Comparative structural insights and functional analysis for the distinct unbound states of Human AGO proteins

Author:

Kakoulidis Panos1,Theotoki Eleni1,Pantazopoulou Vasiliki1,Vlachos Ioannis2,Emiris Ioannis1,Stravopodis Dimitrios1,Anastasiadou Ema3

Affiliation:

1. National and Kapodistrian University of Athens

2. Cancer Research Institute / Harvard Medical School Initiative for RNA Medicine

3. Biomedical Research Foundation of the Academy of Athens

Abstract

Abstract The four human Argonaute (AGO) proteins, essential in RNA interference and gene regulation, exhibit high sequence and structural similarity, yet differ functionally. Our molecular dynamics simulations revealed that while AGO proteins adopt similar open-close states, each one displays distinct local conformations, leading to unique interdomain distances and intramolecular interactions. We found that GW182/ZSWIM8 interaction sites, catalytic/pseudo-catalytic tetrads and long common protein subsequences conserve their molecular movement with minute differences but have varying solvent accessibility per AGO. We observed diverse stability patterns at the post-transcriptional sites of the AGOs, except for AGO4. Combining simulation data with large datasets of experimental structures and AlphaFold’s predictions, we identified proteins with gene sequence and protein structure similarities that operate in the mitosis pathway and share mitosis-related interactors and miRNA targets. Additionally, we suggest a zinc ion binding function in AGO proteins, predicting potential binding sites and detecting structurally similar proteins with the same function.

Publisher

Research Square Platform LLC

Reference119 articles.

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3. Probing the Binding Interactions between Chemically Modified siRNAs and Human Argonaute 2 Using Microsecond Molecular Dynamics Simulations;Harikrishna S;J Chem Inf Model,2017

4. Critical role of backbone coordination in the mRNA recognition by RNA induced silencing complex;Zhu L;Commun Biol,2021

5. Helix-7 in Argonaute2 shapes the microRNA seed region for rapid target recognition;Klum SM;EMBO J,2018

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