Cargando…

T cell differentiation drives the negative selection of pathogenic mitochondrial DNA variants

Pathogenic mitochondrial DNA (mtDNA) single-nucleotide variants are a common cause of adult mitochondrial disease. Levels of some variants decrease with age in blood. Given differing division rates, longevity, and energetic requirements within haematopoietic lineages, we hypothesised that cell-type–...

Descripción completa

Detalles Bibliográficos
Autores principales: Franklin, Imogen G, Milne, Paul, Childs, Jordan, Boggan, Róisín M, Barrow, Isabel, Lawless, Conor, Gorman, Gráinne S, Ng, Yi Shiau, Collin, Matthew, Russell, Oliver M, Pickett, Sarah J
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Life Science Alliance LLC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10471888/
https://www.ncbi.nlm.nih.gov/pubmed/37652671
http://dx.doi.org/10.26508/lsa.202302271
_version_ 1785099951066316800
author Franklin, Imogen G
Milne, Paul
Childs, Jordan
Boggan, Róisín M
Barrow, Isabel
Lawless, Conor
Gorman, Gráinne S
Ng, Yi Shiau
Collin, Matthew
Russell, Oliver M
Pickett, Sarah J
author_facet Franklin, Imogen G
Milne, Paul
Childs, Jordan
Boggan, Róisín M
Barrow, Isabel
Lawless, Conor
Gorman, Gráinne S
Ng, Yi Shiau
Collin, Matthew
Russell, Oliver M
Pickett, Sarah J
author_sort Franklin, Imogen G
collection PubMed
description Pathogenic mitochondrial DNA (mtDNA) single-nucleotide variants are a common cause of adult mitochondrial disease. Levels of some variants decrease with age in blood. Given differing division rates, longevity, and energetic requirements within haematopoietic lineages, we hypothesised that cell-type–specific metabolic requirements drive this decline. We coupled cell-sorting with mtDNA sequencing to investigate mtDNA variant levels within progenitor, myeloid, and lymphoid lineages from 26 individuals harbouring one of two pathogenic mtDNA variants (m.3243A>G and m.8344A>G). For both variants, cells of the T cell lineage show an enhanced decline. High-throughput single-cell analysis revealed that decline is driven by increasing proportions of cells that have cleared the variant, following a hierarchy that follows the current orthodoxy of T cell differentiation and maturation. Furthermore, patients with pathogenic mtDNA variants have a lower proportion of T cells than controls, indicating a key role for mitochondrial function in T cell homeostasis. This work identifies the ability of T cell subtypes to selectively purify their mitochondrial genomes, and identifies pathogenic mtDNA variants as a new means to track blood cell differentiation status.
format Online
Article
Text
id pubmed-10471888
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Life Science Alliance LLC
record_format MEDLINE/PubMed
spelling pubmed-104718882023-09-02 T cell differentiation drives the negative selection of pathogenic mitochondrial DNA variants Franklin, Imogen G Milne, Paul Childs, Jordan Boggan, Róisín M Barrow, Isabel Lawless, Conor Gorman, Gráinne S Ng, Yi Shiau Collin, Matthew Russell, Oliver M Pickett, Sarah J Life Sci Alliance Research Articles Pathogenic mitochondrial DNA (mtDNA) single-nucleotide variants are a common cause of adult mitochondrial disease. Levels of some variants decrease with age in blood. Given differing division rates, longevity, and energetic requirements within haematopoietic lineages, we hypothesised that cell-type–specific metabolic requirements drive this decline. We coupled cell-sorting with mtDNA sequencing to investigate mtDNA variant levels within progenitor, myeloid, and lymphoid lineages from 26 individuals harbouring one of two pathogenic mtDNA variants (m.3243A>G and m.8344A>G). For both variants, cells of the T cell lineage show an enhanced decline. High-throughput single-cell analysis revealed that decline is driven by increasing proportions of cells that have cleared the variant, following a hierarchy that follows the current orthodoxy of T cell differentiation and maturation. Furthermore, patients with pathogenic mtDNA variants have a lower proportion of T cells than controls, indicating a key role for mitochondrial function in T cell homeostasis. This work identifies the ability of T cell subtypes to selectively purify their mitochondrial genomes, and identifies pathogenic mtDNA variants as a new means to track blood cell differentiation status. Life Science Alliance LLC 2023-08-31 /pmc/articles/PMC10471888/ /pubmed/37652671 http://dx.doi.org/10.26508/lsa.202302271 Text en © 2023 Franklin et al. https://creativecommons.org/licenses/by/4.0/This article is available under a Creative Commons License (Attribution 4.0 International, as described at https://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Articles
Franklin, Imogen G
Milne, Paul
Childs, Jordan
Boggan, Róisín M
Barrow, Isabel
Lawless, Conor
Gorman, Gráinne S
Ng, Yi Shiau
Collin, Matthew
Russell, Oliver M
Pickett, Sarah J
T cell differentiation drives the negative selection of pathogenic mitochondrial DNA variants
title T cell differentiation drives the negative selection of pathogenic mitochondrial DNA variants
title_full T cell differentiation drives the negative selection of pathogenic mitochondrial DNA variants
title_fullStr T cell differentiation drives the negative selection of pathogenic mitochondrial DNA variants
title_full_unstemmed T cell differentiation drives the negative selection of pathogenic mitochondrial DNA variants
title_short T cell differentiation drives the negative selection of pathogenic mitochondrial DNA variants
title_sort t cell differentiation drives the negative selection of pathogenic mitochondrial dna variants
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10471888/
https://www.ncbi.nlm.nih.gov/pubmed/37652671
http://dx.doi.org/10.26508/lsa.202302271
work_keys_str_mv AT franklinimogeng tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants
AT milnepaul tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants
AT childsjordan tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants
AT bogganroisinm tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants
AT barrowisabel tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants
AT lawlessconor tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants
AT gormangrainnes tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants
AT ngyishiau tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants
AT collinmatthew tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants
AT russelloliverm tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants
AT pickettsarahj tcelldifferentiationdrivesthenegativeselectionofpathogenicmitochondrialdnavariants