Understanding a point mutation signature D54K in the caspase activation recruitment domain of NOD1 capitulating concerted immunity via atomistic simulation.

SeonJoo Park, P Raghuraman, C Sudandiradoss, Sriroopreddy Ramireddy, Gurusamy Raman

Journal: Journal of biomolecular structure & dynamics 2025;43(7):3766-3782

PMID: 38415678

Abstract

Point mutation D54K in the human N-terminal caspase recruitment domain (CARD) of nucleotide-binding oligomerization domain -1 (NOD1) abrogates an imperative downstream interaction with receptor-interacting protein kinase (RIPK2) that entails combating bacterial infections and inflammatory dysfunction. Here, we addressed the molecular details concerning conformational changes and interaction patterns (monomeric-dimeric states) of D54K by signature-based molecular dynamics simulation. Initially, the sequence analysis prioritized D54K as a pathogenic mutation, among other variants, based on a sequence signature. Since the mutation is highly conserved, we derived the distant ortholog to predict the sequence and structural similarity between native and mutant. This analysis showed the utility of 33 communal core residues associated with structural-functional preservation and variations, concurrently served to infer the cryptic hotspots Cys39, Glu53, Asp54, Glu56, Ile57, Leu74, and Lys78 determining the inter helical fold forming homodimers for putative receptor interaction. Subsequently, the atomistic simulations with free energy (MM/PB(GB)SA) calculations predicted structural alteration that takes place in the N-terminal mutant CARD where coils changed to helices (45 83) in contrast to native (4583). Likewise, the C-terminal helices 93105 connected to the loops distorted compared to native 93105 may result in conformational misfolding that promotes functional regulation and activation. These structural perturbations of D54K possibly destabilize the flexible adaptation of critical homotypic CARD-CARD interactions (Asp42-Arg488 and Phe86-Lys471) is consistent with earlier experimental reports. Altogether, our findings unveil the conformational plasticity of mutation-dependent immunomodulatory response and may aid in functional validation exploring clinical investigation on CARD-regulated immunotherapies to prevent systemic infection and inflammation.

Address: Department of Biotechnology, School of Bioscience and Technology, Vellore Institute of Technology, Vellore, India.; Department of Life Sciences, Yeungnam University, Gyeongsan, Gyeongsangbuk-do, Republic of Korea.; Department of Biotechnology, School of Bioscience and Technology, Vellore Institute of Technology, Vellore, India.; Department of Genetics and Molecular Biology, School of Health Sciences, The Apollo University, Chittoor, India.; Department of Life Sciences, Yeungnam University, Gyeongsan, Gyeongsangbuk-do, Republic of Korea.; Department of Biotechnology, School of Bioscience and Technology, Vellore Institute of Technology, Vellore, India.

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