2024; 15(2).

PMID: 38397193 PMC: 10887703. DOI: 10.3390/genes15020203.


Genomic Mosaicism of the Brain: Origin, Impact, and Utility.

Graham J, Schlachetzki J, Yang X, Breuss M Neurosci Bull. 2023; 40(6):759-776.

PMID: 37898991 PMC: 11178748. DOI: 10.1007/s12264-023-01124-8.


References
1.
Fischer A, Sananbenesi F, Wang X, Dobbin M, Tsai L . Recovery of learning and memory is associated with chromatin remodelling. Nature. 2007; 447(7141):178-82. DOI: 10.1038/nature05772. View

2.
Harvey Z, Chen Y, Jarosz D . Protein-Based Inheritance: Epigenetics beyond the Chromosome. Mol Cell. 2017; 69(2):195-202. PMC: 5775936. DOI: 10.1016/j.molcel.2017.10.030. View

3.
Lim J, Gopalappa R, Kim S, Ramakrishna S, Lee M, Kim W . Somatic Mutations in TSC1 and TSC2 Cause Focal Cortical Dysplasia. Am J Hum Genet. 2017; 100(3):454-472. PMC: 5339289. DOI: 10.1016/j.ajhg.2017.01.030. View

4.
Madabhushi R, Pan L, Tsai L . DNA damage and its links to neurodegeneration. Neuron. 2014; 83(2):266-282. PMC: 5564444. DOI: 10.1016/j.neuron.2014.06.034. View

5.
Proukakis C, Houlden H, Schapira A . Somatic alpha-synuclein mutations in Parkinson's disease: hypothesis and preliminary data. Mov Disord. 2013; 28(6):705-12. PMC: 3739940. DOI: 10.1002/mds.25502. View