Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Dynamics and structural features of the eEF1A1 and eEF1A2 paralogs

View through CrossRef
Abstract The translation elongation factors eEF1A1 and eEF1A2 share 97% sequence similarity and perform similar roles in translation but exhibit mutually exclusive expression patterns in human tissues. Despite their high homology, they are linked to different diseases, likely due to paralog-specific interactions with distinct protein partners. The underlying reasons for these differences remain unclear. Here, using a combination of HDX-MS, MD, and SAXS approaches, we demonstrate that eEF1A1 and eEF1A2 exhibit distinct structural dynamics, leading to different structural organizations. eEF1A2 is a compact, stably folded protein, whereas eEF1A1 adopts multiple conformational states, including the opening and closing of the conformational space between domains D1 and D3, as well as significant internal and external dynamics of domain D2. These dynamics facilitate protein dimerization in eEF1A1, contrasting with eEF1A2, which apparently remains monomeric in solution, challenging previous X-ray crystallography findings. These data provide molecular insight into the functional differences between the highly homologous translation factors eEF1A1 and eEF1A2, potentially explaining their paralog-specific nontranslational roles and distinct contributions to human diseases.
Title: Dynamics and structural features of the eEF1A1 and eEF1A2 paralogs
Description:
Abstract The translation elongation factors eEF1A1 and eEF1A2 share 97% sequence similarity and perform similar roles in translation but exhibit mutually exclusive expression patterns in human tissues.
Despite their high homology, they are linked to different diseases, likely due to paralog-specific interactions with distinct protein partners.
The underlying reasons for these differences remain unclear.
Here, using a combination of HDX-MS, MD, and SAXS approaches, we demonstrate that eEF1A1 and eEF1A2 exhibit distinct structural dynamics, leading to different structural organizations.
eEF1A2 is a compact, stably folded protein, whereas eEF1A1 adopts multiple conformational states, including the opening and closing of the conformational space between domains D1 and D3, as well as significant internal and external dynamics of domain D2.
These dynamics facilitate protein dimerization in eEF1A1, contrasting with eEF1A2, which apparently remains monomeric in solution, challenging previous X-ray crystallography findings.
These data provide molecular insight into the functional differences between the highly homologous translation factors eEF1A1 and eEF1A2, potentially explaining their paralog-specific nontranslational roles and distinct contributions to human diseases.

Related Results

Increased Expression of eEF1A2 and PI3K-Akt Signaling Pathway Genes Promotes The Progression of Cervical Cancer
Increased Expression of eEF1A2 and PI3K-Akt Signaling Pathway Genes Promotes The Progression of Cervical Cancer
Abstract Objective: This study sought to explore the mRNA and protein expression levels of eukaryotic translation elongation factor 1 alpha 2 (eEF1A2) and members of the PI...
EEF1A1 deacetylation enables transcriptional activation of remyelination
EEF1A1 deacetylation enables transcriptional activation of remyelination
AbstractRemyelination of the peripheral and central nervous systems (PNS and CNS, respectively) is a prerequisite for functional recovery after lesion. However, this process is not...
Abstract 4300: The EEF1A2-PI3K-AKT-mTOR axis supports the protumorigenic function of MDM4 in human hepatocellular carcinoma.
Abstract 4300: The EEF1A2-PI3K-AKT-mTOR axis supports the protumorigenic function of MDM4 in human hepatocellular carcinoma.
Abstract Background & Aims: The Mouse Double Minute homolog 4 (MDM4) is one of the main negative p53 regulators in mammalian cells and mutational inactivation of...
Evolutionary history and diversity of human-specific FAM72A paralogs
Evolutionary history and diversity of human-specific FAM72A paralogs
Gene duplication is a key driver of genetic diversity and adaptation, allowing genomes to develop complexity and redundant sequences that evolve along different trajectories. In hu...
Form Follows Force: A theoretical framework for Structural Morphology, and Form-Finding research on shell structures
Form Follows Force: A theoretical framework for Structural Morphology, and Form-Finding research on shell structures
The springing up of freeform architecture and structures introduces many challenges to structural engineers. The main challenge is to generate structural forms with high structural...
Complex Signatures of Selection and Gene Conversion in the Duplicated Globin Genes of House Mice
Complex Signatures of Selection and Gene Conversion in the Duplicated Globin Genes of House Mice
Abstract Results of electrophoretic surveys have suggested that hemoglobin polymorphism may be maintained by balancing selection in natural populations of house mice...

Back to Top