NARA Discovery
Article Details
← Back to Search Results
Journal Article

Conservation of a Chromosome 8 Inversion and Exon Mutations Confirm Common Gulonolactone Oxidase Gene Evolution Among Primates, Including H. Neanderthalensis

Alexander Mansueto; Deborah J. Good
Journal of Molecular Evolution · Vol. 92, Issue 3 · pp. 266-277 · 2024

Abstract

Ascorbic acid functions as an antioxidant and facilitates other biochemical processes such as collagen triple helix formation, and iron uptake by cells. Animals which endogenously produce ascorbic acid have a functional gulonolactone oxidase gene ( GULO ); however, humans have a GULO pseudogene ( GULOP ) and depend on dietary ascorbic acid. In this study, the conservation of GULOP sequences in the primate haplorhini suborder were investigated and compared to the GULO sequences belonging to the primates strepsirrhini suborder. Phylogenetic analysis suggested that the conserved GULOP exons in the haplorhini primates experienced a high rate of mutations following the haplorhini/strepsirrhini divergence. This high mutation rate has decreased during the evolution of the haplorhini primates. Additionally, indels of the haplorhini GULOP sequences were conserved across the suborder. A separate analysis for GULO sequences and well-conserved GULOP sequences focusing on placental mammals identified an in-frame GULO sequence in the Brazilian guinea pig, and a potential GULOP sequence in the pika. Similar to haplorhini primates, the guinea pig and lagomorph species have experienced a high substitution rate when compared to the mammals used in this study. A shared synteny to examine the conservation of local genes near GULO / GULOP identified a conserved inversion around the GULO / GULOP locus between the haplorhini and strepsirrhini primates. Fischer’s exact test did not support an association between GULOP and the chromosomal inversion. Mauve alignment showed that the inversion of the length of the syntenic block that the GULO / GULOP genes belonged to was variable. However, there were frequent rearrangements around ~ 2 million base pairs adjacent to GULOP involving the KIF13B and MSRA genes. These data may suggest that genes acquiring deleterious mutations in the coding sequence may respond to these deleterious mutations with rapid substitution rates.

Bibliographic Information

JournalJournal of Molecular Evolution
PublisherSpringer
Publication Date2024-06-01
Publication Year2024
Volume92
Issue3
Pages266-277
Document TypeJournal Article
Print ISSN0022-2844
eISSN1432-1432
DOI10.1007/s00239-024-10165-0

Access Information

NARA Access Coverage1971-01-01~Current
Journal Homepagehttps://www.springer.com/journal/239
Publisher PageOpen Publisher Page
Full-text access depends on NARA's subscribed coverage and institutional access.